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Structural organization of the human cerebral cortex prior to the appearance of the cortical plate

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Summary

The early development and the structural organization of the human cerebral cortex, prior to the appearanc of the cortical plate (Carnegie stage 22, ca. 54 days), was studied in two embryos: 43 (stage 18) and 50 day old (stage 20), respectively. It has been shown that the human cerebral cortex begins its ontogenetic development around the sixth rather than around the eighth week of gestation as it has been previously assumed. The human cerebral cortex starts to develop soon after the cerebral vesicles have been formed (stage 15) and a primitive internal capsule has been established (stage 17, ca. 41 days). By stage 18 of human development fibres from this primitive internal capsule have reached and probably have penetrated into the developing cerebral vesicle, through its more superficial zone. Fibres from this primitive internal capsule have been traced backward through the ventral thalamus to the mesencephalic tegmentum. The possible existence of primitive ascending fibres from the mid-brain which terminate in the superficial zone of the developing cerebral cortex (tegmento-thalamostriato-cortical tract) is suggested. The arrival of these primitive corticipetal fibres establishes in the outer zone of the cerebral cortex a primordial plexiform lamina or an external white matter. Horizontal-bipolar cells (embryonic Cajal-Retzius neurons) begin to differentiate by stage 18 of human development (43 days in our case). By stage 20 (50 days in our case), the primordial plexiform lamina is well established, extends throughout the entire surface of the developing cerebral cortex, and is considered to be functionally active. It is, by this age, a superficial, 40 μm thick, complex fibrillar neuronal organization composed of numerous horizontal corticipetal fibres (demonstrable with silver methods), horizontal-bipolar Cajal-Retzius neurons and a few other, less defined, cellular elements. This primordial plexiform lamina is considered to represent a primitive “premammalian” cortical organization. The next event in cortical ontogenesis is the appearance of the cortical plate or the mammalian neocortical grey at stage 22 (ca. 54 days). Migrating neuroblasts attracted toward the preexisting primordial plexiform lamina and guided by glial fibres start to accumulate within it. The appearance of the mammalian neocortical grey divides the primordial plexiform lamina into a superficial plexiform or layer I (external white matter) and a deep plexiform or layer VII (subplate zone). Layer I is considered to play a significant role in the overall structural organization of the cerebral cortex by controlling the migration of all its pyramidal neurons. In cortical ontogenesis the mammalian neocortical grey (cortical plate) will only give rise to layers VI, V, IV, III and II of the adult cerebral cortex. These observations further corroborate the concept of the dual origin, composition and nature of the mammalian cerebral cortex including that of man. They also demonstrate that the human cerebral cortex starts to develop much earlier than was previously thought.

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References

  • Angevine JB, Sidman RL (1961) Autoradiographic study of cell migration during histogenesis of cerebral cortex of the mouse. Nature 192:766–768

    Google Scholar 

  • Bartelmez GW, Dekaban AS (1962) The early development of the human brain. Contrib Embryol. (publ. 253) 37:13–32

    Google Scholar 

  • Berry M, Rogers AW (1965) Themigration of neuroblasts in the developing cerebral cortex. J. Anat (London) 99:691–709

    Google Scholar 

  • Boulder Committee (1970) Embryonic vertebrate central nervous system: Revised terminology. Anat Rec 166:257–262

    Google Scholar 

  • Fleischhauer K, Laude A (1977) A pattern formed by preferential orientation of tangential fibres in layer I of the rabbit cerebral cortex. Anat Embryol 151:233–240

    Google Scholar 

  • Gilbert MS (1935) The early development of the human diencephalon. J Comp Neurol 62:81–115

    Google Scholar 

  • Goffinet AM, Lyon G (1979) Early histogenesis in the mouse cerebral cortex; A Golgi study. Neurosci. Lett 14:61–66

    Google Scholar 

  • Hewitt W (1961) The development of th human internal capsule and lenticular nucleus. J Anat (London) 95:191–199

    Google Scholar 

  • Hines M (1922) Studies on the growth and differentiation of the telencephalon in man. The fissura hippocampi. J Comp Neurol 34:73–171

    Google Scholar 

  • His W (1904) Die Entwickelung des Menschlichen Gehirns während der ersten Monate, Hirzel, Leipzig, pp 176–180

    Google Scholar 

  • Hochstetter F (1919) Beiträge zur Entwicklungsgeschichte des Menschlichen Gehirns. Franz Deuticke Publ. Vienna, Leipzig, pp 1–170

    Google Scholar 

  • König N, Marty R (1981) Early neurogenesis and synaptogenesis in cerebral cortex. Bibl Anat 19:152–162

    Google Scholar 

  • König N, Roch G, Marty R (1975) The onset of synaptogenesis in rat temporal cortex. Z Anat Entwickl-Gesch 148:73–87

    Google Scholar 

  • König N, Valat, J, Fulcrand J, Marty R (1977) The time of origin of Caja-Retzius cells in the rat temporal cortex. An autoradiographic study. Neurosci Lett 4:21–26

    Google Scholar 

  • König N, Nornung JP, Van der Loos H (1981) Identification of Cajal-Retzius cells in immature rodent cerebral cortex: A combined Golgi-EM study. Neurosci Lett 27:225–229

    Google Scholar 

  • Larroche J-C (1981) The marginal zone in the neocortex of a 7 week-old human embryo. Anat Embryol 162:301–312

    Google Scholar 

  • Larroche J-C, Houcine O (1982) Le néo-cortex chez l'embryon et le foetus humain. Apport du microscope électronique et du Golgi. Reprod Nutr Dev 22:163–170

    Google Scholar 

  • Levitt P, Rakic P (1982) The time of genesis, embryonic origin and differentiation of the brain stem monoamine neurons in the rhesus monkey. Dev Brain Res 4:35–37

    Google Scholar 

  • Lidov HCW, Molliver ME, Zecevic NR (1978) Characterization of the monoaminergic innervation of the immature rat neocortex: A histofluorescence analysis. J Comp Neurol 181:663–680

    Google Scholar 

  • Marin-Padilla M (1971) Early prenatal ontogenesis of the cerebral cortex (neocortex) of the cat (Felis domestica). A Golgi study. I. The primordial neocortical organization. Z Anat Entwickl-Gesch 134:117–145

    Google Scholar 

  • Marin-Padilla M (1972) Prenatal ontogenetic history of the principal neurons of the neocortex of the cat (Felis domestica). A Golgi study. II. Developmental differences and their significance. Z Anat Entwickl-Gesch 136:125–142

    Google Scholar 

  • Marin-Padilla M (1978) Dual origin of the mammalian neocortex and evolution of the cortical plate. Anat. Embryol 152:109–126

    Google Scholar 

  • Marin-Padilla M, Marin-Padilla MT (1982) Origin, prenatal development and structural organization of layer I of the human cerebral (motor) cortex. A Golgi study. Anat Embryol 164:161–206

    Google Scholar 

  • Molliver ME (1982) Role of monoamines in the development of the neocortex, In: Rakic P, Goldman-Rakic PS (Eds), Development and modifiability of the cerebral cortex. MIT Press, Cambridge MA, pp 492–507

    Google Scholar 

  • Molliver ME, Kostovic I, Van der Loos H (1973) Development of synapses in the cerebral cortex of the human fetus. Brain Res 50:403–407

    Google Scholar 

  • Molliver ME, Grzanna R, Lidov HGW, Morrison JH, Olschowka P (1982) Monoamine systems in the cerebral cortex, In: Chan-Palay V, Palay SL (eds), Cytochemical methods in neuroanatomy. Alan R Liss Inc, New York, pp 255–277

    Google Scholar 

  • Morest DK (1970) A study of neurogenesis in the forebrain of oppossum pouch embryos. Z Anat Entwickl-Gesch 130:265–305

    Google Scholar 

  • Morrison JH, Grzanna R, Molliver ME, Coyle JT (1978) The distribution and orientation of noradrenergic fibers in the neocortex of the rat: An immunofluorescence study. J Comp Neurol 181:17–40

    Google Scholar 

  • O'Rahilly R, Gardner E (1971) The timing and sequence of events in the development of the human nervous system during the embryonic period proper. Z Anat Entwickl-Gesch 134:1–12

    Google Scholar 

  • O'Rahilly R, Gardner E (1977) The developmental anatomy and histology of the human nervous system, In: Myrianthopoulous (Ed), Congenital malformations of the brain and skull. Handbook of Clinical Neurology, North Holland Publ Amsterdam, 30:15–40

    Google Scholar 

  • Peters A, Feldman M (1973) The cortical plate and the molecular layer of the late rat fetus. Z Anat Entwickl-Gesch 141:3–37

    Google Scholar 

  • Raedler E, Raedler A (1978) Autoradiographic study of early neurogenesis in the rat neocortex. Anat Embryol 164:267–284

    Google Scholar 

  • Raedler A, Sievers J (1976) Light and electron microscopical studies on specific cells of the marginal zone in the developing rat cerebral cortex. Anat Embryol 149:173–181

    Google Scholar 

  • Raedler E, Raedler A, Feldhaus S (1980) Dynamic aspects of neocortical histogenesis in the rat. Anat Embryol 158:253–269

    Google Scholar 

  • Rakic P (1972) Mode of cell migration of the surface layers of the fetal monkey neocortex. J Comp Neurol 146:61–84

    Google Scholar 

  • Rakic P (1974) Neurons in thesus monkey cortex: Systematic relations between time of origin and eventual disposition. Science 183:425–426

    Google Scholar 

  • Rakic P (1982) Early developmental events: cell lineage, acquisition of neuronal positions and areal and laminar developments, In: Rakic P, Goldman-Rakic PS (eds), Development and modifiability of the cerebral cortex. MIT Press, Cambridge MA, pp 437–451

    Google Scholar 

  • Rickmann M, Wolff JR (1981) Differentiation of ‘preplate’ neurons in the pallium of the rat. Bibl. Anat 19:142–146

    Google Scholar 

  • Rickmann M, Cronwald BM, Wolff JR (1977) On the development of nonpyramidal neurons and axons outside the cortical plate: The early marginal zone as a pallial anlage. Anat Embryol 151:285–307

    Google Scholar 

  • Sievers J, Raedler A (1981) Light and EM studies on the development of horizontal cells of Cajal-Retzius. Bibl Anat 19:161–166

    Google Scholar 

  • Streeter GL (1948) Developmental horizons in human embryos: Description of age groups XV, XVI, XVII, and XVIII. Contrib Embryol (publ 211) 32:133–203

    Google Scholar 

  • Theiler K (1972) The house mouse. Development and normal stages. Springer-Verlag, Berlin, Heidelberg pp 87–108

    Google Scholar 

  • Windle WF (1970) Development of neural elements in human embryos of four to seven weeks of gestation. Exp. Neurol (Suppl) 5:44–83

    Google Scholar 

  • Yokoh Y (1968) The early development of the nervous system in man. Acta Anat 71:492–518

    Google Scholar 

Download references

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This work has been supported by the National Institute of Child Health and Human Development (Grant No. 09274) NIH, USA

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Marin-Padilla, M. Structural organization of the human cerebral cortex prior to the appearance of the cortical plate. Anat Embryol 168, 21–40 (1983). https://doi.org/10.1007/BF00305396

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