Skip to main content
Top
Published in: Brain Structure and Function 6/2006

01-11-2006 | Original Article

The postnatal development of the optic nerve of a reptile (Vipera aspis): a quantitative ultrastructural study

Authors: M. Bennis, J. Repérant, R. Ward, J.-P. Rio, S. Ba M’hamed, B. Jay

Published in: Brain Structure and Function | Issue 6/2006

Login to get access

Abstract

The number of axons in the optic nerve of the ovoviviparous reptile Vipera aspis was estimated from electron micrographs taken during the first 5 weeks of postnatal life. One to two days after birth, the optic nerve contains about 170,000 fibres, of which about 9% are myelinated. At the end of the fifth postnatal week, the number of optic fibres has fallen to about 100,000, of which about 42% are myelinated. This fibre loss continues after the fifth postnatal week, since in the adult viper the nerve contains about 60,000 fibres, of which 85% are myelinated; overall, about 65% of the optic nerve fibres present at birth disappear before the number of axons stabilises at the adult level. This study shows, for the first time, that the mode of development of the visual axons of reptiles is not that of anamniote vertebrates but similar to that of birds and mammals.
Literature
go back to reference Beazley LD, Sheard PW, Tennant M, Starac D, Dunlop SA (1997) Optic nerve regenerates but does not restore topographic projections in the lizard Ctenophorus ornatus. J Comp Neurol 377:105–120PubMedCrossRef Beazley LD, Sheard PW, Tennant M, Starac D, Dunlop SA (1997) Optic nerve regenerates but does not restore topographic projections in the lizard Ctenophorus ornatus. J Comp Neurol 377:105–120PubMedCrossRef
go back to reference Bennis M, El Hassni M, Rio JP, LeCren D, Repérant J, Ward R (2001) A quantitative ultrastructural study of the optic nerve of the chameleon. Brain Behav Evol 58:49–60PubMedCrossRef Bennis M, El Hassni M, Rio JP, LeCren D, Repérant J, Ward R (2001) A quantitative ultrastructural study of the optic nerve of the chameleon. Brain Behav Evol 58:49–60PubMedCrossRef
go back to reference Binggeli RL, Paule WJ (1969) The pigeon retina: quantitative aspects of the optic nerve and ganglion cell layer. J Comp Neurol 137:1–18PubMedCrossRef Binggeli RL, Paule WJ (1969) The pigeon retina: quantitative aspects of the optic nerve and ganglion cell layer. J Comp Neurol 137:1–18PubMedCrossRef
go back to reference Black JA, Waxman SJ, Ranson BR, Feliciano MD (1986) A quantitative study of developing axons and glia following altered gliogenesis in rat optic nerve. Brain Res 380:122–135PubMedCrossRef Black JA, Waxman SJ, Ranson BR, Feliciano MD (1986) A quantitative study of developing axons and glia following altered gliogenesis in rat optic nerve. Brain Res 380:122–135PubMedCrossRef
go back to reference Bonnet X, Naulleau G, Lourdais O, Vacher M (1998) Growth in the asp viper (Vipera aspis L.): insights from long term field study. In: Miaud C, Guyetant R (eds) Current studies in herpetology. Proceedings of the 9th ordinary general meeting of the Societas Europaea Herpetologica, Le Bourget du Lac, France, pp 63–69 Bonnet X, Naulleau G, Lourdais O, Vacher M (1998) Growth in the asp viper (Vipera aspis L.): insights from long term field study. In: Miaud C, Guyetant R (eds) Current studies in herpetology. Proceedings of the 9th ordinary general meeting of the Societas Europaea Herpetologica, Le Bourget du Lac, France, pp 63–69
go back to reference Braekevelt CR, Beazley LD, Dunlop SA, Derby JE (1986) Numbers of axons in the optic nerve and of retinal ganglion cells during development in the marsupial Setonix brachyurus. Brain Res 390:117–125PubMed Braekevelt CR, Beazley LD, Dunlop SA, Derby JE (1986) Numbers of axons in the optic nerve and of retinal ganglion cells during development in the marsupial Setonix brachyurus. Brain Res 390:117–125PubMed
go back to reference Bruesch SR, Arey LB (1942) The number of myelinated and unmyelinated fibers in the optic nerve of vertebrates. J Comp Neurol 77:631–665CrossRef Bruesch SR, Arey LB (1942) The number of myelinated and unmyelinated fibers in the optic nerve of vertebrates. J Comp Neurol 77:631–665CrossRef
go back to reference Cankovic JG (1968) Contribution to the study of regenerative-degenerative qualities of the fasciculi optici of mammals under experimental conditions. Acta Anat 70:117–123PubMedCrossRef Cankovic JG (1968) Contribution to the study of regenerative-degenerative qualities of the fasciculi optici of mammals under experimental conditions. Acta Anat 70:117–123PubMedCrossRef
go back to reference Castanet J (1985) La squelletochronologie chez les Reptiles. I. Résultats experimentaux sur la signification des marques de croissance squelettiques chez les lézards et les tortues. Ann Sci Nat Zool Paris 13e Ser 7:23–40 Castanet J (1985) La squelletochronologie chez les Reptiles. I. Résultats experimentaux sur la signification des marques de croissance squelettiques chez les lézards et les tortues. Ann Sci Nat Zool Paris 13e Ser 7:23–40
go back to reference Castanet J, Naulleau G (1974) Données expérimentales sur le valeur des marques squelettiques comme indicateur de l’âge chez Vipera aspis (L.) (Ophidia, Viperidae) Zool Soc Ser 3:201–208CrossRef Castanet J, Naulleau G (1974) Données expérimentales sur le valeur des marques squelettiques comme indicateur de l’âge chez Vipera aspis (L.) (Ophidia, Viperidae) Zool Soc Ser 3:201–208CrossRef
go back to reference Cima C, Grant P (1982a) Development of the optic nerve in Xenopus laevis. I. Early development and organization. J Embryol Exp Morphol 72:225–249 Cima C, Grant P (1982a) Development of the optic nerve in Xenopus laevis. I. Early development and organization. J Embryol Exp Morphol 72:225–249
go back to reference Cima C, Grant P (1982b) Development of the optic nerve in Xenopus laevis. II. Gliogenesis, myelination and metamorphic remodelling. J Embryol Exp Morphol 72:251–267 Cima C, Grant P (1982b) Development of the optic nerve in Xenopus laevis. II. Gliogenesis, myelination and metamorphic remodelling. J Embryol Exp Morphol 72:251–267
go back to reference Coleman LA, Dunlop SA, Beazley LD (1984) Patterns of cell division during visual streak formation in the frog Limnodynastes dorsalis. J Embryol Exp Morphol 83:119–135PubMed Coleman LA, Dunlop SA, Beazley LD (1984) Patterns of cell division during visual streak formation in the frog Limnodynastes dorsalis. J Embryol Exp Morphol 83:119–135PubMed
go back to reference Cook RD (1974) Observations on glial cells within myelin sheaths in degenerating optic nerves. J Neurocytol 3:737–751PubMedCrossRef Cook RD (1974) Observations on glial cells within myelin sheaths in degenerating optic nerves. J Neurocytol 3:737–751PubMedCrossRef
go back to reference Cook RD, Wiśniewski HM (1973) The role of oligodendroglia and astroglia in Wallerian degeneration of the optic nerve. Brain Res 61:191–206PubMedCrossRef Cook RD, Wiśniewski HM (1973) The role of oligodendroglia and astroglia in Wallerian degeneration of the optic nerve. Brain Res 61:191–206PubMedCrossRef
go back to reference Cook RD, Ghetti BD, Wiśniewski HM (1973) The pattern of Wallerian degeneration in the optic nerve of the newborn kitten. An ultrastructural study. Brain Res 75:261–275CrossRef Cook RD, Ghetti BD, Wiśniewski HM (1973) The pattern of Wallerian degeneration in the optic nerve of the newborn kitten. An ultrastructural study. Brain Res 75:261–275CrossRef
go back to reference Cook JE, Rankin ECC, Stevens HP (1983) A pattern of optic axons in the normal goldfish tectum consistent with the caudal migration of optic terminals during development. Exp Brain Res 52:147–151PubMedCrossRef Cook JE, Rankin ECC, Stevens HP (1983) A pattern of optic axons in the normal goldfish tectum consistent with the caudal migration of optic terminals during development. Exp Brain Res 52:147–151PubMedCrossRef
go back to reference Crespo D, O’Leary DDM, Cowan WM (1985) Changes in the number of optic nerve fibers during late prenatal and postnatal development in the albino rat. Dev Brain Res 19:129–134CrossRef Crespo D, O’Leary DDM, Cowan WM (1985) Changes in the number of optic nerve fibers during late prenatal and postnatal development in the albino rat. Dev Brain Res 19:129–134CrossRef
go back to reference Cullen MI, Webster H (1979) Remodelling of optic nerve myelin sheaths and axons during metamorphosis in Xenopus laevis. J Comp Neurol 184:353–362PubMedCrossRef Cullen MI, Webster H (1979) Remodelling of optic nerve myelin sheaths and axons during metamorphosis in Xenopus laevis. J Comp Neurol 184:353–362PubMedCrossRef
go back to reference Dangatta YY, Findlater GC, Kaufman MH (1996) Postnatal development of the optic nerve in (C57BL × CBA)F1 hybrid mice: general changes in morphometric parameters. J Anat (London) 189:117–125 Dangatta YY, Findlater GC, Kaufman MH (1996) Postnatal development of the optic nerve in (C57BL × CBA)F1 hybrid mice: general changes in morphometric parameters. J Anat (London) 189:117–125
go back to reference Davydova TV, Smirnov GD (1973) Retinotectal connections in the tortoise. An electron microscope study of degeneration in optic nerve and midbrain tectum. J Hirnforsch 14:473–492PubMed Davydova TV, Smirnov GD (1973) Retinotectal connections in the tortoise. An electron microscope study of degeneration in optic nerve and midbrain tectum. J Hirnforsch 14:473–492PubMed
go back to reference Davydova TV, Gonchareva NV, Boyko VP (1976) Retinotectal system of the tortoise Testudo Horsefieldi Gray. (Morpho-functional study in the norm and after enucleation). J Hirnforsch 17:463–488PubMed Davydova TV, Gonchareva NV, Boyko VP (1976) Retinotectal system of the tortoise Testudo Horsefieldi Gray. (Morpho-functional study in the norm and after enucleation). J Hirnforsch 17:463–488PubMed
go back to reference Davydova TV, Gonchareva NV, Boyko VP (1982) Correlation between the morpho-functional organization of some portions of the visual analyser of chelonia and their ecology. I. Normal morpho-functional characteristics of the optic nerve and the tectum opticum. J Hirnforsch 23:271–286PubMed Davydova TV, Gonchareva NV, Boyko VP (1982) Correlation between the morpho-functional organization of some portions of the visual analyser of chelonia and their ecology. I. Normal morpho-functional characteristics of the optic nerve and the tectum opticum. J Hirnforsch 23:271–286PubMed
go back to reference Dreher B, Potts RA, Bennett MR (1983) Evidence that the early postnatal reduction in the number of rat retinal ganglion cells is due to a wave of ganglion cell death. Neurosci Lett 36:255–260PubMedCrossRef Dreher B, Potts RA, Bennett MR (1983) Evidence that the early postnatal reduction in the number of rat retinal ganglion cells is due to a wave of ganglion cell death. Neurosci Lett 36:255–260PubMedCrossRef
go back to reference Drenhaus U, Thomas K, Rager G (2000) The course of later generated axons in the developing optic nerve of the chick embryo. A morphometric electron microscopic study. Dev Brain Res 121:35–53CrossRef Drenhaus U, Thomas K, Rager G (2000) The course of later generated axons in the developing optic nerve of the chick embryo. A morphometric electron microscopic study. Dev Brain Res 121:35–53CrossRef
go back to reference Dunlop SA, Beazley LD (1984) A morphometric study of the retinal ganglion cell layer and optic nerve from metamorphosis in Xenopus laevis. Vision Res 24:417–427PubMedCrossRef Dunlop SA, Beazley LD (1984) A morphometric study of the retinal ganglion cell layer and optic nerve from metamorphosis in Xenopus laevis. Vision Res 24:417–427PubMedCrossRef
go back to reference Dunlop SA, Tran N, Tee LB, Papadimitriou J, Beazley LD (2000) Retinal projection throughout optic nerve regeneration in the ornate dragon lizard Ctenophorus ornatus. J Comp Neurol 416:188–200PubMedCrossRef Dunlop SA, Tran N, Tee LB, Papadimitriou J, Beazley LD (2000) Retinal projection throughout optic nerve regeneration in the ornate dragon lizard Ctenophorus ornatus. J Comp Neurol 416:188–200PubMedCrossRef
go back to reference Easter SS Jr, Stuermer CAO (1984) An evaluation of the hypothesis of shifting terminals in goldfish optic tectum. J Neurosci 4:1052–1063PubMed Easter SS Jr, Stuermer CAO (1984) An evaluation of the hypothesis of shifting terminals in goldfish optic tectum. J Neurosci 4:1052–1063PubMed
go back to reference Easter SS Jr, Rusoff AC, Kish PE (1981) The growth and organization,of the optic nerve and tract in juvenile and adult goldfish. J Neurosci 1:793–811PubMed Easter SS Jr, Rusoff AC, Kish PE (1981) The growth and organization,of the optic nerve and tract in juvenile and adult goldfish. J Neurosci 1:793–811PubMed
go back to reference Easter SS Jr, Bratton B, Scherer SS (1984) Growth-related order of the retinal fiber layer in goldfish. J Neurosci 4:2173–2190PubMed Easter SS Jr, Bratton B, Scherer SS (1984) Growth-related order of the retinal fiber layer in goldfish. J Neurosci 4:2173–2190PubMed
go back to reference Gaze RM, Peters A (1961) The development, structure and composition of the optic nerve of Xenopus laevis (Daudin). Q J Exp Physiol 46:299–309 Gaze RM, Peters A (1961) The development, structure and composition of the optic nerve of Xenopus laevis (Daudin). Q J Exp Physiol 46:299–309
go back to reference Geri GA, Kimsey RA, Dvorak CA (1982) Quantitative electron microscopic analysis of the optic nerve of the turtle Pseudemys. J Comp Neurol 207:99–103PubMedCrossRef Geri GA, Kimsey RA, Dvorak CA (1982) Quantitative electron microscopic analysis of the optic nerve of the turtle Pseudemys. J Comp Neurol 207:99–103PubMedCrossRef
go back to reference Grafstein B, Ingoglia NA (1982) Intracranial transection of the optic nerve in adult mice: preliminary observations. Exp Neurol 76:318–330PubMedCrossRef Grafstein B, Ingoglia NA (1982) Intracranial transection of the optic nerve in adult mice: preliminary observations. Exp Neurol 76:318–330PubMedCrossRef
go back to reference Grant P, Rubin E (1980) Ontogeny of the retina and optic nerve in Xenopus laevis. II. Ontogeny of the optic fiber pattern in the retina. J Comp Neurol 189:671–698PubMedCrossRef Grant P, Rubin E (1980) Ontogeny of the retina and optic nerve in Xenopus laevis. II. Ontogeny of the optic fiber pattern in the retina. J Comp Neurol 189:671–698PubMedCrossRef
go back to reference Herbin M, Rio JP, Repérant J, Cooper HM, Nevo E, Lemire M (1995) Ultrastructural study of the optic nerve in blind mole rats (Spalacidae, Spalax). Visual Neurosci 12:253–261CrossRef Herbin M, Rio JP, Repérant J, Cooper HM, Nevo E, Lemire M (1995) Ultrastructural study of the optic nerve in blind mole rats (Spalacidae, Spalax). Visual Neurosci 12:253–261CrossRef
go back to reference Herndon RM (1964) The fine structure of the rat cerebellum. II. The stellate neurons, granule cells and glia. J Cell Biol 23:277–293PubMedCrossRef Herndon RM (1964) The fine structure of the rat cerebellum. II. The stellate neurons, granule cells and glia. J Cell Biol 23:277–293PubMedCrossRef
go back to reference Hildebrand C, Waxman SG (1984) Postnatal differentiation of rat optic nerve fibers: electron microscopic observations on the development of nodes of Ranvier and axonal relations. J Comp Neurol 224:25–37PubMedCrossRef Hildebrand C, Waxman SG (1984) Postnatal differentiation of rat optic nerve fibers: electron microscopic observations on the development of nodes of Ranvier and axonal relations. J Comp Neurol 224:25–37PubMedCrossRef
go back to reference Hirano A, Dembitzer HM (1969) The transverse bands as a means of access to the periaxonal space of the central myelinated nerve fiber. J Ultrastruct Res 28:141–149PubMedCrossRef Hirano A, Dembitzer HM (1969) The transverse bands as a means of access to the periaxonal space of the central myelinated nerve fiber. J Ultrastruct Res 28:141–149PubMedCrossRef
go back to reference Hirose G, Bass NH (1973) Maturation of oligodendroglia and myelinogenesis in rat optic nerve: a quantitative histochemical study. J Comp Neurol 152:201–210PubMedCrossRef Hirose G, Bass NH (1973) Maturation of oligodendroglia and myelinogenesis in rat optic nerve: a quantitative histochemical study. J Comp Neurol 152:201–210PubMedCrossRef
go back to reference Horsburgh GM, Sefton AJ (1986) The early development of the optic nerve and chiasm in embryonic rat. J Comp Neurol 243:547–560PubMedCrossRef Horsburgh GM, Sefton AJ (1986) The early development of the optic nerve and chiasm in embryonic rat. J Comp Neurol 243:547–560PubMedCrossRef
go back to reference Hughes WF, McLoon SC (1979) Ganglion cell death during normal retinal development in the chick: comparison with cell death induced by early target field destruction. Exp Neurol 66:587–601PubMedCrossRef Hughes WF, McLoon SC (1979) Ganglion cell death during normal retinal development in the chick: comparison with cell death induced by early target field destruction. Exp Neurol 66:587–601PubMedCrossRef
go back to reference Hunter A, Bedi KS (1986) A quantitative morphological study of interstrain variation in the developing rat optic nerve. J Comp Neurol 245:160–166PubMedCrossRef Hunter A, Bedi KS (1986) A quantitative morphological study of interstrain variation in the developing rat optic nerve. J Comp Neurol 245:160–166PubMedCrossRef
go back to reference Johns PR (1977) Growth of the adult goldfish eye. III. Source of the new retinal cells. J Comp Neurol 176:343–354PubMedCrossRef Johns PR (1977) Growth of the adult goldfish eye. III. Source of the new retinal cells. J Comp Neurol 176:343–354PubMedCrossRef
go back to reference Johns PR, Easter SS Jr (1977) Growth of the adult goldfish eye. II. Increase in retinal cell number. J Comp Neurol 176:331–342PubMedCrossRef Johns PR, Easter SS Jr (1977) Growth of the adult goldfish eye. II. Increase in retinal cell number. J Comp Neurol 176:331–342PubMedCrossRef
go back to reference Kirby MA, Wilson PD, Fischer TM (1988) Development of the optic nerve of the opossum (Didelphys virginiana). Dev Brain Res 44:37–48CrossRef Kirby MA, Wilson PD, Fischer TM (1988) Development of the optic nerve of the opossum (Didelphys virginiana). Dev Brain Res 44:37–48CrossRef
go back to reference Kruger L, Maxwell DS (1969) Wallerian degeneration in the optic nerve of a reptile: an elctron microscopic study. Am J Anat 125:247–269PubMedCrossRef Kruger L, Maxwell DS (1969) Wallerian degeneration in the optic nerve of a reptile: an elctron microscopic study. Am J Anat 125:247–269PubMedCrossRef
go back to reference Lam K, Sefton AJ, Bennet MR (1982) Loss of axons from the optic nerve of the rat during early postnatal development. Dev Brain Res 3:487–491CrossRef Lam K, Sefton AJ, Bennet MR (1982) Loss of axons from the optic nerve of the rat during early postnatal development. Dev Brain Res 3:487–491CrossRef
go back to reference Lampert PW (1967) A comparative electronmicroscopic study of reactive, degenerating, regenerating and dystrophic axons. J Neuropathol Exp Neurol 26:345–368PubMedCrossRef Lampert PW (1967) A comparative electronmicroscopic study of reactive, degenerating, regenerating and dystrophic axons. J Neuropathol Exp Neurol 26:345–368PubMedCrossRef
go back to reference Land DM, del Mar Romero-Aleman M, Arbelo-Galvan JF, Stuermer CA, Monzon-Mayor M (2002) Regeneration of retinal axons in the lizard Gallotia galloti. J Neurobiol 52:322–335CrossRef Land DM, del Mar Romero-Aleman M, Arbelo-Galvan JF, Stuermer CA, Monzon-Mayor M (2002) Regeneration of retinal axons in the lizard Gallotia galloti. J Neurobiol 52:322–335CrossRef
go back to reference Lanners NN, Grafstein B (1980) Early stages of axonal regeneration in the goldfish optic nerve: an electron microscopic study. J Neurocytol 9:733–751PubMedCrossRef Lanners NN, Grafstein B (1980) Early stages of axonal regeneration in the goldfish optic nerve: an electron microscopic study. J Neurocytol 9:733–751PubMedCrossRef
go back to reference Lia B, Williams RW, Chalupa LM (1986) Does axonal branching contribute to the overproduction of optic nerve fibers during early development of the cat’s visual system? Brain Res 390:296–301PubMedCrossRef Lia B, Williams RW, Chalupa LM (1986) Does axonal branching contribute to the overproduction of optic nerve fibers during early development of the cat’s visual system? Brain Res 390:296–301PubMedCrossRef
go back to reference Linke R, Roth G (1990) Optic nerves in plethodontid salamanders (Amphibia, Urodela): neuroglia, fiber spectrum and myelination. Anat Embryol (Berlin) 181:37–48 Linke R, Roth G (1990) Optic nerves in plethodontid salamanders (Amphibia, Urodela): neuroglia, fiber spectrum and myelination. Anat Embryol (Berlin) 181:37–48
go back to reference Maturana HR (1960) The fine anatomy of the optic nerve of anurans: an electron microscopic study. J Bioph Biochem Cytol 7:107–120CrossRef Maturana HR (1960) The fine anatomy of the optic nerve of anurans: an electron microscopic study. J Bioph Biochem Cytol 7:107–120CrossRef
go back to reference Meyer RL (1978) Evidence from thymidine labelling for continuing growth of retina and tectum in juvenile goldfish. Exp Neurol 59:99–111PubMedCrossRef Meyer RL (1978) Evidence from thymidine labelling for continuing growth of retina and tectum in juvenile goldfish. Exp Neurol 59:99–111PubMedCrossRef
go back to reference Misantone LJ, Gershenbaum M, Murray M (1984) Viability of retinal ganglion cells after nerve crush in adult rats. J Neurocytol 13:449–465PubMedCrossRef Misantone LJ, Gershenbaum M, Murray M (1984) Viability of retinal ganglion cells after nerve crush in adult rats. J Neurocytol 13:449–465PubMedCrossRef
go back to reference Moujahid A, Navascues J, Marin-Teva JL, Cuadros MA (1996) Macrophages during avian optic nerve development: relationship to cell death and differentiation into microglia. Anat Embryol (Berlin) 193:131–144 Moujahid A, Navascues J, Marin-Teva JL, Cuadros MA (1996) Macrophages during avian optic nerve development: relationship to cell death and differentiation into microglia. Anat Embryol (Berlin) 193:131–144
go back to reference Muchnick N, Hibbard E (1980) Avian retinal ganglion cells resistant to degeneration after optic nerve lesion. Exp Neurol 68:205–216PubMedCrossRef Muchnick N, Hibbard E (1980) Avian retinal ganglion cells resistant to degeneration after optic nerve lesion. Exp Neurol 68:205–216PubMedCrossRef
go back to reference Murray M (1976) Regeneration of retinal axons in the goldfish optic tectum. J Comp Neurol 168:175–196PubMedCrossRef Murray M (1976) Regeneration of retinal axons in the goldfish optic tectum. J Comp Neurol 168:175–196PubMedCrossRef
go back to reference Murray M (1982) A quantitative study of regeneration sprouting by optic axons in goldfish. J Comp Neurol 209:352–373PubMedCrossRef Murray M (1982) A quantitative study of regeneration sprouting by optic axons in goldfish. J Comp Neurol 209:352–373PubMedCrossRef
go back to reference Murray M, Edwards MA (1982) A quantitative study of the regeneration of the goldfish optic tectum following optic nerve crush. J Comp Neurol 209:363–373PubMedCrossRef Murray M, Edwards MA (1982) A quantitative study of the regeneration of the goldfish optic tectum following optic nerve crush. J Comp Neurol 209:363–373PubMedCrossRef
go back to reference Naulleau G (1973) Rearing the asp viper Vipera aspis in captivity. Int Zool Yearb 13:108–111CrossRef Naulleau G (1973) Rearing the asp viper Vipera aspis in captivity. Int Zool Yearb 13:108–111CrossRef
go back to reference Ng AYK, Stone J (1982) The optic nerve of the cat: appearance and loss of axons during development. Dev Brain Res 5:263–271CrossRef Ng AYK, Stone J (1982) The optic nerve of the cat: appearance and loss of axons during development. Dev Brain Res 5:263–271CrossRef
go back to reference O’Flaherty JJ (1971) The optic nerve of the mallard duck: fiber diameter frequency distribution and physiological properties. J Comp Neurol 143:17–24PubMedCrossRef O’Flaherty JJ (1971) The optic nerve of the mallard duck: fiber diameter frequency distribution and physiological properties. J Comp Neurol 143:17–24PubMedCrossRef
go back to reference Öhmann P (1977) Fine structure of the optic nerve of Lampetra fluviatilis (Cyclostomi). Vision Res 17:719–722 Öhmann P (1977) Fine structure of the optic nerve of Lampetra fluviatilis (Cyclostomi). Vision Res 17:719–722
go back to reference Perry VH, Henderson Z, Linden R (1983) Postnatal changes in retinal ganglion cell and optic axon populations in the pigmented rat. J Comp Neurol 219:356–368PubMedCrossRef Perry VH, Henderson Z, Linden R (1983) Postnatal changes in retinal ganglion cell and optic axon populations in the pigmented rat. J Comp Neurol 219:356–368PubMedCrossRef
go back to reference Peters A, Vaughn JE (1970) Morphology and development of the myelin sheath. In: Davison AN, Peters A (eds) Myelination. Charles C Thomas, Springfield pp 3–79 Peters A, Vaughn JE (1970) Morphology and development of the myelin sheath. In: Davison AN, Peters A (eds) Myelination. Charles C Thomas, Springfield pp 3–79
go back to reference Peters A, Palay SL, Webster H de F (1976) The fine structure of the nervous system: the neurons and supporting cells. W.B. Saunders, Philadelphia Peters A, Palay SL, Webster H de F (1976) The fine structure of the nervous system: the neurons and supporting cells. W.B. Saunders, Philadelphia
go back to reference Peyrichoux J, Pierre J, Repérant J, Rio JP, Ward R (1988) Evolution spatio-temporelle de la régénération du tractus optique chez Rutilus rutilus. C R Acad Sci Paris 306:551–558PubMed Peyrichoux J, Pierre J, Repérant J, Rio JP, Ward R (1988) Evolution spatio-temporelle de la régénération du tractus optique chez Rutilus rutilus. C R Acad Sci Paris 306:551–558PubMed
go back to reference Playford DE, Dunlop SA (1993) A biphasic sequence of myelinisation in the developing optic nerve of the frog. J Comp Neurol 333:83–93PubMedCrossRef Playford DE, Dunlop SA (1993) A biphasic sequence of myelinisation in the developing optic nerve of the frog. J Comp Neurol 333:83–93PubMedCrossRef
go back to reference Potts RA, Dreher B, Bennett MR (1982) The loss of ganglion cells in the developing retina of the rat. Dev Brain Res 3:481–486CrossRef Potts RA, Dreher B, Bennett MR (1982) The loss of ganglion cells in the developing retina of the rat. Dev Brain Res 3:481–486CrossRef
go back to reference Provis JM, van Diel D, Billson FA, Russell P (1985) Human fetal optic nerve: overproduction and elimination of retinal axons during development. J Comp Neurol 238:92–101PubMedCrossRef Provis JM, van Diel D, Billson FA, Russell P (1985) Human fetal optic nerve: overproduction and elimination of retinal axons during development. J Comp Neurol 238:92–101PubMedCrossRef
go back to reference Rager G (1976) Morphogenesis and physiogenesis of the retino-tectal connection in the chicken. I. The retinal ganglion cells and their axons. Proc Roy Soc B 192:331–352CrossRef Rager G (1976) Morphogenesis and physiogenesis of the retino-tectal connection in the chicken. I. The retinal ganglion cells and their axons. Proc Roy Soc B 192:331–352CrossRef
go back to reference Rager G (1978) System-matching by degeneration. II. Interpretation of the generation and degeneration of retinal ganglion cells by a mathematical model. Exp Brain Res 33:79–90PubMedCrossRef Rager G (1978) System-matching by degeneration. II. Interpretation of the generation and degeneration of retinal ganglion cells by a mathematical model. Exp Brain Res 33:79–90PubMedCrossRef
go back to reference Rager G (1980) Development of the retinotectal system in the chicken. Adv Anat Embryol Cell Biol 63:1–62 Rager G (1980) Development of the retinotectal system in the chicken. Adv Anat Embryol Cell Biol 63:1–62
go back to reference Rager G (1983) Structural analysis of fiber organization during development. Progr Brain Res 58:313–319CrossRef Rager G (1983) Structural analysis of fiber organization during development. Progr Brain Res 58:313–319CrossRef
go back to reference Rager G, Rager U (1976) Generation and degeneration of retinal ganglion cells in the chicken. Exp Brain Res 25:551–553PubMedCrossRef Rager G, Rager U (1976) Generation and degeneration of retinal ganglion cells in the chicken. Exp Brain Res 25:551–553PubMedCrossRef
go back to reference Rager G, Rager U (1978) System matching by degeneration. I. A quantitative electron microscopic study of the generation and degeneration of retinal ganglion cells in the chicken. Exp Brain Res 33:65–78PubMedCrossRef Rager G, Rager U (1978) System matching by degeneration. I. A quantitative electron microscopic study of the generation and degeneration of retinal ganglion cells in the chicken. Exp Brain Res 33:65–78PubMedCrossRef
go back to reference Rakic P, Riley KP (1983) Overproduction and elimination of retinal axons in the fetal rhesus monkey. Science 219:1441–1444PubMedCrossRef Rakic P, Riley KP (1983) Overproduction and elimination of retinal axons in the fetal rhesus monkey. Science 219:1441–1444PubMedCrossRef
go back to reference Reier PJ, Webster H de F (1974) Regeneration and remyelinisation of Xenopus tadpole optic nerve fibres following transaction or crush. J Neurocytol 3:591–618PubMedCrossRef Reier PJ, Webster H de F (1974) Regeneration and remyelinisation of Xenopus tadpole optic nerve fibres following transaction or crush. J Neurocytol 3:591–618PubMedCrossRef
go back to reference Repérant J (1978) Organisation Anatomique du Système Visuel des Vertebrés. Approche Evolutive. Thèse de Doctorat d’Etat, Université de Paris VI. 358 p, 154 pl Repérant J (1978) Organisation Anatomique du Système Visuel des Vertebrés. Approche Evolutive. Thèse de Doctorat d’Etat, Université de Paris VI. 358 p, 154 pl
go back to reference Repérant J, Saban R (1986) Anatomie comparée du système visuel primaire chez les Mammifères. In: Hamard H, Chevaleraud J, Rondot P (eds) Neuropathies optiques. Soc Franc Ophtalmol. Masson, Paris, pp 41–94 Repérant J, Saban R (1986) Anatomie comparée du système visuel primaire chez les Mammifères. In: Hamard H, Chevaleraud J, Rondot P (eds) Neuropathies optiques. Soc Franc Ophtalmol. Masson, Paris, pp 41–94
go back to reference Repérant J, Rio JP, Miceli D, Vesselkin N (1987) Anatomical evidence of optic regeneration in the viper (Vipera aspis) 7th European Winter Conference on Brain Research, Val Thorens, France, Abst. p 33 Repérant J, Rio JP, Miceli D, Vesselkin N (1987) Anatomical evidence of optic regeneration in the viper (Vipera aspis) 7th European Winter Conference on Brain Research, Val Thorens, France, Abst. p 33
go back to reference Repérant J, Rio JP, Ward R, Miceli D, Vesselkin NP, Hergueta S, Lemire M (1991) Sequential events of degeneration and synaptic remodelling in the viper optic tectum following retinal ablation. A degeneration, radioautographic and immunocytochemical study. J Chem Neuroanat 4:397–419PubMedCrossRef Repérant J, Rio JP, Ward R, Miceli D, Vesselkin NP, Hergueta S, Lemire M (1991) Sequential events of degeneration and synaptic remodelling in the viper optic tectum following retinal ablation. A degeneration, radioautographic and immunocytochemical study. J Chem Neuroanat 4:397–419PubMedCrossRef
go back to reference Richardson PM, Issa VM, Shemie S (1982) Regeneration and retrograde degeneration in the rat optic nerve. J Neurocytol 11:949–966PubMedCrossRef Richardson PM, Issa VM, Shemie S (1982) Regeneration and retrograde degeneration in the rat optic nerve. J Neurocytol 11:949–966PubMedCrossRef
go back to reference Rio JP, Repérant J, Ward R, Peyrichoux J, Vesselkin N (1989) A preliminary description of the regeneration of optic nerve fibers in a reptile, Vipera aspis. Brain Res 479:151–156PubMedCrossRef Rio JP, Repérant J, Ward R, Peyrichoux J, Vesselkin N (1989) A preliminary description of the regeneration of optic nerve fibers in a reptile, Vipera aspis. Brain Res 479:151–156PubMedCrossRef
go back to reference Robinson SR, Horsburgh GM, Dreher B, McCall MJ (1987) Changes in the numbers of retinal ganglion cells and optic nerve axons in the developing albino rabbit. Brain Res 432:161–174PubMed Robinson SR, Horsburgh GM, Dreher B, McCall MJ (1987) Changes in the numbers of retinal ganglion cells and optic nerve axons in the developing albino rabbit. Brain Res 432:161–174PubMed
go back to reference Rosenbluth J (1966) Redundant myelin sheaths and other ultrastructural features of the toad cerebellum. J Cell Biol 28:73–93PubMedCrossRef Rosenbluth J (1966) Redundant myelin sheaths and other ultrastructural features of the toad cerebellum. J Cell Biol 28:73–93PubMedCrossRef
go back to reference Sefton AJ, Lam K (1984) Quantitative and morphological studies on developing optic axons in normal and enucleated albino rats. Exp Brain Res 57:107–117PubMedCrossRef Sefton AJ, Lam K (1984) Quantitative and morphological studies on developing optic axons in normal and enucleated albino rats. Exp Brain Res 57:107–117PubMedCrossRef
go back to reference Sefton AJ, Horsburgh GM, Lam K (1985) The development of the optic nerve in rodents. Aust N Z J Ophthalmol 13:135–145PubMedCrossRef Sefton AJ, Horsburgh GM, Lam K (1985) The development of the optic nerve in rodents. Aust N Z J Ophthalmol 13:135–145PubMedCrossRef
go back to reference Sengelaub DR, Finlay BL (1982) Cell death in the mammalian visual system during normal development. I. Retinal ganglion cells. J Comp Neurol 204:311–317PubMedCrossRef Sengelaub DR, Finlay BL (1982) Cell death in the mammalian visual system during normal development. I. Retinal ganglion cells. J Comp Neurol 204:311–317PubMedCrossRef
go back to reference Skoff RP, Price DL, Stocks A (1976) Electron microscopic autoradiographic studies of gliogenesis in rat optic nerve. I. Cell proliferation. J Comp Neurol 169:291–312PubMedCrossRef Skoff RP, Price DL, Stocks A (1976) Electron microscopic autoradiographic studies of gliogenesis in rat optic nerve. I. Cell proliferation. J Comp Neurol 169:291–312PubMedCrossRef
go back to reference Skoff RP, Toland D, Nast E (1980) Patterns of myelinisation and distribution of neuroglial cells along the developing optic system of the rat and rabbit. J Comp Neurol 191:237–253PubMedCrossRef Skoff RP, Toland D, Nast E (1980) Patterns of myelinisation and distribution of neuroglial cells along the developing optic system of the rat and rabbit. J Comp Neurol 191:237–253PubMedCrossRef
go back to reference Stirling RV, Dunlop SA, Beazley LD (1999) Electrophysiological evidence for transient topographic organization of retinotectal projections during optic nerve regeneration in the lizard Ctenophorus ornatus. Vis Neurosci 16:681–693PubMedCrossRef Stirling RV, Dunlop SA, Beazley LD (1999) Electrophysiological evidence for transient topographic organization of retinotectal projections during optic nerve regeneration in the lizard Ctenophorus ornatus. Vis Neurosci 16:681–693PubMedCrossRef
go back to reference Straznicky C, Gaze RM (1971) The growth of the retina in Xenopus laevis: an autoradiographic study. J Embryol Exp Morphol 26:67–69PubMed Straznicky C, Gaze RM (1971) The growth of the retina in Xenopus laevis: an autoradiographic study. J Embryol Exp Morphol 26:67–69PubMed
go back to reference Stuermer CAO, Raymond PA (1989) Developing retinotectal projection in larval goldfish. J Comp Neurol 281:630–660PubMedCrossRef Stuermer CAO, Raymond PA (1989) Developing retinotectal projection in larval goldfish. J Comp Neurol 281:630–660PubMedCrossRef
go back to reference Sturrock RR (1987a) Changes in the number of axons in the human embryonic optic nerve from 8 to 18 weeks gestation. J Hirnforsch 28:649–652 Sturrock RR (1987a) Changes in the number of axons in the human embryonic optic nerve from 8 to 18 weeks gestation. J Hirnforsch 28:649–652
go back to reference Sturrock RR (1987b) Age-related changes in the number of myelinated axons and glial cells in the anterior and posterior limbs of the mouse anterior commissure. J Anat (London) 150:111–127 Sturrock RR (1987b) Age-related changes in the number of myelinated axons and glial cells in the anterior and posterior limbs of the mouse anterior commissure. J Anat (London) 150:111–127
go back to reference Takayama S, Yamamoto M, Hashimoto K, Itoh H (1991) Immunohistochemical study on the developing optic nerves in human embryos and fetuses. Brain Dev 13:307–312PubMed Takayama S, Yamamoto M, Hashimoto K, Itoh H (1991) Immunohistochemical study on the developing optic nerves in human embryos and fetuses. Brain Dev 13:307–312PubMed
go back to reference Tapp RL (1973) The structure of the optic nerve of the teleost Eugerres plumieri. J Comp Neurol 150:239–252PubMedCrossRef Tapp RL (1973) The structure of the optic nerve of the teleost Eugerres plumieri. J Comp Neurol 150:239–252PubMedCrossRef
go back to reference Tapp RL (1974) Axon number and distribution, myelin thickness and the reconstruction of the compound action potential of the optic nerve of the teleost Eugerres plumieri. J Comp Neurol 153:267–274PubMedCrossRef Tapp RL (1974) Axon number and distribution, myelin thickness and the reconstruction of the compound action potential of the optic nerve of the teleost Eugerres plumieri. J Comp Neurol 153:267–274PubMedCrossRef
go back to reference Tay D, So KF, Lau KC (1986) The postnatal development of the optic nerve in hamsters: an electron microscopic study. Brain Res 395:268–273PubMedCrossRef Tay D, So KF, Lau KC (1986) The postnatal development of the optic nerve in hamsters: an electron microscopic study. Brain Res 395:268–273PubMedCrossRef
go back to reference Tennekoon GI, Cohen SR, Price DL, McKhann GM (1977) Myelinogenesis in optic nerve: a morphological, autoradiographic and biochemical analysis. J Cell Biol 72:604–616PubMedCrossRef Tennekoon GI, Cohen SR, Price DL, McKhann GM (1977) Myelinogenesis in optic nerve: a morphological, autoradiographic and biochemical analysis. J Cell Biol 72:604–616PubMedCrossRef
go back to reference Turner JE, Singer M (1974) Ultrastructure of regeneration in the severed newt optic nerve. J Exp Zool 190:249–268PubMedCrossRef Turner JE, Singer M (1974) Ultrastructure of regeneration in the severed newt optic nerve. J Exp Zool 190:249–268PubMedCrossRef
go back to reference Vaughan JE (1969) An electron microscopic analysis of gliogenesis in rat optic nerves. Z Zellforsch 94:293–324CrossRef Vaughan JE (1969) An electron microscopic analysis of gliogenesis in rat optic nerves. Z Zellforsch 94:293–324CrossRef
go back to reference Walberg F (1964) Further electron microscopical investigations of the inferior olive of the cat. Progr Brain Res 6:59–75CrossRef Walberg F (1964) Further electron microscopical investigations of the inferior olive of the cat. Progr Brain Res 6:59–75CrossRef
go back to reference Ward R, Repérant J, Rio JP, Peyrichoux J (1987) Etude quantitative du nerf optique chez la vipère aspic (Vipera aspis) C R Acad Sci Paris 304 sér III:331–336 Ward R, Repérant J, Rio JP, Peyrichoux J (1987) Etude quantitative du nerf optique chez la vipère aspic (Vipera aspis) C R Acad Sci Paris 304 sér III:331–336
go back to reference Ward R, Repérant J, Rio JP, Peyrichoux J, Lemire M (1989) The optic nerve of the viper, Vipera aspis. J Hirnforsch 30:565–576PubMed Ward R, Repérant J, Rio JP, Peyrichoux J, Lemire M (1989) The optic nerve of the viper, Vipera aspis. J Hirnforsch 30:565–576PubMed
go back to reference Williams RW, Bastiani MJ, Barry LIA, Chalupa LM (1986) Growth cones, dying axons, and developmental fluctuations in the fiber population of the cat’s optic nerve. J Comp Neurol 246:32–69PubMedCrossRef Williams RW, Bastiani MJ, Barry LIA, Chalupa LM (1986) Growth cones, dying axons, and developmental fluctuations in the fiber population of the cat’s optic nerve. J Comp Neurol 246:32–69PubMedCrossRef
go back to reference Wilson MA (1971) Optic nerve fibre counts and retinal ganglion cell counts during development of Xenopus laevis (Daudin). Q J Exp Physiol 56:83–91 Wilson MA (1971) Optic nerve fibre counts and retinal ganglion cell counts during development of Xenopus laevis (Daudin). Q J Exp Physiol 56:83–91
go back to reference Woodbury PB, Ulinski PS (1986) Conduction velocity, size and distribution of optic nerve axons in the turtle Pseudemys scripta elegans. Anat Embryol (Berlin) 174:253–263CrossRef Woodbury PB, Ulinski PS (1986) Conduction velocity, size and distribution of optic nerve axons in the turtle Pseudemys scripta elegans. Anat Embryol (Berlin) 174:253–263CrossRef
go back to reference Yamada KM, Spooner BS, Wessells NK (1971) Ultrastructure and function of growth cones and axons of cultured nerve cells. J Cell Biol 49:614–635PubMedCrossRef Yamada KM, Spooner BS, Wessells NK (1971) Ultrastructure and function of growth cones and axons of cultured nerve cells. J Cell Biol 49:614–635PubMedCrossRef
Metadata
Title
The postnatal development of the optic nerve of a reptile (Vipera aspis): a quantitative ultrastructural study
Authors
M. Bennis
J. Repérant
R. Ward
J.-P. Rio
S. Ba M’hamed
B. Jay
Publication date
01-11-2006
Publisher
Springer-Verlag
Published in
Brain Structure and Function / Issue 6/2006
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-006-0135-8

Other articles of this Issue 6/2006

Brain Structure and Function 6/2006 Go to the issue