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Respiration and oxidative phosphorylation of the mitochondria of the brain of rats with various types of behavior

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Abstract

A higher level of activity of the succinate oxidase oxidative pathway was found in rats with the active type of behavior (with a high level of motoric activity and a low level of depressiveness) as compared with rats with the passive type of behavior (with a low level of motoric activity combined with low high and medium levels of depressiveness).

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Literature cited

  1. Kh. Yu. Ismailova, G. G. Gasanov, T. P. Semenova, et al., “The influence of the local injection of 5,7-DHT and 6-HDA into the neocortex on learning and investigatory behavior of rats in the open field,”Zh. Vyssh. Nerv. Deyat.,39, No. 3, 548–555 (1989).

    Google Scholar 

  2. M. N. Kondrashova and E. V. Grigorenko,Defense against Stress at the Level of the Mitochondria: Development of the Oxaloacetic Limitation of Respiration of Mitochondria Under Prolonged Stress and with the Administration of Sewtonin [in Russian], ONTI NTsBI, Pushchino (1981).

    Google Scholar 

  3. M. N. Kondrashova and E. V. Grigorenko, “The manifestation of stress at the level of the mitochondria, their stimulation by hormones, and the regulation of aerohydro-ions,”Zh. Obshch. Biologii,36, No. 4, 516–526 (1985).

    Google Scholar 

  4. M. N. Kondrashova, E. V. Grigorenko, A. M. Babskii, et al.,“The achievement of homeostasis of physiological functions at the level of the mitochondria,” in:The Molecular Mechanisms of Cellular Homeostasis [in Russian], Nauka, Novosibirsk (1987), pp. 40–66.

    Google Scholar 

  5. M. É. Krakovskii, “The activity of junctional redox enzymes in rabbits with various typological characteristics,”Zh. Vyssh. Nerv. Deyat.,37, No. 3, (1987).

    Google Scholar 

  6. M. É. Krakovskii, Ts. L. Kamenetskaya, G. Ya. Tremasova, et al., “The characteristics of certain biochemical processes in the liver of rats with various types of behavior in the open field,”Zh. Vyssh. Nerv. Deyat.,39, No. 3, 506–512 (1989).

    Google Scholar 

  7. D. A. Kulagin and V. K. Fedorov, “Investigation of emotionality in rats of the Wistar and Krushinskii-Molodkina lines by the open field' method,” in:The Genetics of Behavior [in Russian], Nauka, Leningrad (1969), pp. 35–42.

    Google Scholar 

  8. D. A. Kulagin and V. K. Bolondinskii, “Neurochemical aspects of emotional reactivity and motoric activity of rats in a new situation,”Usp. Fiziol. Nauk,17, No. 1, 92–109 (1986).

    Google Scholar 

  9. L. D. Luk'yanova and A. V. Korobkov, “Some physiological and metabolic characteristics of the individual sensitivity of animals to hypoxia in the norm and in adaptation,” in:Summaries of the III All-Union Symposium “Physiological and Clinical Problems of Adaptation to Hypoxia, Hypodynamia, and Hyperthermia” [in Russian], Moscow (1981), pp. 73–76.

  10. E. B. Okon, T. P. Semenova, and M. I. Grishchenko, “The suppression of energy exchange in the cerebral cortex of rats during deprivation of catecholaminergic systems,” in:The Metabolic Regulation of the Physiological State [in Russian], Pushchino (1984), p. 67.

  11. Manual for the Study of Biological Oxidation by the Polarographic Method, G. M. Frank (ed.) [in Russian], Nauka, Moscow (1973).

    Google Scholar 

  12. K. Yu. Sarkisova, “Change in a level of oxygen tension in various structures of the brain in rats in positive and negative emotional states,”Zh. Vyssh. Nerv. Deyat.,40, No. 1, 351–361 (1990).

    Google Scholar 

  13. B. Chance and G. Hollunger, “The interaction of energy and electron transfer reactions in mitochondria,”J. Biol. Chem.,230, No. 5, 1534–1543 (1961).

    Google Scholar 

  14. D. V. Jeste, and G. P. Smith, “Unilateral mesolimbicocortical dopamine denervation decreases locomotion in the open field and after amphetamine,”Pharmacol. Biochem. Behav.,12, No. 3, 453–457 (1980).

    PubMed  Google Scholar 

  15. R. D. Porsolt, A. Bertin, N. Blavet, et al., “Immobility induced by forced swimming in rats: effects of agents which modify central catecholamine and serotonin activity,”Eur. J. Pharmacol.,57, 201–210 (1979).

    PubMed  Google Scholar 

  16. H. S. Sudac and J. W. Maas, “Behavioral-neurochemical correlation in reactive and nonreactive strains of rats,”Science,146, No.3642, 418–420 (1964).

    PubMed  Google Scholar 

  17. J. H. F. Van Abeelen, “Genotype and the cholinergic control of exploratory behavior in mice,” in:The Genetics of Behavior, J. H. F. Van Abeelen (ed.), Amsterdam (1974), pp. 346–374.

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Translated from Zhurnal Vysshei Nervnoi Deyatel'nosti imeni I. P. Pavlova, Vol. 41, No. 5, pp. 973–981, September–October, 1991.

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Livanova, L.M., Sarkisova, K.Y., Luk'yanova, L.D. et al. Respiration and oxidative phosphorylation of the mitochondria of the brain of rats with various types of behavior. Neurosci Behav Physiol 22, 519–525 (1992). https://doi.org/10.1007/BF01185442

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  • DOI: https://doi.org/10.1007/BF01185442

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