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Introduction to Integrative Biophysics

  • Chapter
Integrative Biophysics

Abstract

If you look through a number of contemporary textbooks and introductions of biophysics, in order to find out what exactly biophysics is and what the field covers, you will be quite bewildered. Even the titles of the books with their diversity of names for the field, which include, besides biophysics itself, “Medical Physics ”, “Medical and Biological Physics”, “Physical Biology”,“Physical Bases of Medicine and Biology”, and “Molecular Biology ”, already show the existence of different interpretations and tendencies.

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References

  • Abir-Am, P.G. (1987) The Biotheoretical Gathering: Trans-disciplinary authority and the incipient legitimation of molecular biology in the 1930’s. History of Science, 25, 1–70.

    ADS  Google Scholar 

  • Aharonov, Y., Bohm, D. (1959) Significance of electromagnetic potentials in the quantum theory. Physical Review, 2nd Ser., 115 (3), 485–491.

    MathSciNet  MATH  Google Scholar 

  • Akimov, A.E., Moskovskii, A.V. (1992) Quantum Non-Locality and Torsion Fields. Moscow: Center of Intersectorial Science, Engineering and Non-Conventional Venture Technologies (CISE-VENT).

    Google Scholar 

  • Akimov, A.E., Tarasenko, V.Ya. (1992) Models of polarized states of the physical vacuum and torsion fields. Soviet Physics Journal 35 (3), 214–222.

    Google Scholar 

  • Akimov, A.E., ed. (1995) Consciousness and the Physical World. Collected Papers. Moscow: Publishing Agency “Yakhtsmen”.

    Google Scholar 

  • Akimov, A.E., Shipov, G.I. (1997) Torsion fields and their experimental manifestations. Journal of New Energy 2 (2), 67.

    Google Scholar 

  • Akimov, A.E., Shipov, G.I. (1998) Experimental manifestation of torsion fields and the torsion model of consciousness. Consciousness and Physical Reality, 1 (1), 42–63.

    Google Scholar 

  • Amoroso, R., Antunes, R., Coelho, C., Farias, M., Leite, A., and Soares, P. (eds.) (2000) Science and the Primacy of Consciousness. Orinda, CA., Noetic Press.

    Google Scholar 

  • Anderson, M.H., Ensher, J.R., Matthews, M.R., Weiman, C.E. and Cornell, E.A. (1995) Observation of Bose-Einstein condensation in a dilute atomic vapor. Science, 269, 198–201.

    ADS  Google Scholar 

  • Arrhenius, S. (1898) Die Einwirkung kosmischer Einflusse auf physiologische Verhältnisse. Skandinavisches Archiv für Physiologie, 8, 376–416.

    Google Scholar 

  • Arsonval, A. d’, Chauveau, J.B.A., et al. (1901–1903) Traitè de Physique Biologique. Paris, Masson. 2 vols.

    Google Scholar 

  • Aschoff, J. (1965) Circadian Clocks. Amsterdam, North-Holland.

    Google Scholar 

  • Ash, M.G. (1995) Gestalt Psychology in German Culture 1890–1967. Holism and the Quest for Objectivity. Cambridge, Cambridge University Press.

    Google Scholar 

  • Aspect, A., Dalibard, J., and Roger, G. (1982) Experimental test of Bell’s inequalities using time-varying nalyzers. Physical Review Letters, 49, 1804–1807.

    ADS  MathSciNet  Google Scholar 

  • Aspect, A., Grangier, P. (1986) Experiments on Einstein-Podolsky-Rosen-type correlations with pairs of visible photons. In Quantum Concepts in Space and Time, R.Penrose and C.J.Isham (eds.) Oxford, Clarendon Press, 1–15.

    Google Scholar 

  • Atmanspacher, H. (1996) Erkenntnistheoretische Aspekte physikalischer Vorstellungen von Ganzheit. Zeitschrift für Parapsychologie und Grenzgebiete der Psychologie 38 (1/2), 20–45.

    Google Scholar 

  • Bailes, K.E. (1990) Science and Russian Culture in an Age of Revolutions. V.I. Vernadsky and His Scientific School, 1863–1945. Bloomington, Indiana University Press.

    Google Scholar 

  • Bajpai, R.P., Kumar, S., Sivadasan, V.A. (1998) Biophoton emission in the evolution of a squeezed state of frequency stable damped oscillator. Applied Mathematics and Computation, 93, 277–288.

    Google Scholar 

  • Barrett, T.W. (1976) Mechanoelectrical transduction in hyaluronic acid salt solution is an entropy-driven process. Physiological Chemistry and Physics, 8, 125–134.

    Google Scholar 

  • Barrett, T.W. (1990) Maxwell’s theory extended. Part 1: Annales de la Fondation Louis de Broglie 15 (2), 143–183. Part 2: Theoretical and pragmatic reasons for questioning the completeness of Maxwell’s theory. Annales de la Fondation Louis de Broglie, 15 (3), 253283.

    Google Scholar 

  • Barrett, T.W. (1993) Electromagnetic phenomena not explained by Maxwell’s equations. In: Lakhtakia, Aklesh (ed.):Essays on the Formal Aspects of Electromagnetic Theory. Singapore, World Scientific Publishing, 6–86.

    Google Scholar 

  • Barrett, T.W., Grimes, D.M. (eds.) (1995) Advanced Electromagnetism: Foundations, Theory and Applications. Singapore World Scientific.

    Google Scholar 

  • Bauer, E. (1920) Die Grundprinzipien der rein naturwissenschaftlichen Biologie und ihre Anwendungen in der Physiologie und Pathologie. In W.Roux (ed.), Vorträge und Aufsätze über Entwicklungsmechanik der Organismen, No. X XVI. Berlin, Julius Springer Verlag.

    Google Scholar 

  • Barcroft, J. (1934) Features in the Architecture of Physiological Function. Cambridge: Cambridge University Press. Reprinted: New York, Garland Publishing, 1988.

    Google Scholar 

  • Bauer, E. S. (1935) Theoretical Biology. Moscow. Reprinted Budapest: Akademiai Kiadô, 1982 (in Russian, with abridged English translation and commentaries by B.P.Tokin and S.E.Shnol).

    Google Scholar 

  • Beall, P.T., Cailleau, R.M., and Hazlewood, C.F. (1967) The relaxation times of water protons and division rate in human breast cancer cells: a possible relationship to survival. Physiological Chemistry and Physics, 8, 281–284.

    Google Scholar 

  • Bearden, T.E. (1991) Gravitobiology. Ventura, California: Tesla Book Company.

    Google Scholar 

  • Bearden, T.E. (1993) Information content of the field: Dynamic EM structuring of the scalar potential and its use by biological systems. Paper presented at the 2nd Estrian Workshop on “The Organization of Information Transfer in Living Systems ”, August 26–28, 1993, University of Sherbrooke, Canada.

    Google Scholar 

  • Bearden, T.E. (1995) Vacuum engines and Prioré’s methodology: The true science of energy-medicine. Parts I and II. Explore! 6 (1), 66–76 and 6 (2), 50–62.

    Google Scholar 

  • Beier, W. (1965) Einführung in die theoretische Biophysik. Stuttgart: Gustav Fischer.

    Google Scholar 

  • Bell, J.S. (1987) Speakable and Unspeakable in Quantum Mechanics. Cambridge, Cambridge University Press.

    MATH  Google Scholar 

  • Beloussov, L.V. (1988) The problem of biological morphogenesis: General approaches and mechano-geometrical models. In Kull, K. and Tiivel, T. (eds.), Lectures in Theoretical Biology. Tallin, Estonia, Valgus, 55–64.

    Google Scholar 

  • Beloussov, L.V. (1993) Transformation of morphomechanical constraints into generative rules of organic evolution. World Futures, 38, 33–42.

    Google Scholar 

  • Beloussov, L.V. (1998) The Dynamic Architecture of a Developing Organism. An Interdisciplinary Approach to the Development of Organisms. Dordrecht, Kluwer Academic Publishers.

    Google Scholar 

  • Beloussov, L.V., Popp, F.A., Voeikov, V., and Wijk, R. van (eds.) (2000) Biophotonics and Coherent Systems. Moscow, Moscow University Press.

    Google Scholar 

  • Benedict, M.G., Ermolaev, A.M., Malyshev, V.A., Sokolov, I.V., Trifonov, E.D. (1996) Super-Radiance - Multiatomic Coherent Emission. (Optics and Optoelectronics Series). Bristol and Philadelphia, Institute of Physics Publishing.

    Google Scholar 

  • Bénézech, C. (1962) L’Eau, Base Structurale et Fonctionelle des Êtres Vivants. Paris, Masson.

    Google Scholar 

  • Berg, M., Mayne, A., and Petersen, W.F. (1940) Variability of blood pH and its association with meteorological factors. American Journal of Physiology, 130, 9–21.

    Google Scholar 

  • Bergmann, G.von (1932) Funktionelle Pathologie. Berlin, Julius Springer,.

    Google Scholar 

  • Bergsmann, O. (1994a) Bioelektrische Phänomene und Regulation in der Komplementärmedizin. Vienna, Facultas.

    Google Scholar 

  • Bergsmann, O. (1994b) Struktur und Funktion des Wassers im Organismus. Vienna, Facultas.

    Google Scholar 

  • Bergsmann, O. (1998) Chronische Belastungen. Vienna, Facultas.

    Google Scholar 

  • Berman, P.R. (1994) Cavity Quantum Electrodynamics. (Advances in Atomic, Molecular, and Optical Physics, Supplement 2 ). San Diego and London, Academic Press.

    Google Scholar 

  • Bernard, C. (1859) Leçons sur les propriétés physiologiques et les altérations pathologiques des liquides de l ‘organisme. Paris, Baillière.

    Google Scholar 

  • Bernard, C. (1865) Introduction à I ’étude de la médecine expérimentale. Paris, Baillière. English ed.: An Introduction to the Study of Experimental Medicine. New York, Dover, 1957.

    Google Scholar 

  • Bertalanffy, L.v. (1927a) Studien über theoretische Biologie. Biologisches Zentralblatt, 47.

    Google Scholar 

  • Bertalanffy, L.v. (1927b) Über die Bedeutung der Umwälzungen in der Physik für die Biologie. Biologisches Zentralblatt, 47.

    Google Scholar 

  • Bertalanffy, L.v. (1940) Der Organismus als physikalisches System betrachtet. Naturwissenschaften, 28, 521–531.

    ADS  Google Scholar 

  • Bertalanffy, L.v. (1945) Zu einer allgemeinen Systemlehre. Deutsche Zeitschrift für Philosophie, 18 (3/4).

    Google Scholar 

  • Bertalanffy, L.v. (1948) Theoretical Biology. Ann Arbor: J.W.Edwards.

    Google Scholar 

  • Bertalanffy, L.v. (1949) Open Systems in Physics and Biology. Nature, 163, 384 ff.

    Google Scholar 

  • Bertalanffy, L.v. (1950) The Theory of Open Systems in Physics and Biology. Science, 111, 23–29.

    ADS  Google Scholar 

  • Bertalanffy, L.v. (1968) General System Theory. New York, George Braziller.

    Google Scholar 

  • Bertalanffy, L.v. (1975) Perspective on General System Theory. New York, George Braziller.

    Google Scholar 

  • Bertalanffy, L.v.,Beier, W. and Laue, R. (1977) Biophysik des Fließgleichgewichts. 2nd ed. Braunschweig, Vieweg.

    Google Scholar 

  • Bews, J.W. (1935) Human Ecology. London: Oxford University Press.

    Google Scholar 

  • Beyler, Richard H. (1996) Targeting the Organism — The scientific and cultural context of Pascual Jordan’s Quantum Biology. History ofScience, 87, 248–273.

    Google Scholar 

  • Bhaumik, D., Bhaumik, K., Dutta-Roy, B. (1976) On the possibility of Bose condensation in the excitation of coherent modes in biological systems. Physics Letters, 56A, 145–148.

    Google Scholar 

  • Bierman, D.J. (1996) Exploring correlations between local emotional and global emotional events and the behavior of a random number generator. Journal of Scientific Exploration, 10 (3), 363373.

    Google Scholar 

  • Bigu, J. (1976) On the biophysical basis of the human “aura”. The Journal of Research in Psi Phenomena, 1 (2), 8–43.

    Google Scholar 

  • Bischof, M. (1992) “Wasser (water)”, in Dokumentation der besonderen Therapierichtungen und natürlichen Heilweisen in Europa,Vol.I1, Wissenschaftliche Grundlagen der besonderen Therapierichtungen und natürlichen Heilweisen, Essen, Verlag für Ganzheitsmedizin VGM (coauthored by F. Bohner), 91–148.

    Google Scholar 

  • Bischof, M. (1994) The history of bioelectromagnetism. In Bioelectrodynamics and Biocommunication, M.W.Ho, F.A.Popp and U.Wamke (eds.), Singapore, World Scientific.

    Google Scholar 

  • Bischof, M. (1995a) Biophotonen — das Licht in unseren Zellen. Frankfurt, Zweitausendeins; 116 ed. 2001.

    Google Scholar 

  • Bischof, M. (1995b) Vitalistic and Mechanistic Concepts in the History of Bioelectromagnetics. In Biophotonics–Non-Equilibrium and Coherent Systems in Biology, Biophysics and Biotechnology. L.V.Belousov and F.A.Popp (eds.), 3–14. Moscow, Bioinform Services.

    Google Scholar 

  • Bischof, M. (1996) Some Remarks on the History of Biophysics and its Future. In: Current Development of Biophysics, C.L. Zhang, F.A. Popp and M. Bischof (eds.), Hangzhou, China, Hangzhou University Press.

    Google Scholar 

  • Bischof, M. (1998a) Holism and Field Theories in Biology–Non-Molecular Approaches and their Relevance to Biophysics. In: Biophotons, J.J.Chang, J.Fisch and F.A.Popp (eds), Dordrecht, Kluwer Academic Publishers, 375–394.

    Google Scholar 

  • Bischof, M. (1998b) The fate and future of field concepts — from metaphysical origins to holistic understanding in the bio-sciences. Invited lecture given at the Fourth Biennial European Meeting of the Society for Scientific Exploration, Valencia, Spain, October 9–11.

    Google Scholar 

  • Bischof, M. (1998c) Skalarwellen und Quantenfelder als mögliche Grundlage biologischer Information. Erfahrungsheilkunde 47 (5), 295–300.

    Google Scholar 

  • Bischof, M. (2000a) Field concepts and the emergence of a holistic biophysics, in Beloussov, L.V., Popp, F.A., Voeikov, V.L., and Van Wijk, R. (eds.) Biophotonics and Coherent Structures. Moscow, Moscow University Press, 1–25.

    Google Scholar 

  • Bischof, M. (2000b) Wege zu einer integralen Heilkunde. In Salutive, ed. Gesundheitsakademie e.V. Frankfurt, Mabuse.

    Google Scholar 

  • Bischof, M. (2000e) Energiemedizin–Heilkunst der Zukunft. Esotera, 8, 16–21, and 9, 20–25.

    Google Scholar 

  • Bohm, D. (1980) Wholeness and the Implicate Order. London, Routledge.

    Google Scholar 

  • Bohm, D.; Hiley, B.J. (1993) The Undivided Universe. An Ontological Interpretation of Quantum Theory. London, Routledge.

    Google Scholar 

  • Bohr, N. (1932) Light and Life. Nature 131, 421–423, 457–459.

    Google Scholar 

  • Bone, S., Zaba, B. (1992) Bioelectronics. Chichester, Wiley.

    Google Scholar 

  • Bose, J.C. (1902) Response in the Living and Non-Living. London, Longmans, Green and Co. Bose, J.C. (1907) Comparative Electro-Physiology. London, Longmans, Green Co.

    Google Scholar 

  • Bose, J.C. (1915) Plant Autographs and Their Revelations. Washington.

    Google Scholar 

  • Bose, J.C. (1920) Collected Physical Papers. London, Longmans, Green Co.

    Google Scholar 

  • Bose, J.C. (1923) The Physiology of the Ascent of Sap. London, Longmans, Green Co.

    Google Scholar 

  • Braud, W.G. (1992) Human interconnectedness: Research indications. Re Vision, 14 (3), 140148.

    Google Scholar 

  • Braud, W., Schlitz, M.J. (1983) Psychokinetic influence on electrodermal activity. Journal of Parapsychology, 47 (2), 95–119.

    Google Scholar 

  • Braud, W., Schlitz, M.J. (1991) Consciousness interactions with remote biological systems: Anomalous intentionality effects. Subtle Energies, 2 (1), 1–46.

    Google Scholar 

  • Brown, F.A., jun. (1954) Biological clocks and the fiddler crab. Scientific American, 190, 3437.

    Google Scholar 

  • Brown, F.A., jun. (1976) Evidence for external timing of biological clocks. In Palmer, J.D., An Introduction to Biological Rhythms. New York, Academic Press, 209–279.

    Google Scholar 

  • Brugger, P. et al. (2000) Beyond re-membering: Phantom sensations of congenitally absent limbs. Proceedings of the National Academy of Science USA, 97 (11) 6167–6172.

    Google Scholar 

  • Brunt, E.E. van, Shepherd, M.D., Wall, J.R., Ganong, W.F., Clegg, M.T. (1964) Penetration of light into the brain of mammals. Annals of the New York Academy of Sciences, 117, 217–227.

    ADS  Google Scholar 

  • Bullowa, M. (1975) When infant and adult communicate, how do they synchronize their behaviors ? In: Kendon, A., Harris, R.M., Key, M.R. (eds.), Organization of Behaviour in Face-To-Face Interaction. The Hague, Mouton, 95–129.

    Google Scholar 

  • Burns, J.T. (1997) Cosmic Influences on Humans, Animals, and Plants. An Annotated Bibliography. (Magill Bibliographies). Lanham, MD, Scarecrow Press and Pasadena, CA, Salem Press.

    Google Scholar 

  • Bünning, E. (1958) Die physiologische Uhr. English ed. The Physiological Clock. 3`d rev. ed. Berlin, Springer 1973.

    Google Scholar 

  • Burr, H.S. (1947) Field theory in biology. The Scientific Monthly, 64 (March), 217–225.

    Google Scholar 

  • Burr, H.S., Northrop, F.S.C. (1935) The electrodynamic theory of life. Quarterly Review of Biology, 10, 322–333.

    Google Scholar 

  • Burr, H.S. (1972) Blueprint for Immortality - The Electric Patterns of Life. London, Neville Spearman.

    Google Scholar 

  • Buttersack, F. (1912) Latente Erkrankungen des Grundgewebes, insbesondere der serösen Häute. Stuttgart, Ferdinand Enke Verlag.

    Google Scholar 

  • Büttner, K. (1951) W.F.Petersen t. Archiv für Meteorologie, Geophysik und Bioklimatologie, Series B, 2, 291.

    Google Scholar 

  • Cannon, W.B. (1929) Bodily Changes in Pain, Hunger, Fear, and Rage. 2“d. ed. New York, Appleton.

    Google Scholar 

  • Cannon, W.B. (1932) The Wisdom of the Body. Philadelphia, W.W.Norton.

    Google Scholar 

  • Capel-Boute, C. (1974) L’oeuvre scientifique de G.Piccardi. Medicina Termale e Climatologia, 22, 69–74.

    Google Scholar 

  • Capel-Boute, C. (1983) Fluctuating phenomena in physical chemistry and biology. Cycles, 34 (3), 49–53.

    Google Scholar 

  • Capel-Boute, C. (1985) Water as receptor of environmental information? Journal of Biometeorology, 29, Suppl. 2, 71–88.

    Google Scholar 

  • Capel-Boute, C. (1990) Water a receptor of environmental information: A challenge to reprodcibility in experimental research — The Piccardi scientific endeavour. In Tomassen, G.J.M. (eds.), Geo-Cosmic Relations — The Earth and its Macro-Environment. Wageningen, Pudoc, 7591.

    Google Scholar 

  • Carlson, E.A. (1971) An unaknowledged founding father of molecular biology, H.J.Muller’s contribution to gene theory, 1910–1936. Journal of the History of Biology, 4 (1), 149–170.

    Google Scholar 

  • Carrel, A. (1935) Man— the Unknown. New York.

    Google Scholar 

  • Cat, J. (1998) The physicists’ debates on unification in physics at the end of the 20th century. Historical Studies in the Physical and Biological Sciences, 28, part 2, 253–299.

    Google Scholar 

  • Chalmers, D.J. (1995) Facing up to the problem of consciousness. Journal of Consciousness Studies 2 (3), 200–219.

    Google Scholar 

  • Chauvois, L. (1941) D ‘Arsonval — une vie, une époque 1851–1940. Paris, Librairie Plon. Chew, G. (1970) Hadron bootstrap: triumph or frustration ? Physics Today 23, 23–28.

    Google Scholar 

  • Chizhevsky, A.L. (1930) Epidemic Catastrophes and the Periodic Activity of the Sun (in Russian). Moscow.

    Google Scholar 

  • Chizhevsky, A.L. (1968) The Earth in the Universe. V.V.Fedynsky, ed. NASA TT F-345 TT 6651025.

    Google Scholar 

  • Chizhevsky, A.L. (1973) The Terrestrial Echo of Solar Storms. Moscow: Mysl (written in 1936). Clark, W. M. (1925) The Determination of Hydrogen Ions. Baltimore, Williams and Wilkins.

    Google Scholar 

  • Clark, W. M. (1928) Studies on oxidation-reduction. Hygienic Laboratory Bulletin, No. 151. Washington, United States Public Health Service.

    Google Scholar 

  • Clegg, J.S. (1981) Intracellular water, metabolism, and cell architecture. Part I: Collective Phenomena, 3, 289–312.

    Google Scholar 

  • Clegg, J.S. (1983) Intracellular water, metabolism, and cell architecture. Part I1. In: Fröhlich, H., Kremer, F. (eds.), Coherent excitations in biological systems. Berlin, Springer, 162–177.

    Google Scholar 

  • Clegg, J.S. (1984) Properties and Metabolism of the Aqueous Cytoplasm and its Boundaries. American Journal of Physiology, 246, RI33–R151.

    Google Scholar 

  • Clegg, J.S. (1987) On the physical properties and potential roles of intracellular water. In G.R.Welch and J.S.Clegg (eds.), The Organisation of Cell Metabolism. (Nato ASI Series.Series A: Life Sciences, 127 ). New York, Plenum, 41–55.

    Google Scholar 

  • Clegg, J.S. (1992) Cellular infrastructure and metabolic organization. Current Topics in Cellular Regulation, 33, 3–14. New York, Academic Press.

    Google Scholar 

  • Condon, W.S., Sander, L.A. (1974) Neonate movement is synchronized with adult speech. Science, 183, 99–101.

    ADS  Google Scholar 

  • Conrad, M. (1989) Physics and Biology: Towards a Unified Model. Applied Mathematics and Computation 32, 75–102.

    MathSciNet  MATH  Google Scholar 

  • Conrad, M. (1989) The Fluctuon Model of Force, Life, and Computation: A Constructive Analysis. Applied Mathematics and Computation 56, 203–259.

    MathSciNet  Google Scholar 

  • Cope, F.W. (1973) Supramolecular biology: A solid state physical approach to ion and electron transport. Annals of the New York Academy of Sciences, 204, 416–433.

    ADS  Google Scholar 

  • Cope, F.W. (1969) Nuclear magnetic resonance evidence using D2O for structured water in muscle and brain. Biophysical Journal, 9 (3), 303–319

    Google Scholar 

  • Cope, F.W. (1970) The solid-state physics of electron and ion transport in biology. Advances in Biological and Medical Physics, 13, 1–42.

    Google Scholar 

  • Cope, F.W. (1975) A review of the applications of solid state physics concepts to biological systems. Journal of Biological Physics 3, 1–41.

    Google Scholar 

  • Cope, F.W. (1976) A primer of water structuring and cation association in cells. 1. Introduction: The big picture. Physiological Chemistry and Physics, 8, 479–483; II. Historical notes, present status, and future directions. Physiological Chemistry and Physics, 8, 569–574.

    Google Scholar 

  • Cope, F.W. (1977) Pathology of structured water and associated cations in cells (the tissue damage syndrome) and its medical treatment. Physiological Chemistry and Physics, 9, 547–553.

    Google Scholar 

  • Cowan, D.A. (1975) Mind Underlies Spacetime — A Idealistic Model of Reality. San Mateo, CA, Joseph Publishing.

    Google Scholar 

  • Cranefield, P.F. (1957) The organic physics of 1847 and the biophysics of today. Journal of the History of Medicine, 12, 407–423.

    Google Scholar 

  • Culotta, C.A., (1974) German biophysics, objective knowledge, and romanticism. In Historical Studies in the Physical Sciences, ed. R. McCormmach. 4, 3–39.

    Google Scholar 

  • Damadian, R. (1971) Tumor detection by nuclear magnetic resonance. Science, 171 (3976), 11511153.

    Google Scholar 

  • Dasgupta, S. (1999) Jagadis Chandra Bose and the Indian Response to Western Science. New Delhi, Oxford University Press.

    Google Scholar 

  • Davis, K.B. et al. (1995) Bose-Einstein condensation in a gas of sodium atoms. Physical Review Letters, 75, 3969–3973.

    ADS  Google Scholar 

  • Deane, W.N. (1961) The reactions of a nonpatient to a stay on a mental hospital ward. Psychiatry, 24, 61–68.

    Google Scholar 

  • Delhoume, L. (1939) De Claude Bernard à d’Arsonval. Paris, Baillière.

    Google Scholar 

  • Delore, P. (1926) Facteur acide-base et tuberculose pulmonaire. Étude physiologique du terrain dans la tuberculose. Paris Doin.

    Google Scholar 

  • De Martino, S., De Siena, S., De Nicola, S., Fedele, R., Miele, G., (eds.) (1997) New Perspectives in the Physics of Mesoscopic Systems - Quantum-like Descriptions and Macroscopic Coherence Phenomena. Singapore, World Scientific.

    Google Scholar 

  • Dessauer, F., Sommermeyer, K. (1964) Quantenbiologie. 2nd ed. Berlin, Springer.

    Google Scholar 

  • Dicke, R.H. (1954) Coherence in Spontaneous Radiation Processes. Physical Review, 93, 99–110.

    ADS  MATH  Google Scholar 

  • Donnan, F.G. (1929) The Mystery of Life. Report of the British Association for the Advancement of Science, Glasgow, 96th meeting, 660.

    Google Scholar 

  • Dossey L (1992) Era III Medicine: The Next Frontier. ReVision 14 (3), 128–139.

    Google Scholar 

  • Dossey, L. (1999) Reinventing Medicine. San Francisco, HarperCollins.

    Google Scholar 

  • Drost-Hansen, W., Clegg, J.S., (eds.) (1979) Cell-Associated Water. New York, Academic Press.

    Google Scholar 

  • Duane, T.D., Behrendt, T. (1965) Extrasensory electroencephalographic induction between identical twins. Science, 150, 367.

    ADS  Google Scholar 

  • Dubrov, A.P. (1978) The Geomagnetic Field and Life - Geomagnetobiology. New York, Plenum Press.

    Google Scholar 

  • Duncan, A.J., Kleinpoppen, H. (1988) The experimental investigation of the EinsteinPodolsky-Rosen question and Bell’s inequality. In Selleri, F. (ed.), Quantum Mechanics versus Local Realism — The Einstein-Podolsky-Rosen Paradox, New York, Plenum Press, 175–218.

    Google Scholar 

  • Dürr, H.P. (1968) Dynamik der Elementarteilchen. In Süssmann, G. and Fiebiger, N. (eds.), Atome, Kerne, Elementarteilchen, Frankfurt a.M., 229 ff.

    Google Scholar 

  • Dürr, H.P.: (1997) Ist Biologie nur Physik ? Universitas, No. 607, 1.

    Google Scholar 

  • Dürr, H.P. (1998) Paper read at Gelterswoog symposium on biophysics, March 14`h, Kaiserslautern, Germany.

    Google Scholar 

  • Eccles, J.C. (1986) Do mental events cause neural events analogously to the probability fields of quantum mechanics ? Proceedings of the Royal Society,London, B 227, 411–428.

    Google Scholar 

  • Eccles, R. (1993) Electrolytes, Body Fluids and Acid Base Balance. London, Edward Arnold.

    Google Scholar 

  • Edmunds, L.N., jr. (1976) Models and mechanisms for endogenous time keeping. In Palmer, J.D. An Introduction to Biological Rhythms, New York, Academic Press, 209–279.

    Google Scholar 

  • Edmunds, L.N., (ed.) (1984) Cell Cycle Clocks. New York, Marcel Dekker.

    Google Scholar 

  • Efron, R. (1967) Biology without consciousness — and its consequences. Perspectives in Biology and Medicine, 11 (1), 9–36.

    Google Scholar 

  • Einstein, A., Podolsky, B, and Rosen, N. (1935) Can quantum-mechanical description of physical reality be considered complete ? Physical Review, 47, 777–780.

    ADS  MATH  Google Scholar 

  • Elitzur, A.C. (1989) Consciousness and the incompleteness of the physical explanation of behaviour. The Journal of Mind and Behaviour 10, 1–19.

    Google Scholar 

  • Endler, P.C. and Schulte, J., (eds.) (1994) Ultra-High Dilution — Physiology and Physics. Dordrecht, Kluwer Academic.

    Google Scholar 

  • Eppinger, H. (1949) Die Permeabilitäts-Pathologie als die Lehre vom Krankheitsbeginn. Vienna, Springer-Verlag.

    Google Scholar 

  • Ernst, E., Scheffer, L. (1928) Pflügers Archiv f. d.ges. Physiol., 220, 655.

    Google Scholar 

  • Ernst, E. (1963) Biophysics of the Striated Muscle. Budapest, Akadémiai Kiadô.

    Google Scholar 

  • Evans, M.W. (1992) The elementary static magnetic field of the photon. Physica B 182, 227236.

    Google Scholar 

  • Evans, M.W. (1994) Classical relativistic theory of the longitudinal ghost fields of electrodynamics. Foundations of Physics 24 (11), 1519–1542.

    ADS  MathSciNet  Google Scholar 

  • Evans, M.W.; Vigier, J.P. (1994) The Enigmatic Photon. Vol.1: The Field B 3. Fundamental Theories of Physics, Vol. 64, Dordrecht, Kluwer Academic Publishers.

    Google Scholar 

  • Evans, M.W.; Vigier, J.P. (1995) The Enigmatic Photon. Vol.2: Non-Abelian Electrodynamics. Fundamental Theories of Physics, Vol. 68, Dordrecht, Kluwer Academic Publishers.

    Google Scholar 

  • Evans, M.W.; Vigier, J.P.; Roy, S.; Jeffers, S. (1996) The Enigmatic Photon. Vol.3: Theory and Practice of the Bi 33 Field. Fundamental Theories of Physics, Vol. 77, Dordrecht, Kluwer Academic Publishers.

    Google Scholar 

  • Evans, M.W., Vigier, J.P., Roy, S., Hunter, G. (1998) The Enigmatic Photon. Vol.4: New Directions. Fundamental Theories of Physics, Vol. 90, Dordrecht, Kluwer Academic Publishers.

    Google Scholar 

  • Evans, M.W. (1998) Electrodynamics as a Non-Abelian Gauge Field Theory. Frontier Perspectives 7 (2), 7–12.

    Google Scholar 

  • Fick, A. (1856) Die medizinische Physik. Braunschweig, Vieweg.

    Google Scholar 

  • Fick, A. (1904) Gesammelte Schriften,vol.3, pp.492 and 767, Würzburg.

    Google Scholar 

  • Findl, E. (19xx) Bioelectrochemistry–Electrophysiology–Electrobiology. In Bockris, J.O’M., Conway, B.E., White, R.E. (eds.), Modern Aspects of Electrochemistry. New York, Plenum Press, 509–555.

    Google Scholar 

  • Fischer, M.H., Moore, G. (1907) American Journal of Physiology, 20, 330.

    Google Scholar 

  • Fischer, M.H. (1910) Oedema: A Study of the Physiology and the Pathology of Water Absorption by the Living Organism. New York, John Wiley.

    Google Scholar 

  • Fischer, M.H., Hooker, M.O. (1933) The Lyophilic Colloids (Their Theory and Practice). Springfield, Illinois, Charles C. Thomas.

    Google Scholar 

  • Fliess, W. (1906) Der Ablauf des Lebens — Grundlegung zur exakten Biologie. Leipzig-Vienna, Franz Deuticke.

    Google Scholar 

  • Fischer, M.H., Suer, W.J. (1938)Archives of Pathology, 26, 51.

    Google Scholar 

  • Fischer, M.H., Suer, W.J. (1951) Der kolloide Aufbau der lebenden Substanz. Darmstadt Steinkopff.

    Google Scholar 

  • Fisher, S. (1986) Development and Structure of the Body Image. Hillsdale, NJ, Lawrence Erlbaum, 1986. 2 vols.

    Google Scholar 

  • Flexner, S, Flexner, J.T. (1941) William Henry Welch and the Heroic Age of American Medicine. New York, Viking Press.

    Google Scholar 

  • Fougerousse, A. (1992) L’approche bio-électronique de Vincent. Sciences du Vivant, No.4 (2ème trimestre), 63–79.

    Google Scholar 

  • Fox-Keller, E. (1983) A Feeling for the Organism. San Francisco W.H.Freeman. Friedman, N. (1997) The Hidden Domain. Eugene OR, Woodbridge Group.

    Google Scholar 

  • Fröhlich, F., Hyland, G. (1995) Fröhlich coherence at the mind-brain interface. In King, J. and Pribram, K.H. (eds.), Scale in Conscious Experience; Is The Brain Too Important To Be Left To Specialists To Study. Mahwah, N.J., Lawrence Erlbaum Associates, 405–438.

    Google Scholar 

  • Fröhlich, H. (1968) Long range coherence and energy storage in biological systems. International Journal of Quantum Chemistry, 2, 641–649.

    ADS  Google Scholar 

  • Fröhlich, H. (1969) Quantum mechanical concepts in biology. In Marois, M. (ed.), Theoretical Physics and Biology, Amsterdam, North-Holland, 13–22.

    Google Scholar 

  • Fröhlich, H. (1975) Evidence for Bose condensation-like excitation of coherent modes in biological systems. Physics Letters, 51A, 21–22.

    Google Scholar 

  • Glauber, R. J. (1964) Quantum theory of coherence. In Grivet, P. and Bloembergen, N. (eds.), Quantum Electronics. Paris, Dunod/New York, Columbia University Press, 1, 111–120

    Google Scholar 

  • Gabler, R. (1978) Electrical Interactions in Molecular Biophysics. New York, Academic Press.

    Google Scholar 

  • Gallagher, R. (1984) Riemann and the Göttingen school of physiology. Fusion, 6 (3), 24–30. Gamier, G. (1959) Wladislas Kopaczewski - le savant et son oeuvre. Lunéville.

    Google Scholar 

  • Gasan, A.I./Maleev, V.Ya./Semenov, M.A. (1990) Role of water in stabilizing the helical biomacromolecules DNA and collagen. Studia Biophysica, 136 (2–3), 171–178.

    Google Scholar 

  • Geddes, P. (1930) Life and Work of Sir J.C.Bose. New York: Benjamin Blom 1971. Genack, A.Z., Drake, J.M. (1994) Scattering for super-radiation. Nature, 368, 400–401.

    Google Scholar 

  • Gilbert, S.F., Opitz, J.M., and Raff, R.A. (1996) Resynthesizing evolutionary and developmental biology. Developmental Biology, 173, 357–372.

    Google Scholar 

  • Glansdorff, P, Prigogine, I., Thermodynamics of Structure, Stability and Fluctuations. London, Wiley, 1971.

    Google Scholar 

  • Glasser, O. (ed.) ( 1944, 1950, 1960) Medical Physics. 3 vols. Chicago, Yearbook Publishers.

    Google Scholar 

  • Glauber, R. J. (1963a) The quantum theory of optical coherence. Physical Review, 130 (6), 25212539.

    Google Scholar 

  • Glauber, R. J. (1963b) Coherent and incoherent states of the radiation field. Physical Review, 131 (6), 2766–2788.

    Google Scholar 

  • Goodwin, B.C. (1987) Developing organisms as self-organizing fields. In Self-Organizing Systems, 167–180, ed. Yates, F.E (ed.), New York, Plenum.

    Google Scholar 

  • Gulyaev, Yu.V.; Godik, E.E. (1987) The physical fields of biological objects. In Cybernetics of Living Matter, Makarov, I.M. (ed.), 244–250, Moscow, Mir Publishers.

    Google Scholar 

  • Goodwin, B.C. (1994) Toward a science of qualities. In New Metaphysical Foundations for Modern Science, Harman, W. (ed.), Sausalito, CA, Institute of Noetic Sciences, 215–250.

    Google Scholar 

  • Gortner, R.A. (1938) Outline of Biochemistry. 2“d. ed. New York, Wiley and Sons.

    Google Scholar 

  • Goswami, A. (1989) The Idealistic Interpretation of Quantum Mechanics. Physics Essays 2, 385–400.

    ADS  Google Scholar 

  • Goswami, A. (1993) The Self-Aware Universe. J.P.Tarcher/Putnam.

    Google Scholar 

  • Goswami, A. (1994) Science Within Consciousness — Developing a Science Based on the Primacy of Consciousness. Causality Issues in Contemporary Science, Research Report # CP7, Sausalito CA, Institute of Noetic Sciences.

    Google Scholar 

  • Gough, W.C., Shacklett, R.L. (1993) The science of connectiveness. Subtle Energies 4 (1), 5776, 4 (2), 99–123, 4 (3), 187–214.

    Google Scholar 

  • Grandpierre, A. (1997) The physics of collective consciousness. World Futures 48, 23–56.

    Google Scholar 

  • Grandpierre, A. (2000) The nature of man-universe connections. In Amoroso, R., Antunes, R., Coelho, C., Farias, M., Leite, A., and Soares, P. (eds.), Science and the Primacy of Consciousness, Orinda, CA., Noetic Press, 203–223.

    Google Scholar 

  • Gray, J. (1992) Consciousness on the scientific agenda. Nature 358, 277.

    ADS  Google Scholar 

  • Green, E. E. (1990) Consciousness, Psychophysiology, and Psychophysics: An Overview. Copper Wall Research Technical Note, No.1, November 21, 1990, Voluntary Controls Program, Topeka, Kansas, The Menninger Clinic.

    Google Scholar 

  • Green, E. E. (1991) Copper Wall Research — Psychology and Psychophysics. “Subtle Energy and Energy Medcine: Emerging Theory and Practice”. Proc. P` Ann. Conf. Int.Soc. for the Study of Subtle Energies and Energy Medcine (ISSSEEM), June 21–25, Boulder, Colorado. Golden, Colorado.

    Google Scholar 

  • Grinberg-Zylberbaum, J. (1987) Patterns of interhemispheric correlation during human communication. International Journal of Neuroscience, 36, 41–53.

    Google Scholar 

  • Grinberg-Zylberbaum, J., et al. (1992) Human communication and the electrophysiological activity of the brain. Subtle Energies, 3 (3), 25–43.

    Google Scholar 

  • Grinberg-Zylberbaum, J., et al. (1994) The Einstein-Podolsky-Rosen Paradox in the brain: The transferred potential. Physics Essays, 7 (4), 422–428.

    Google Scholar 

  • Gu, Q. (1998) Biophotons and nonclassical light. In Chang, J.J., Fisch, J., Popp, F.A. (eds.), Biophotons, Dordrecht, Kluwer Academic Publishers, 299–321.

    Google Scholar 

  • Gurwitsch, A. (1964) The Field of Consciousness. Pittsburgh, Duquesne University Press.

    Google Scholar 

  • Gurwitsch, A.G. (1923) Versuch einer synthetischen Biologie. Schaxels Abhandlungen zur theoretischen Biologie, 17, 1–87.

    Google Scholar 

  • Gurwitsch, A.G., Gurwitsch, L.D. (1959) Die mitogenetische Strahlung. Jena, Gustav Fischer.

    Google Scholar 

  • Gutenbrunner, C., Hildebrandt, G., and Moog, R., (eds.) (1993) Chronobiology and Chronomedicine: Basic Research and Applications. Frankfurt, Peter Lang.

    Google Scholar 

  • Hagelin, J.S. (1987) Is consciousness the unified field ? A field theorist’s perspective. Modern Science and Vedic Science 1 (1), 29–87.

    Google Scholar 

  • Haken, H. (1978) Synergetics. New York, Springer.

    MATH  Google Scholar 

  • Haken, H. (1980) Dynamics of Synergetic Systems. New York, Springer.

    MATH  Google Scholar 

  • Hadjamu, J. (1974) Professor Dr.med.Heinrich Schade, Begründer der Molekularpathologie, 1876–1935, Leben und Werk. Düsseldorfer Arbeiten zur Geschichte der Medizin, Heft 39, Düsseldorf, Michael Triltsch Verlag.

    Google Scholar 

  • Hagley, E. et al. (1997) Generation of Einstein-Podolsky-Rosen pairs of atoms. Physical Review Letters 79 (1), 1–5.

    Google Scholar 

  • Halberg, F. (1953) Some physiological and clinical aspects of 24-hour periodicity. Lancet (USA), 73, 20–32.

    Google Scholar 

  • Halberg, F. (1960) Temporal coordination of physiological function. Cold Spring Harbor Symoposia on Quantum Biology, 25, 289–310.

    Google Scholar 

  • Halberg, F. (1969a) Chronobiologie — rhythms et physiologie statistique. In Marois, M. (ed.), Theoretical Physics and Biology. Amsterdam, North-Holland, 347–393.

    Google Scholar 

  • Halberg, F. (1969b) Chronobiology. Ann. Rev. Physiol., 31, 675–725.

    Google Scholar 

  • Halberg, F. (1979) Physiologic 24-hour periodicity. Zeitschrift für Vitamin-, Hormon-, und Fermentforschung, 10, 225–296.

    Google Scholar 

  • Halberg, F. (1998) Chronomedicine. In: Armitage, P., Colton, T., (eds.), Encycloedia of Biostatistics, Vol. 1. Chichester, Wiley, 642–649.

    Google Scholar 

  • Harman, W. (1992) Reconciling the experience of consciousness with the scientific worldview. Presented at the HSRC Conference on Science and Vision, Pretoria, South Africa, January 31.

    Google Scholar 

  • Harman, W., Sahtouris, E. (1998) Biology Revisioned. Berkeley, North Atlantic Books.

    Google Scholar 

  • Haroche, S., Kleppner, D. (1989) Cavity Quantum Electrodynamics. Physics Today,42, No.1 24–30.

    Google Scholar 

  • Haroche, S. (1991) Cavity Quantum Optics. Physics World, 4 (3), 33–38.

    Google Scholar 

  • Hatfield, E., Cacioppo, J.T., and Rapson, R.L. (1994) Emotional Contagion. Cambridge, England, Cambridge University Press.

    Google Scholar 

  • Hauss, W.H., Losse, H. (1960) Struktur und Stoffwechsel des Bindegewebes. Stuttgart, Thieme.

    Google Scholar 

  • Hauss, W.H., Junge-Hülsing, G. (1961) Über die universelle unspezifische Mesenchymreaktion. Deutsche Medizinische Wochenschrift, 86, 763.

    Google Scholar 

  • Hauss, W.H., Junge-Hülsing, G., and Gerlach, U. (1968) Die unspezifische Mesenchymreaktion. Stuttgart: Gustav-Thieme-Verlag.

    Google Scholar 

  • Hay, E.D. (1983) Cell Biology of Extracellular Matrix. 2nd ed. Plenum Press, New York and London 1983.

    Google Scholar 

  • Hazlewood, C.F., Nichols, B.L., Chang, D.C., and Brown, B. (1971) On the state of water in the developing muscle. Johns Hopkins Medical Journal, 178, 117.

    Google Scholar 

  • Hazlewood, C.F. (1979) A view of the significance of and understanding of the physical properties of cell-associated water. In Drost-Hansen, W., Clegg, J.S., (eds.), Cell-Associated Water, New York, Academic Press.

    Google Scholar 

  • Hazlewood, C.F. (1991) Insight into the organization of water in living cells. In Tigyi, J., Kellermayer, M., and Hazlewood, C.F., (eds.) The Physical Aspect of the Living Cell. Budapest, Akademiai Kiad6, 107–118.

    Google Scholar 

  • Heine, H., Anastasiadis, P., (eds.) (1992), Normal Matrix and Pathological Conditions. Stuttgart, Gustav Fischer.

    Google Scholar 

  • Heine, H. (1997) Lehrbuch der biologischen Medizin. 2nd rev. ed. Stuttgart, Hippokrates. Heisenberg, W. (1958a) Physics and Philosophy. New York, Harper and Row.

    Google Scholar 

  • Heisenberg, W. (1958b) Physikalische Prinzipien der Quantentheorie. Mannheim, Bibliographisches Institut.

    Google Scholar 

  • Heisenberg, W. (1976) Was ist ein Elementarteilchen ? Naturwissenschaften 63 (1), 1–7.

    Google Scholar 

  • Hellpach, W. (1911) Die geopsychischen Erscheinungen. Publ. from 4th ed. under the title Geopsyche, Leipzig, Wilhelm Engelmann.

    Google Scholar 

  • Hellpach, W. (1924) Psychologie der Umwelt. In, E.Abderhalden (ed.), Handbuch der biologischen Arbeitsmethoden, Abt.VI, part Cl, 109–218, Vienna, Urban and Schwarzenberg.

    Google Scholar 

  • Henderson, L.J. (1909) Das Gleichgewicht zwischen Basen und Säuren im tierischen Organismus. Ergebnisse der Physiologie, L.Asher and K.Spiro (eds.), 8, 254–325.

    Google Scholar 

  • Henderson, L.J. (1913) The regulation of neutrality in the animal body. Science, 37 (950), 389–395.

    Google Scholar 

  • Henderson, L.J. (1913) The Fitness of the Environment. New York, Macmillan.

    Google Scholar 

  • Henderson, L.J. (1928) Blood: A Study in General Physiology. New Haven. Héricourt, J. (1927) Le Terrain dans les Maladies. Paris, Flammarion.

    Google Scholar 

  • Hess, W.R. (1948) Die funktionelle Organisation des vegetativen Nervensystems. Basel, Schwabe.

    Google Scholar 

  • Hill, A.V. (1930) Proceedings of the Royal Society (London). Ser.B., 106, 477.

    Google Scholar 

  • Hill, A.V., Kupalov, P.S. (1930) Proceedings of the Royal Society (London). Ser.B., 106, 445.

    Google Scholar 

  • Ho, M.W., Popp, F.A., and Warnke, U. (eds.) (1994) Bioelectromagnetics and Biocommunication. Singapore, World Scientific.

    Google Scholar 

  • Ho, M.W. (1993) The Rainbow and the Worm - The Physics of Organisms. Singapore: World Scientific.

    Google Scholar 

  • Ho, M.W. (19) Toward an indigenous Western science: Causality in the universe of coherent space-time structures. In New Metaphysical Foundations for Modern Science, Harman, W. (ed.) Sausalito, CA, Institute of Noetic Sciences, 179–213.

    Google Scholar 

  • Ho, M.W., French, A., Haffegee, J., Saunders, P.T. (1994) Can weak magnetic fields (or potentials) affect pattern formation ? In Bioelectrodynamics and Biocommunication, Ho, M.W., Popp, F.A. and Warnke U. (eds.), Singapore World Scientific, I95–212.

    Google Scholar 

  • Ho, M.W. (1996) Organisms as polyphasic liquid crystals. Bioelectrochemistry and Bioenergetics, 41, 81–91.

    Google Scholar 

  • Ho, M.W. (1997) Towards a theory of the organism. Integrative Physiological and Behavioral Science, 32 (4), 343–363.

    Google Scholar 

  • Ho, M.W. (1998) Organism and psyche in a participatory universe. In Loye, D. (ed.) The Evolutionary Outrider, Westport, CT, Praeger, 49–65.

    Google Scholar 

  • Ho, M.W. (1999) Genetic Engineering — Dream or Nightmare ? 2“d rev. ed. Dublin Gateway.

    Google Scholar 

  • Holmes, F.L. (1963) Claude Bernard and the milieu interieur. Archives Internationales d’Histoire des Sciences, 16, 369–376.

    Google Scholar 

  • Hoppe, W., Lohmann, W., Markl, H., and Ziegler, H., (eds.) (1982) Biophysics. 2“d compl. rev. ed., New York-Berlin, Springer.

    Google Scholar 

  • Huntington, E. (1915) Civilisation and Climate. New Haven, Yale University Press. Huntington, E. (1923) Earth and Sun. New Haven, Yale University Press.

    Google Scholar 

  • Huntington, E. (1930) Weather and Health. Bulletin of the National Research Council, Washington, National Academy of Science.

    Google Scholar 

  • Huntington, E. (1945) Mainsprings of Civilisation. New York, John Wiley and Sons.

    Google Scholar 

  • Inie, G. (1962) Das “Praecoxgefuhl” in der Diagnostik der Schizophrenie. Archiv für Psychiatrie, 203, 385–406.

    Google Scholar 

  • lnyushin, V.M., Grishchenko, V.S., Vorobyov, N.A., Shuyski, N.N., Fyodorowa, N.N. and Gibadulin, F.F. (1968) On the Biological Character of the Kirlian Effect — The Concept of Biological Plasma (in Russian). Alma-Ata Kazakh State University.

    Google Scholar 

  • Inyushin, V.M. (1970) Biological plasma of human and animal organisms. International Journal of Paraphysics, 5 (1/2), 50–53.

    Google Scholar 

  • Inyushin, V.M. (1977) Bioplasma: The fifth state of matter ? In White, J., Krippner, S. (eds.) Future Science, Garden City, N.J., Anchor-Doubleday, 115–120.

    Google Scholar 

  • Inyushin, V.M. (1983) Resonance, biostimulation and the problem of bioplasma. In Wolkowski, Z.W. (ed.) Proceedings Int. Symposium of Wave Therapeutics, Créteil, 123–129.

    Google Scholar 

  • Jantsch, E. (1980) The Self-Organizing Universe. Oxford Pergamon Press.

    Google Scholar 

  • Jibu, M.; Yasue, K. (1993) The basics of quantum brain dynamics. In Pribram, K.H., (ed.) (1993) Rethinking Neural Networks, Quantum Fields and Biological Data. Hilldale N.J., Erlbaum.

    Google Scholar 

  • Jibu, M., Yasue, K. (1995) Quantum Brain Dynamics and Consciousness: An Introduction. Philadelphia, John Benjamins Publishing.

    Google Scholar 

  • Jordan, P. (1934) Quantenphysikalische Bemerkungen zur Biologie und Psychologie. Erkenntnis, 4 (3), 215–252.

    Google Scholar 

  • Jordan, P. (1938) Die Verstärkertheorie der Organismen in ihrem gegenwärtigen Stand. Naturwissenschaften, 26, 537.

    ADS  Google Scholar 

  • Jordan, P. (1942) Begriff und Umgrenzung der Quantenbiologie. Physis (Stuttgart), No.1, 1326.

    Google Scholar 

  • Jordan, P. (1948) Die Physik und das Geheimnis des organischen Lebens. Braunschweig, Friedrich Vieweg and Sohn.

    Google Scholar 

  • Josephson, B.D.; Pallikara-Viras, F. (1991) Biological utilization of quantum nonlocality. Foundations of Physics, 21 (2), 197–207.

    Google Scholar 

  • Kafatos, M., Nadeau, R. (1990) The Conscious Universe — Part and Whole in Modern Physical Theory. New York, Springer.

    Google Scholar 

  • Kanitscheider, B. (1979) Philosophie und moderne Physik. Darmstadt, Wissenschaftliche Buchgesellschaft.

    Google Scholar 

  • Katchalsky, A., Curran, P.F. (1967) Nonequilibrium Thermodynamics in Biophysics. Cambridge, Mass.,Harvard University Press.

    Google Scholar 

  • Katz, J.R. (1917) The role of swelling. Kolloidchemische Beihefte, 9, 1–182.

    Google Scholar 

  • Kay, L.E. (1985) The secret of life: Niels Bohr’s influence on the biology program of Max Delbrück. Rivista di Storia della Scienza, 2 (3), 487–510.

    Google Scholar 

  • Kay, L.E. (1993) The Molecular Vision of Life — Caltech, the Rockefeller Foundation, and the Rise of the New Biology. New York, Oxford University Press.

    Google Scholar 

  • Keller, E.F. (1990) Physics and the emergence of molecular biology: A history of cognitive and political synergy. Journal of the History of Biology 23, 389–409.

    Google Scholar 

  • Kollath, W. (1968) Regulatoren des Lebens - vom Wesen der Redox-Systeme. Heidelberg, Karl F.Haug Verlag.

    Google Scholar 

  • Kopaczewski, M.W. (1921–22) La tension superficielle en biologie. Parts 1–3. Archives de Physique Biologique, 1(4) (1921), 145–167; 2 (2) (1922), 1–20; 2 (3) (1922), 1–12.

    Google Scholar 

  • Kopaczewski, M.W. (1923) Théorie et pratique des colloides en biologie et en médecine. Paris, Vigot Frères.

    Google Scholar 

  • Kopaczewski, M.W. (1926a) Introduction à l’étude des colloides. L ’état colloidal et ses applications. Paris, Gauthier-Villars.

    Google Scholar 

  • Kopaczewski, M.W. (1926b) Les ions d’hydrogène. Signification, mesure, applications, données numériques. Paris, Gauthier-Villars.

    Google Scholar 

  • Kopaczewski, M.W. (1930–38) Traité de Biocolloidologie. 2eme éd. Paris, Gauthier-Villars. vol. 1: Pratique des colloides (1930), tome 2, Biocolloides, vol. 3: Phénomènes colloidaux (1932–33), vol. 4: Etat colloidal en biologie (1933–36), vol. 5: État colloidal en médecine (1937–38).

    Google Scholar 

  • Kopaczewski, M.W. (1933) Role de la tension superficielle en biologie. Protoplasma, 19, 255292.

    Google Scholar 

  • Kopaczewski, M.W. (1936) Le terrain, le microbe et l’état infectieux: Claude Bernard ou Pasteur? Revue Scientifique, 74 (14), 417–425.

    Google Scholar 

  • Kopaczewski, M.W. (1938) Meteoropathologie. La Nature (Paris), 66 (3024), 272–276.

    Google Scholar 

  • Kopaczewski, M.W. (1939) Essai de météoropathologie - physique, clinique, thérapeutique. Paris, Baillière.

    Google Scholar 

  • Kopaczewski, M.W. (1947) D’Arsonval et la Biophysique. Rabat.

    Google Scholar 

  • Kracmar, F. (1971) Zur Biophysik des vegetativen Grundsystems. Physikalische Medizin und Rehabilitation, 12 (6), 120–122.

    Google Scholar 

  • Kraus, F. (1919) Allgemeine und spezielle Pathologie der Person. Klinische Syzygiologie. Thieme, Leipzig; 2nd ed.1926, Vol.]: Allgemeiner Teil. Vol. 2: Besonderer Teil: Tiefenperson.

    Google Scholar 

  • Kühnau, J. (1941) Redoxpotentiale und Redoxsysteme in der Medizin. Therapie der Gegenwart, 82, 35 and 375.

    Google Scholar 

  • Kuhnert, L., and Niedersen, U., (eds.) (1987) Selbstorganisation chemischer Strukturen —Klassiker der exakten Wissenschaften, 272, Leipzig, Akademische Verlagsgesellschaft Geest and Portig.

    Google Scholar 

  • Lakhovsky; G. (1963) The Secret of Life. Cosmic Rays and Radiations of Living Beings. 3rd rev. ed. Rustington, Sussex, England, Health Science Press.

    Google Scholar 

  • Lakhtakia, A., ed. (1993) Essays on the Formal Aspects of Electromagnetic Theory. Singapore, World Scientific Publishing.

    MATH  Google Scholar 

  • Laszlo, E. (1995) The Interconnected Universe — Conceptual Foundations of Transdisciplinary Unified Theory. Singapore, World Scientific.

    Google Scholar 

  • Laszlo, E. (1996) The Whispering Pond — A Personal Guide to the Emerging Vision of Science. Rockport, Mass., Element Books.

    Google Scholar 

  • Laughlin, C.D. (1996) Archetypes, neurognosis and the quantum sea. Journal of Scientific Exploration 10, 375–400.

    Google Scholar 

  • Laville, C. (1925) Electrodynamique du muscle. Paris.

    Google Scholar 

  • Laville, C. (1928) Le cancer - dérangement électrique de la cellule. Paris, Dunod, 1928.

    Google Scholar 

  • Laville, C. (1932) La négativation électrique. Montrouge: Imprimerie de l’Industrie, Later ed. Paris, Masson, 1934.

    Google Scholar 

  • Laville, C. (1934) De la notion du pH considérée comme révélatrice de l’intimité des mécanismes vitaux. pH, juillet 1934.

    Google Scholar 

  • Laville, C. (1950) Mécanismes Biologiques. Paris, Dunod.

    Google Scholar 

  • Lawandy, N.M., et al. (1994) Laser action in strongly scattering media. Nature, 368 (6470), 436438.

    Google Scholar 

  • Lawrence, C. and Weisz, G., (eds.) (1998) Greater Than the Parts - Holism in Biomedicine 1920–1950. New York, Oxford University Press.

    Google Scholar 

  • Leggett, A.J. (1986) The superposition principle in macroscopic systems. In Quantum Concepts in Space and Time, Penrose, R. and Isham C.J. (eds.) Oxford, Clarendon Press, 228–240.

    Google Scholar 

  • Leggett, A.J. (1992) Quantum Tunnelling in Condensed Media, Yu Kagan and Leggett, A.J. (eds). Elsevier Science.

    Google Scholar 

  • Leggett, A.J. (1996) The current status of quantum mechanics at the macroscopic level. Foundations of Quantum Mechanics in the Light of New Technology, eds. Nakajima S., Murayama, Y., and Tonomura, A. (eds.), Singapore: World Scientific, 257–267.

    Google Scholar 

  • Letokhov, V.S. (1968) Generation of light by a scattering medium with negative resonance absorption. Soviet Physics JETP, 26, 835–839.

    ADS  Google Scholar 

  • Lewin, K. (1936) Principles of Topological Psychology. New York, McGraw-Hill.

    Google Scholar 

  • Lewin, K. (1951) Field Theory in Social Science. New York, Harper and Brothers.

    Google Scholar 

  • Li, K.H. (1992) Coherence in physics and biology. In Popp, F.A., Li, K.H., Gu, Q. (eds.), Recent Advances in Biophoton Research and its Applications, Singapore, World Scientific Publishing, 113–155.

    Google Scholar 

  • Li, K.H. (1994) Uncertainty Principle, coherence, and structures. In R.K.Mishra, D. Maass, and E.Zwierlein (eds.), On Self-Organization, Berlin, Springer, 245–255.

    Google Scholar 

  • Li, K.H. (1995) Coherence–A Bridge between Micro-and Macro-Systems. Biophotonics–Non-Equilibrium and Coherent Systems in Biology, Biophysics and Biotechnology., ed. L.V.Belousov, and Popp, F.A. (eds.), 99–114, Moscow, Bioinform Services.

    Google Scholar 

  • Lichtwitz, L., Liesegang, R.E., and Spiro, K. (1935) Medizinische Kolloidlehre. Dresden, Steinkopff.

    Google Scholar 

  • Lieth, H.H. (1981) 25 years of International Society of Biometerology. International Journal of Biometerology,25 (3).

    Google Scholar 

  • Ling, G.N. (1960) The interpretation of selective ionic permeability and cellular potential in terms of fixed charge/induction hypothesis. Journal of General Physiology, 43, 149.

    Google Scholar 

  • Ling, G.N. (1962) A Physical Theory of the Living State: The Association-Induction Hypothesis. Waltham, Mass., Blaisdell.

    Google Scholar 

  • Ling, G.N. (1992) A Revolution in the Physiology of the Living Cell. Malabar, Florida, Krieger Publishing.

    Google Scholar 

  • Ling, G.N. (2001) Life at the Cell and Below-Cell Level. The Hidden History of a Fundamental Revolution in Biology. New York, Pacific Press.

    Google Scholar 

  • Lipkind, M. (1998) Alexander Gurwitsch and the concept of the biological field. Part 1. 2l’ Century Science and Technology, 11 (2), 36–51.

    Google Scholar 

  • Lipkind, M. (1998) Alexander Gurwitsch and the concept of the biological field. Part 2. 21’’ Century Science and Technology, 11 (3).

    Google Scholar 

  • Loofbourow, J.R. (1940) Borderland problems in biology and physics, Rev.Mod.Phys., 12 (4), 267.

    Google Scholar 

  • Luce, G.G. (1971) Biological Rhythms in Human and Animal Physiology. New York, Dover. Lund, E.J. (1947) Bioelectric Fields and Growth. Austin/Texas University of Texas Press.

    Google Scholar 

  • Mandoli, D.F., Briggs, W.R. (1982) Optical properties of etiolated plant tissues. Proceedings of the National Academy of Sciences of the USA, 79, 2902.

    ADS  Google Scholar 

  • Mandoli, D.F., Briggs, W.R. (1984) Fiber optics in plants. Scientific American, 251, 90–98.

    Google Scholar 

  • Mansfield, V. (1995) On the physics and psychology of transference as an interactive field. http://lightlink.com/vic/field.htm.

    Google Scholar 

  • Manzelli, P., Masini, G., and Costa, M. (1994) I Segreti dell’Acqua. L ‘opera scientifica di Giorgio Piccardi. Roma, Di Renzo Editore.

    Google Scholar 

  • Marois, M., ed. (1969) Theoretical Physics and Biology. Amsterdam, North-Holland Publishing.

    Google Scholar 

  • Marois, M., (ed.) (1971) From Theoretical Physics to Biology. Paris, Editions du CNRS. Marois, M., (ed.) (1973) From Theoretical Physics to Biology.Basel, S.Karger.

    Google Scholar 

  • Marois, M., (ed.) (1975) From Theoretical Physics to Biology. Amsterdam, North-Holland.

    Google Scholar 

  • Marois, M. (1997) Documents of History: Life and Human Destiny. The Institut de la Vie. Paris, Rive Droite.

    Google Scholar 

  • McBroom, P. (1966) Body Dances to Speech. Science News, 89, 483.

    Google Scholar 

  • Meystre, P., Walls, D.F. (1991) Nonclassical Effects in Quantum Optics. Key Papers in Physics, Bristol, Adam Hilger, American Institute of Physics.

    Google Scholar 

  • Michaelis, L. (1914) Die Wasserstoffionenkonzentration. Berlin, Julius Springer.

    Google Scholar 

  • Michaelis, L. (1933) Oxydations-und Reduktionspotentiale. Berlin, Julius Springer.

    Google Scholar 

  • Mickulecky, M., (ed.) (1993) The Moon and Living Matter. Bratislava, Slovak Medical Society.

    Google Scholar 

  • Mickulecky, M., (ed.) (1994) Sun, Moon and Living Matter. Bratislava, Slovak Medical Society.

    Google Scholar 

  • Mickulecky, M., (ed.) (1997) Chronobiology and its Roots in the Cosmos. Bratislava, Slovak Medical Society.

    Google Scholar 

  • Milburn, M.P. (1994) Emerging relationships between the paradigms of oriental medicine and the frontiers of Western biological science. American Journal of Acupuncture, 22 (2), 145157.

    Google Scholar 

  • Milburn, M.P. (2001) The Future of Healing — Exploring the Parallels of Eastern and Western Medicine. Freedom, California: The Crossing Press.

    Google Scholar 

  • Millay, J. (1981) Brainwave synchronization: A study of subtle forms of communication. Humanistic Psychology Institute Review, 3, 9–40.

    Google Scholar 

  • Mishra, R.K., Bhaumik, K., Mathur, S.C., and Mitra, P.P. (1979) Excitons and Bose-Einstein condensation in living systems. International Journal of Quantum Chemistry, 16, 691–706

    Google Scholar 

  • Mishra, R.K. (1975) Occurrence, fluctuations and significance of liquid crystallinity in living systems. Molecular Crystals and Liquid Crystals, 29. 201–224.

    Google Scholar 

  • Mishra, R.K. (1990) The living state–the matrix of self-organization. In Mishra, R.K.(ed.), Molecular and Biological Physics of Living Systems, Dordrecht, Kluwer Academic Publishers, 215–237.

    Google Scholar 

  • Mitman, G., Fausto-Sterling, A. (1992) Whatever happened to Planaria? C.M.Child and the physiology of inheritance. In Clarke A.E. and Fujimura J.H. (eds.), The Right Tool for the Right Job: At Work in Tweentieth-Century Life Sciences. Princeton, Princeton University Press, 172–197.

    Google Scholar 

  • Moore, G., Roaf, H.E. (1908) Biochemical Journal, 3, 55.

    Google Scholar 

  • Morton, Michael E., Dlouhy, Carrie (eds.) (1989) Energy Fields in Medicine. A Study of Device Technology Based on Acupuncture Meridians and Chi Energy. Kalamazoo, Michigan, John E.Fetzer Foundation.

    Google Scholar 

  • Murphy, G. (1945) Field theory and survival. Journal of the American Society for Psychical Research, 39 (4), 181–209.

    Google Scholar 

  • Murphy, G. (1947) Personality — A Biosocial Approach to Origins and Structure. New York, Harper and Brothers.

    Google Scholar 

  • Murphy, G. (1961) Toward a field theory of communication. Journal of Consciousness, 11, 196–201.

    Google Scholar 

  • Murphy, M.P., O’Neill, L.A.J., (eds.) (1995) What is Life ? The Next Fifty Years. Speculations on the Future of Biology. Cambridge, Cambridge University Press.

    Google Scholar 

  • N.N. (1999) Can physics deliver another biological revolution ?Nature 397, 476–77.

    ADS  Google Scholar 

  • Nalimov, V.V. (1981) In the Labyrinths of Language. Philadelphia, ISI Press.

    Google Scholar 

  • Nalimov, V.V. (1982) Realms of the Unconscious. Philadelphia, ISI Press.

    Google Scholar 

  • Nalimov, V.V. (1989) Spontaneity of Consciousness. Moscow, Prometheus Publishers (in Russian).

    Google Scholar 

  • Nassonov, D.H. (1959) The Local Reaction of the Protoplasm and the Spreading of Excitation (in Russian). Moscow, Academy of Sciences.

    Google Scholar 

  • Nelson, R.D., Bradish, G.J., Dobyns, Y.H., Dunne. B.J., and Jahn, R.G. (1996) FieIdREG anomalies in group situations. Journal of Scientific Exploration, 10 (1), 111–141.

    Google Scholar 

  • Nelson, R.D., Jahn, R.G., Dunne. B.J., Dobyns, Y.H., and Bradish, G.J. (1998) FieIdREG Il: Consciousness field effects: Replications and explorations. Journal of Scientific Exploration, 12 (3), 425–454.

    Google Scholar 

  • Nicolis, G., Prigogine, I. (1977) Self-Organization in Non-Equilibrium Systems. New York, Wiley.

    Google Scholar 

  • Newton, R., and Gortner, R.A. (1922) A method for estimating hydrophilic colloid content of expressed plant tissue fluids. Botanical Gazette, 74, 442–446.

    Google Scholar 

  • Ninham, B.W. (1982) Surface forces in biological systems. In Franks, F., Mathias, S.F., (eds.), Biophysics of Water, Chichester: Wiley, 105–119.

    Google Scholar 

  • Norretranders, T. (1998) The User Illusion. Cutting Consciousness Down to Size. New York, Viking.

    Google Scholar 

  • Nuccitelli, R., (ed.) (1986) Ionic Currents in Development. New York, Alan R. Liss, 1986.

    Google Scholar 

  • Olmsted, E.H. (1967) Historical phases in the influence of Bernard’s scientific generalizations in England and America. In Grande, F. and Visscher, M.B. (eds.), Claude Bernard and Experimental Medicine. Cambridge, Massachusetts, Schenkman, 24–34.

    Google Scholar 

  • Orszâgh, J. (1990) Réactions d’oxydo-réduction et acido-basiques–vers une approche théorique et expérimentale plus cohérente. Sciences du Vivant, No.1 (3ème trimestre), 23–35.

    Google Scholar 

  • Orszâgh, J. (1992) Quelques aspects physio-chimiques des coordonnées bioélectroniques. Sciences du Vivant, No.4 (2ème trimestre), 45–62.

    Google Scholar 

  • Oschman, J.L. (1996) The nuclear, cytoskeletal and extracellular matrices: a continous communication network. Center for Advanced Studies in the Space Life Sciences Workshop on “The Cytoskeleton: Mechanical, Physical, and Biological Interactions”, Nov.15–17, 1996, Marine Biological Laboratory, Woods Hole, Mass., Poster Session. http://www.mbl.edu/CASSES/Oschman.poster.html.

    Google Scholar 

  • Oschman, J.L. (2000) Energy Medicine — The Scientific Basis. Edinburgh, Churchill Livingston.

    Google Scholar 

  • Palmer, J.D. (1976) An Introduction to Biological Rhythms. New York, Academic Press.

    Google Scholar 

  • Petersen, W.F., Levinson, S.A. (1930) The Skin Reactions, Blood Chemistry and Physical Status of ‘Normal’ Men and of Clinical Patients,Archives of Pathology, 9, published as a separate monograph.

    Google Scholar 

  • Petersen, W.F. (1936) The Patient and the Weather. Ann Arbor, Michigan: Edwards. 4 vols. Petersen, W.F. (1947) Man Weather Sun. Springfield, Ill., C.C.Thomas.

    Google Scholar 

  • Piccardi, G. (1962) The Chemical Basis of Medical Bioclimatology. Springfield, Ill. C.C.Thomas.

    Google Scholar 

  • Pienta, K.J., and Coffey, D.S. (1991) Cellular harmonic information transfer through a tissue tensegrity-matrix system. Medical Hypotheses, 34, 88–95.

    Google Scholar 

  • Pierce, G.J. (1927) Sir J.C.Bose and his latest book. Science, 66 (1721), 621–622.

    Google Scholar 

  • Pike, E.R., Walther, H., (eds.) (1988), Photons and Quantum Fluctuations. Bristol and Philadelphia, Adam Hilger.

    Google Scholar 

  • Pischinger, A. (1991) Matrix and Matrix Regulation — Basis for a Holistic Theory in Medicine. Brussels, Haug International.

    Google Scholar 

  • Planck, M. (1931) Nature, April 18, 1931.

    Google Scholar 

  • Popp, F.A., Nagl, W., Li, K.H., Scholz, W., Weingärtner, O., Wolf, R. (1984) Biophoton emission, New evidence for coherence and DNA as a source. Cell Biophysics, 6, 33–51.

    Google Scholar 

  • Popp, F.A. (1986) Bericht an Bonn. Essen, Germany, VGM.

    Google Scholar 

  • Popp, F.A., Warnke, U., König, H.L. and Peschka, W., (eds.) (1989) Electromagnetic BioInformation. 2nd ed. Munich-Baltimore, Urban and Schwarzenberg.

    Google Scholar 

  • Popp, F.A., Li, K.H., Gu, Q., (eds.) (1992) Recent Advances in Biophoton Research and its Applications. Singapore, World Scientific.

    Google Scholar 

  • Popp, F.A. (1994) Electromagnetism and Living Systems. In Ho, M.W., Popp, F.A., and Warnke, U. (eds.), Bioelectromagnetics and Biocommunication. Singapore, World Scientific, 33–80.

    Google Scholar 

  • Popp, F.A., Chang, J.J., Herzog, A., Yan, Z, and Yan, Y. (2002) Evidence of non-classical (squeezed) light in biological systems. Physics Letters A, 293, 98–102.

    ADS  Google Scholar 

  • Popper, K.R., Eccles, J.C. (1977) The Self and Its Brain. New York, Springer International.

    Google Scholar 

  • Porter, K.R., Tucker, J.B. (1981) The ground substance of the living cell. Scientific American, 244, 57–67.

    Google Scholar 

  • Porter, K.R. (1984) The cytomatrix: A short history of its study. Journal of Cell Biology, 99, 3s - 12s.

    Google Scholar 

  • Presman, A.S. (1970) Electromagnetic Fields and Lift. New York and London, Plenum Press. ( Original Russian edition: Nauka, Moscow 1968 ).

    Google Scholar 

  • Pribram, K.H., (ed.) (1993) Rethinking Neural Networks: Quantum Fields and Biological Data. Hillsdale N.J., Erlbaum.

    Google Scholar 

  • Prigogine, I. (1947) Étude Thermodynamique des Phénomènes Irréversibles. Liège, Desoer.

    Google Scholar 

  • Prigogine, I. (1961) Introduction to Thermodynamics of Irreversible Processes. New York’, Wiley.

    MATH  Google Scholar 

  • Primas, H. (1981) Chemistry, Quantum Mechanics, and Reductionism. Lecture Notes in Chemistry, Vol. 24, Berlin, Springer.

    Google Scholar 

  • Primas, H. (1982) Chemistry and complementarity. Chimia 36, 293–300.

    Google Scholar 

  • Primas, H. (1985) Kann Chemie auf Physik reduziert werden ? Chemie in unserer Zeit 19 (4), 109-xx and 19 (5), 160–166.

    Google Scholar 

  • Primas, H. (1990) Biologie ist mehr als Molekularbiologie. In Fischer, E.P., Mainzer, K., (eds.), Die Frage nach dem Leben, Piper, Munich, 63–92.

    Google Scholar 

  • Primas, H. (1992) Umdenken in der Naturwissenschaft. GAIA 1 (I), 5–15.

    Google Scholar 

  • Primas, H. (1993) Ein Ganzes, das nicht aus Teilen besteht — Komplementarität in den exakten Naturwissenschaften. In Mannheimer Forum 92/93, ed. E.P.Fischer. Mannheim: Boehringer.

    Google Scholar 

  • Primas, H., Atmanspacher, H. and Amann, A. (eds.) (1999) On Quanta, Mind and Matter. Hans Primas in Context. Lecture Notes in Chemistry, 24, Dordrecht, Kluwer.

    Google Scholar 

  • Radin, D., Rebman, J.M. and Cross, M.P. (1996) Anomalous organization of random events by group consciousness: Two exploratory experiments. Journal of Scientific Exploration, 10 (1), 143–168.

    Google Scholar 

  • Radin, D. (1997) The Conscious Universe - The Scientific Truth of Psychic Phenomena. San Francisco, Harper, San Francisco.

    Google Scholar 

  • Rashevsky, N. (1960) Mathematical Biophysics. 3. ed. New York, Dover.

    Google Scholar 

  • Rashevsky, N. (1962) Physicomathematical Aspects of Biology. New York, Academic Press.

    Google Scholar 

  • Rein, G. (1989) Effect of non-hertzian scalar waves on the immune system. Journal of the U.S. Psychotronics Association, 1, 15.

    Google Scholar 

  • Rein, G. (1991) Utilization of a cell culture bioassay for measuring quantum potentials generated from a modified caduceus coil. Proceedings of the 26` h Intersociety Energy Conversion Engineering Conference, August 4–9, 1991, Boston, 4, 400–403.

    Google Scholar 

  • Rein, G. (1993) Modulation of neurotransmitter function by quantum fields. In Pribram, K.H., ed. Rethinking Neural Networks: Quantum Fields and Biological Data, Hillsdale N.J., Erlbaum, 377–388.

    Google Scholar 

  • Rein, G. (1997) A bioassay for negative Gaussian fields associated with geometric patterns. In Proceedings of the Fourth International Symposium of New Energy, Denver, Colorado, May 23–26, 1997. Fort Collins, Colorado, International Association for New Science.

    Google Scholar 

  • Rein, G. (1998) Biological effects of quantum fields and and their role in the natural healing process. Frontier Perspectives 7 (1), 16–23.

    Google Scholar 

  • Reiss, P. (1926) Le pH intérieur cellulaire. Paris.

    Google Scholar 

  • Reiss, P. (1940) L’action du potentiel d’oxydation-réduction du milieu sur l’autolyse protéique du cristallin et du corps vitré. Archives de Physique Biologique, 15 (4), 39–40.

    Google Scholar 

  • Reiss, P. (1942/43) Actions du potentiel d’oxydation-réduction du milieu sur l’activité de differentes protéinases: Hydrolyse et condensation. Archives de Physique Biologique,16, suppl.

    Google Scholar 

  • Reiss, P., Lemair, R. (1943/44) Évolution du potentiel d’oxydo-réduction du sang humain in vitro. Archives de Physique Biologique 17, suppl.

    Google Scholar 

  • Reiss, P. (1943/44) Les mesures de potentiels d’oxydation-réduction dans le sang. Revue bibliographique. Archives de Physique Biologique,17, suppl.

    Google Scholar 

  • Richards, T.L., Standish, L.J. (2000) EEG coherence and visual evoked potentials: Investigation of neural energy transfer between human subjects. Abstract No.393. Tucson 2000 Consciousness Conference, http://www.imprint.co.uk/Tucson2000.

    Google Scholar 

  • Ricker, G. (1905) Entwurf einer Relationspathologie. Jena, Gustav Fischer.

    Google Scholar 

  • Ricker, G. (1924) Pathologie als Naturwissenschaft. Relationspathologi e. Berlin, Julius Springer.

    Google Scholar 

  • Rosen, R. (1958–59) A relational theory of biological systems. Bulletin of Mathematical Biophysics,20 245–260, and 21 109–128.

    Google Scholar 

  • Rosen, R. (1967) Optimality Principles in Biology. New York, Plenum Press/London, Butterworth.

    Google Scholar 

  • Rosen, R. (1970) Dynamical Systems in Biology. New York, Wiley-Interscience.

    Google Scholar 

  • Rosen, R. (1972) Relationale Biologie. Fortschritte der experimentellen und theoretischen Biophysik (ed.), W.Beier,Vol. 15. Leipzig, Georg Thieme.

    Google Scholar 

  • Rosen, R. (1974) The role of quantum theory in biology. International Journal of Quantum Chemistry: Quantum Biology Symposia, No.1, 229–232.

    Google Scholar 

  • Rowlands, S. (1985) Condensed matter physics and the biology of the future. Jourrnal of Biological Physics, 13, 103–105.

    Google Scholar 

  • Rubik, B. (1996) Life at The Edge of Science. Philadelphia, Institute for Frontier Science. Rudder, B. de (1931) Grundriss einer Meteorobiologie des Menschen. Berlin, Springer.

    Google Scholar 

  • Rudder, B. de (1937) Über sogenannte « kosmische » Rhythmen beim Menschen. Stuttgart, Georg Thieme.

    Google Scholar 

  • Sargent, F. 11, Shimkin, D.B. (1965) Biology, society and culture in human ecology. BioScience, 15, 512–516.

    Google Scholar 

  • Sargent, F. 11 (1974) Human Ecology. Amsterdam, North-Holland/New York, American Elsevier.

    Google Scholar 

  • Sargent, F. 11 (1982) Hippocratic Heritage — A History of Ideas About Weather and Human Health. New York, Pergamon Press.

    Google Scholar 

  • Sargent, F. II (1983) Human Ecology - A Guide to Information Sources. Detroit, Gale Research.

    Google Scholar 

  • Sassaroli, E., Srivastava, Y., Swain, J. and Widom, A., (eds.) (1998) Macroscopic Quantum Coherence. Singapore, World Scientific.

    Google Scholar 

  • Savva, S. (1999) Biofield and a cybernetic model of the organism: sauggestion for empirical study. National Geophysical Data Center Public Hypernews, http://hypernews.ngdc.noaa.gov/hnxtra/savva_paper.html.

    Google Scholar 

  • Saunders, S., Brown, H.R., (eds.) (1991) The Philosophy of Vacuum. Oxford, Clarendon Press.

    Google Scholar 

  • Schade, H. (1909) Kolloidchemie und Balneologie. Medizinische Klinik, No.29, 1070 and No.30, 1116.

    Google Scholar 

  • Schade, H. (1912a) Physikochemische Beiträge zur Öedemfrage. Verhandlungen des Deutschen Kongresses für Innere Medizin (Wiesbaden), No.29, 526–535.

    Google Scholar 

  • Schade, H. (1912b) Untersuchungen zur Organfunction des Bindegewebes. I.Mitteilung: Die Elasticitätsfunction des Bindegewebes und die intravitale Messung ihrer Störungen. Zeitschrift für experimentelle Pathologie und Therapie, 11 (3), 369–399.

    Google Scholar 

  • Schade, H. (1913) Untersuchungen zur Organfunction des Bindegewebes.Mitteilung: Das Quellungsvermögen des Bindegewebes in der Mannigfaltigkeit seiner Erscheinungen. Zeitschrift für experimentelle Pathologie und Therapie, 14, (1), 1–29.

    Google Scholar 

  • Schade, H. (1921a) Die physikalische Chemie in der inneren Medizin. Die Anwendung und die Bedeutung physikochemischer Forschung in der Pathologie und Therapie. Dresden, Theodor Steinkopff Verlag.

    Google Scholar 

  • Schade, H., Neukirch, P., and Halpert, A. (192lb) Über lokale Acidosen des Gewebes und die Methodik ihrer intravitalen Messung, zugleich ein Beitrag zur Lehre der Entzündung. Zeitschrift für experimentelle Medizin, 24, 11.

    Google Scholar 

  • Schade, H. (1922) Die Physikochemie des Bindegewebes und ihre Bedeutung für die Lymph-und Ödembildung. Verhandlungen der Deutschen Gesellschaft für Innere Medizin, 34, 283–287.

    Google Scholar 

  • Schade, H. (1923a) Über die Gesetze der Gewebsquellung und ihre Bedeutung für klinische Fragen (Wasseraustausch im Gewebe, Lymphbildung und Ödementstehung). Zeitschrift für Klinische Medizin, 96, 279–327.

    Google Scholar 

  • Schade, H. (1923b) Von der klinischen Bedeutung des Bindegewebes. Jahreskurse für Ärztliche Fortbildung, 14, part III, 10–17.

    Google Scholar 

  • Schade, H. (1923e) Die Physikochemie der Entzündung. Verhandlungen der Deutschen Pathologischen Gesellschaft, 19th meeting, 69–80. Jena, Gustav Fischer Verlag.

    Google Scholar 

  • Schade, H. (1926) Die Bedeutung der H-lonenkonzentration in der Pathologie. Kolloid-Zeitschrift, 40, 252–258.

    Google Scholar 

  • Schilder, P. (1950) The Image and Appearance of the Human Body. London, Kegan, Paul, Trench, Trubner.

    Google Scholar 

  • Schiller, J. (1967) Claude Bernard et les Problèmes Scientifiques de son Temps. Paris, Editions du Cèdre.

    Google Scholar 

  • Schnitzler, H., Lieth, H., (eds.) (1983), 25 years activities of the International Society of Biometeorology and 25 years publication index, International Society of Biometeorology. Lisse, Netherlands, Swets Zeitlinger.

    Google Scholar 

  • Schrödinger, E. (1926) Der stetige Übergang von der Mikro-zur Makromechanik. Naturwissenschaften, 28, 665.

    Google Scholar 

  • Schrödinger, E. (1944) What is life ? The Physical Aspect of the Living Cell. Cambridge, Cambridge University Press.

    Google Scholar 

  • Schutz, A. (1975) Collected Papers. 3 vols. The Hague, Martinus Nijhoff.

    Google Scholar 

  • Schwartz-Salant, N. (1988) The Borderline Personality— Vision and Healing. Wilmette, Illinois, Chiron Publications.

    Google Scholar 

  • Sedlak, W. (1967) Elektrostaza i ewolucja organiczna (Electrostasis and organic evolution). Roczniki Filozoficzne, 3, 31.

    Google Scholar 

  • Sedlak, W. (1976) Bioplasma - a new state of matter. In “Bioplasma” Proceedings of the 1st Bioplasma Conference, May 9, 1973, Catholic University, Lublin/Poland, W.Sedlak, (ed.), Lublin (English translation 1978 ).

    Google Scholar 

  • Sedlak, W. (1979) Bioelektronika: 1967–1977. Aleksandrowicz, Julian (ed.), Warsaw, Poland: Instytut Wydawniczy Pax.

    Google Scholar 

  • Sedlak, W. (1980) Homo Electronicus. Warsaw, Poland, Instytut Wydawniczy Pax.

    Google Scholar 

  • Sedlak, W. (ed.) (198x) Bioelektronika - Materialy i Krajowego Sympozjum. Catholic University, Lublin, Poland.

    Google Scholar 

  • Sedlak, W. (1984) Postepy fizyki zycia. Warsaw, Poland: Instytut Wydawniczy Pax. Segal, J. (1958) Die Erregbarkeit der lebenden Materie. Jena, Gustav Fischer.

    Google Scholar 

  • Segal, J., Körner, U., Leiterer, K.P. (1983) Die Entstehung des Lebens aus biophysikalischer Sicht. Jena, Gustav Fischer.

    Google Scholar 

  • Selleri, F. (ed.) (1988) Quantum Mechanics versus Local Realism — The Einstein-PodolskyRosen Paradox. New York, Plenum Press.

    Google Scholar 

  • Selye, H. (1936) A syndrome produced by diverse nocuous agents. Nature, 148, 84–85.

    ADS  Google Scholar 

  • Selye, H. (1946) The general adaptation syndrome and the diseases of adaptation. Journal of Clincial Endocrinology, 6, 117–196.

    Google Scholar 

  • Selye, H. (1950) Stress: The Physiology and Pathology of Exposure to Stress. Montreal, Acta Medica.

    Google Scholar 

  • Selye, H. (1967) In Vivo — The Case for Supramolecular Biology. New York, Liveright.

    Google Scholar 

  • Shacklett, R.L. (1991) The physics behind the mind-matter link. In “Subtle Energies and Energy Medicine: Emerging Theory and Practice ”, conference proceedings of the First Annual Conference of the International Society for the Study of Subtle Energies and Energy Medicine. June 21–25, Boulder, Colorado, 92–95.

    Google Scholar 

  • Sherrington, C.S. (1940) Man on His Nature. Harmondsworth, Middlesex, Penguin Books, 69–98.

    Google Scholar 

  • Shimony, A. (1963) Role of the observer in quantum theory. American Journal of Physics 31 (10), 755–773.

    Google Scholar 

  • Shipov, G.I. (1998) A Theory of the Physical Vacuum — A New Paradigm. Moscow, International Institute for Theoretical and Applied Physics RANS.

    Google Scholar 

  • Shnol’, S.E., Smirnov, B.R., Sadonsky, G.I. (1981) in Grechova, M.T. (ed.) Autowave Processes in Systems with Diffusion (in Russian). Gorky, 187.

    Google Scholar 

  • Shnol’, S.E., Smirnov, B.R., Sadonsky, G.I., Rovinsky, A.B. (1982) Khimiya i Zhisn’, 7, 68.

    Google Scholar 

  • Shnol’, S.E., (ed.) (1996) Relations of Biological and Physico-Chemical Processes with Space and Helio-Geophysical Factors. Abstracts of the 4th International Pushchino Symposium, dedicated to the centennial of helio-biology founder A.L.Chizhevsky (1897–1964), September 2328. Pushchino, Academy of Sciences of Russia, Pushchino Research Centre.

    Google Scholar 

  • Sigel, F. (1975) Schuld ist die Sonne. Thun-Frankfurt am Main, Harn Deutsch (Russian original ed. Moscow 1972 ).

    Google Scholar 

  • Sinz, R. (1978) Zeitstrukturen und organismische Regulationen. Berlin, Akademie-Verlag.

    Google Scholar 

  • Sinz, R. (1980) Chronopsychophysiologie, Chronobiologie und Chronomedizin. Berlin, Akademie Verlag.

    Google Scholar 

  • Sit’ko, S.P., Gizhko, V.V. (1991) Towards a quantum physics of the living state. Journal of Biological Physics, 18 (1), 1–10.

    Google Scholar 

  • Smith, C.W. (1994) Electromagnetic and magnetic vector potential bio-information and water. Ultra-High Dilution — Physiology and Physics, Endler, P.C. and Schulte, J. (eds.), Dordrecht, Kluwer Academic.

    Google Scholar 

  • Smuts, J.C. (1926) Holism and Evolution. New York, Macmillan.

    Google Scholar 

  • Sollberger, A. (1965) Biological Rhythm Research. Amsterdam, Elsevier.

    Google Scholar 

  • Stapp, H.P. (1997) Nonlocal character of quantum theory. American Journal of Physics, 65 (4), 300–304.

    Google Scholar 

  • Susskind, C., Bose, Jagadis Chunder (1970) in Gillispie, C.G. (ed.) Dictionary of Scientific Biography. New York, Scribner’s, 325.

    Google Scholar 

  • Szent-Györgyi, A. (1941) Energy levels in biochemistry. Nature, 148, 157. Szent-Györgyi, A. (1941) Towards a new biochemistry. Science, 93 (1941), 609.

    Google Scholar 

  • Szent-Györgyi, A. (1957) Bioenergetics. New York, Academic Press.

    Google Scholar 

  • Szent-Györgyi, A. (1960) Introduction to a Submolecular Biology. New York, Academic Press.

    Google Scholar 

  • Szent-Györgyi, A. (1969) Charge-transfer and cellular activity. In Theoretical Physics and Biology, Proceedings 1st Int. Conf. on Theoretical Physics and Biology, Versailles, June 26–30, 1967, Marois, M. (ed.), 192–193, Amsterdam-London, North-Holland.

    Google Scholar 

  • Szent-Györgyi, A. (1971) Biology and pathology of water. Perspectives in Biology and Medicine, 14 (2) 239–249.

    Google Scholar 

  • Takata, M., Murasugi, T. (1941) Flockungszahl-Störungen im gesunden menschlichen Serum, “kosmoterrestrischer Sympathismus”. Bioklimatische Beiblätter, 8, 17.

    Google Scholar 

  • Takata, M. (1951) Über eine neue biologisch wichtige Komponente der Sonnenstrahlung. Archiv für Meteorologie, Geophysik und Bioklimatologie, 486.

    Google Scholar 

  • Tart, C. (1969) Psychedelic experiences associated with a novel hypnotic procedure, mutual hypnosis. Altered States of Consciousness. New York, Wiley, 291–308.

    Google Scholar 

  • Taub-Bynum, E.B. (1984) The Family Unconscious—An Invisible Bond. Wheaton, Illinois, Quest Books.

    Google Scholar 

  • Taylor, R. (1996) Scalar fields, subtle energy and the multidimensional universe (in English). Soznanye i Fizicheskaya Realnost 1 (3), 79-

    Google Scholar 

  • Taylor, R. (1998) A gentle introduction to quantum biology. Consciousness and Physical Reality 1 (1), 64–72.

    Google Scholar 

  • Tchijevsky, A.L. (1936) Les Phénomènes Éléctrodynamiques dans le Sang. Éditions Hippocrate, Paris.

    Google Scholar 

  • Tchijevsky, A.L. (1940) Cosmobiologie et rhythme du milieu extérieur, in Holmgren, H.J. (ed.), Verhandlungen der zweiten Konferenz der Internationalen Gesellschaft für biologische Rhythmus-Forschung am 25. und 26. August 1939 in Utrecht. Stockholm, Acta Medica Scandinavica, 108, Suppl., 212–226.

    Google Scholar 

  • Tettinger, L., Doljansky, F. (1992) On the generation of form by the continuous interactions between cells and their extracellular matrix. Biological Reviews of the Cambridge Philosophical Society, 67, 459–489.

    Google Scholar 

  • Thaheld, F.H. (1998) A proposed experiment concerning nonlocal correlations between a quantum observer and another person. Physics Essays, 11, 422–425.

    ADS  MathSciNet  Google Scholar 

  • Thaheld, F.H. (2001a) A preliminary indication of controllable biological quantum nonlocality ? Apeiron, 8 (1).

    Google Scholar 

  • Thiele, H. (1947) Richtwirkung von Ionen auf anisotrope Kolloide - lonotropie. Naturwissenschaften, 34, 123.

    ADS  Google Scholar 

  • Thaheld, F.H. (2001b) Proposed experiments to determine if there is a connection between biological nonlocality and consciousness. Apeiron, 8 (4), 53–66.

    Google Scholar 

  • Thiele, H. (1954) Ordered coagulation and gel formation. Discussions of the Faraday Society, 18, 294–301.

    Google Scholar 

  • Thiele, H., Schacht, E. (1957) Über Ionenreaktionen bei Polyelektrolyten, Vorstufen bei der Bildung von Gelen. Zeitschrift für physikalische Chemie, 208, 42–58.

    Google Scholar 

  • Thiele, H. (1967) Histolyse und Histogenese. Gewebe und ionotrope Gele - Prinzip einer Strukturbildung. Frankfurt am Main, Akademische Verlagsgeselllschaft.

    Google Scholar 

  • Thompson, D’Arcy, W. (1917) On Growth and Form. Cambridge, Cambridge University Press.

    Google Scholar 

  • Tigyi, J., Kellermayer, M and Hazlewood, C.F. (1991) The Physical Aspect of the Living Cell. Budapest, Akademiai Kiadd.

    Google Scholar 

  • Tiller, W. (1977) Towards a future medicine based on controlled energy fields. Phoenix, 1 (1) 5–16.

    Google Scholar 

  • Tiller, W. (1985) Energy fields and the human body, in White, J. (ed.), Frontiers of Consciousness. The Meeting Ground between Inner and Outer Reality, New York, Julian Press, 229–242.

    Google Scholar 

  • Tiller, W. (1993) What are subtle energies ? Journal for Scientific Exploration, 7 (3), 293304.

    Google Scholar 

  • Tiller, W. (1995) Subtle energies in energy medicine. Frontier Perspectives, 4 (2), 17–21.

    Google Scholar 

  • Tiller, W.A. (1999a) Towards a predictive model of subtle domain connections to the physical domain aspect of reality: The origins of wave-particle duality, electric-magnetic monopoles and the mirror principle. Journal of Scientific Exploration, 13 (1), 41–67.

    Google Scholar 

  • Tiller, W.A., Dibble, W.E., and Kohane, M.J. (1999b) Exploring robust interactions between human intention and inanimate/animate systems. Excelsior, MN, USA, Ditron, LLC.

    Google Scholar 

  • Tiller, W.A., Dibble, W.E., and Kohane, M.J. (2001) Conscious Acts of Creation — The Emergence of A New Physics. Walnut Creek, California, Pavior Publishing.

    Google Scholar 

  • Tocquet, R. (1951) Cycles et Rhythmes. Paris.

    Google Scholar 

  • Tomassen, G.J. (eds.) (1990) Geo-Cosmic Relations; the Earth and its Macro-Environment. Proceedings of the First International Congress on Geo-Cosmic Relations, Amsterdam, Netherlands, 19–22 April 1989. Wageningen, Pudoc.

    Google Scholar 

  • Tromp, S.W. (1961) Significance of border sciences for the future of mankind. In Boyko, H. (ed.),Science and the Future of Mankind, Den Haag, Uitgeverij Dr. W.Junk, 83–120.

    Google Scholar 

  • Trincher, K.S. (1965) Biology and Information: Elements of Biological Thermodynamics. New York, Consultants Bureau.

    Google Scholar 

  • Tromp, S.W. (1949) Psychical Physics. New York, Elsevier.

    Google Scholar 

  • Tromp, S.W. (19 63) Medical Biometeorology. New York, Elsevier.

    Google Scholar 

  • Tromp, S.W. (1972) Possible effects of extra-terrestrial stimuli on colloidal systems and living organisms. In Biometeorology, 5, part 1I. Suppl. to Intentional Journal of Biometeorology, 16, 239–248.

    Google Scholar 

  • Troshin, A. S. (1966) Problems of Cell Permeability. Rev. and supplem. (ed.) Oxford, Pergamon Press. (Russian original ed.: Moscow: Academy of Sciences, 1956 ).

    Google Scholar 

  • Usa, M., Kobayashi, M., Scott, R.Q., Maeda, T., Hiratsuka, R., Inaba, H. (1989) Simultaneous measurement of biophoton emission and biosurface electric potential from germinating soybean (Glycine max). Protoplasma, 149, 64–66.

    Google Scholar 

  • Uexküll, T. et al. (1997) Subjektive Anatomie. Stuttgart, Schattauer.

    Google Scholar 

  • Vanable, J.W. (1991) A history of bioelectricity in development and regeneration, in Dinsmore, C.E. (ed.), A History of Regeneration Research, Cambridge, Cambridge University Press, 151–178.

    Google Scholar 

  • Vernadsky, V.I. (1954–60) Izbrannye Sochineniya (Selected Works, in Russian). Vols.1–5. Moscow, Academy of Sciences.

    Google Scholar 

  • Vernadsky, V.I. (1998) The Biosphere. With introduction and annotations by Mark A.S. McMenamin and Jacques Grinevald. Copernicus Books (first published in Russian in 1926 ).

    Google Scholar 

  • Vincent, L.-C. (1954) Aperçu sur la bio-électronique. Revue de Pathologie Générale et Comparée, 54 (663), 121–130.

    Google Scholar 

  • Vincent, L.-C. (1956a) Bio-Electronique. Définition des trois facteurs prhoniques pH, rH2 et p. Bulletin de la Société de Pathologie Comparée, Séance du Mardi 14 Juin 1955, Revue de Pathologie Générale et de Physiologie Clinique, 56 (677), 643–656.

    Google Scholar 

  • Vincent, L.-C. (1956b) Potentiel d’oxydo-réduction et rH2. Revue de Pathologie Générale et de Physiologie Clinique, 56 (677), 657–678.

    Google Scholar 

  • Vlès, F. (1927) Cours de Physique Biologique. Paris, Vigot Frères.

    Google Scholar 

  • Vlès, F. (1929) Revue des notions actuelles sur un problème de physico-chimie pathologique: Les propriétés des points isolelectriques et du terrain physico-chimique dans l’organisme normal ou pathologique; leur application à l’étude des tumeurs. Archives de Physique Biologique, 7, fasc. suppl. No.5, 1–64.

    Google Scholar 

  • Vlès, F. (1936a) Recherches sur les propriétés physico-chimiques des électrolytes. Archives de Physique Biologique, Vol.13, No.1 (1936), 57–73 and 88–107.

    Google Scholar 

  • Vlès, F., Reiss, P., and Deloyer, L. (1931) Le potentiel de platine et le rH du sang circulant des mammifères. Comptes Rendus de la Société de Biologie, 108, 37.

    Google Scholar 

  • Vlès, F. (1936b) Recherches sur les electrolytes. II. Les conditions de cohérence dans les solution. III: Remarques sur le rH de Clark. Comptes rendus des séances de la réunion de physique biologique de Strasbourg. Supplément aux Archives de Physique Biologique, 13, 191–193.

    Google Scholar 

  • Vlès, F., and Coulon, A. de (1936c) Recherches sur les propriétés physico-chimiques des tissus en relation avec l’état normal ou pathologique de l’organisme. 22e partie. Suite des expériences sur la cancérisation spontanée des souris au sol et isolées. Archives de Physique Biologique, 13 (2), 150–176.

    Google Scholar 

  • Vlès, F. (1936d) L’eau colloidale. Comptes rendus des séances de la réunion de physique biologique de Strasbourg. Supplément aux Archives de Physique Biologique, 13, 192.

    Google Scholar 

  • Vlès, F. (1936e) Les données actuelles sur la constitution et les propriétés physico-chimiques de l’eau. Archives de Physique Biologique, 15 (1), 33–85.

    Google Scholar 

  • Vlès, F. (1942) Introduction à la photochimie biologique — radiations, analyse spectrale, photochimie. Paris, Vigot Frères.

    Google Scholar 

  • Vogelman, T.C. (1989) Penetration of light into plants. Photochemistry and Photobiology, 50 (6), 895–902.

    Google Scholar 

  • Waddington, C.H. (1968–72) Towards a Theoretical Biology. Edinburgh, Edinburgh University Press.

    Google Scholar 

  • Walker, E.H. (1970) The nature of consciousness. Mathematical Biosciences 7, 131.

    Google Scholar 

  • Walker, E.H. (1974) Consciousness and quantum theory. In Psychic Exploration, White, J. (ed.), New York, Putnam’s Sons, 544–568.

    Google Scholar 

  • Walker, E.H. (2000) The Physics of Consciousness. Cambridge, Mass., Perseus Books.

    Google Scholar 

  • Watson, A. (1997) Quantum spookiness wins, Einstein loses in photon test. Science, 277, 481.

    Google Scholar 

  • Weiner, H (1992) Perturbing the Organism — The Biology of Stressful Experience. Chicago, University of Chicago Press.

    Google Scholar 

  • Weiss, P., Garber, B. (1952) Shape and movement of mesenchyme cells as functions of the physical structure of the medium. Contributions to a quantitative morphology. Proceedings of the National Academy of Sciences (USA), 38, 264–280.

    ADS  Google Scholar 

  • Welch, G. R. (1992) An analogical “field” construct in cellular biophysics: history and present status. Progress in Biophysics and Molecular Biology, 57, 71–128.

    Google Scholar 

  • Wiggins, P.M. (1971) Water structure as a determinant of ion distribution in living tissue. Journal of Theoretical Biology, 32, 131–146.

    Google Scholar 

  • Whipple, H.E., (ed.) (1965) Forms of Water in Biological Systems. Annals of the New York Academy of Sciences, 125, Art.2, 249–772.

    Google Scholar 

  • Wiener, N. (1948) Cybernetics. New York, Wiley.

    Google Scholar 

  • Wiggins, P.M. (1972) Intracellular pH and the structure of cell water. Journal of Theoretical Biology, 37 (2), 363–371.

    MathSciNet  Google Scholar 

  • Wiggins, P.M. (1990) Role of water in some biological processes. Microbiological Reviews, 54 (4), 432–449.

    Google Scholar 

  • Wijk, R. van, Linnemans, W.A. (1993) The basic regulatory system–a system theoretical concept behind chronical diseases. In Lamoen, G.J. van (ed.), Biologische Information und Regulation, Heidelberg, Karl F.Haug Verlag, 36–62.

    Google Scholar 

  • Williams, R.J. (1956) Biochemical Individuality. New York, Wiley.

    Google Scholar 

  • Wnuk, M.J., Bernard, C.D. (2001) The electromagnetic nature of life — The contribution of W.Sedlak to the understanding of the essence of life. Frontier Perspectives, 10 (1), 32–35.

    Google Scholar 

  • Wolf, E. (1963) Spatial coherence of resonant modes in a maser interferometer. Physics Letters, 3 (4), 166–168.

    ADS  Google Scholar 

  • Wolkowski, Z.W., Sedlak, W. and Zon, J. (1983) The utility of bioelectronics and the bioplasma concept in the study of the biological terrain and its equilibrium. In Proceedings of the International Symposium on Wave Therapeutics, Versailles 1979, Wolkowski, Z.W. (ed.), 114122, Créteil, Université de Paris-Val-de-Marne.

    Google Scholar 

  • Wolkowski, Z.W. (1985) Le concept de champ: de la physique à la biologie. In Synergie et Cohérence dans les Systèmes Biologiques, Wolkowski, Z.W. (ed. ), Paris, École Européenne d’Été d’Environnement.

    Google Scholar 

  • Wolkowski, Z.W. (1988) Sur l’évolution de certain concepts physiques dans les sciences de la vie. Revue Internationale de Systémique 2 (4), 459–477.

    Google Scholar 

  • Wolkowski, Z.W. (1995) Recent advances in the phoron concept: An attempt to decrease the incompleteness of scientific exploration of living systems. In Biophotonics — Non-Equilibrium and Coherent Systems in Biology, Biophysics and Biotechnology, Beloussov, L.V. and Popp, F.A. (eds.), Moscow, Bioinform, 33–51.

    Google Scholar 

  • Wu, T.T. (1975) Concept of nonintegrable phase factors and global formulation of gauge fields. Physical Review D 12 (12), 3845–3857.

    Google Scholar 

  • Wu, T.T. and Yang, C.N. (1975) Some remarks about unquantized non-Abelian gauge fields. Physical Review D, 12 (12), 3843–3844.

    Google Scholar 

  • Yagodinskii, V.N. (1987) Aleksandr Leonidovich Chizhevskii (in Russian). Moscow, Nauka.

    Google Scholar 

  • Zeiger, B.F. (1998) Photon emission of cereal seeds, “biophotons”, as a measure of germinative ability and vigour. In Chang, J.J., Fisch, J., and Popp, F.A. (eds.), Biophotons. Dordrecht, Kluwer

    Google Scholar 

  • Zeiger, B.F. and Bischof, M. (1998) The quantum vacuum and its significance in biology. Paper given at the Third International Hombroich Symposium on Biophysics, Neuss, Germany, August 20–24, 1998.

    Google Scholar 

  • Zhang, C.L., Popp, F.A., and Bischof, M. (eds.) (1996) Current Development of Biophysics. Hangzhou, China, Hangzhou University Press.

    Google Scholar 

  • Ziegler, E. (1960) Messung und Bedeutung des Redoxpotentials im Blut in vivo und in vitro (Habilitationsschrift, Universität Freiburg i.Br.). Arzneimittel-Forschung, 10. Beiheft. Aulendorf/Württemberg, Verlag Editio Cantor.

    Google Scholar 

  • Zon, J.R. (1980) The living cell as a plasma physical system. Physiological Chemistry and Physics, 12 (4), 357–364.

    Google Scholar 

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Bischof, M. (2003). Introduction to Integrative Biophysics. In: Popp, FA., Beloussov, L. (eds) Integrative Biophysics. Springer, Dordrecht. https://doi.org/10.1007/978-94-017-0373-4_1

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