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Development of the tectum and diencephalon in relation to the time of arrival of the earliest optic fibres in Xenopus

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Summary

The development of the tectum and diencephalon in Xenopus has been investigated in relation to recent descriptions of the establishment of the retinotectal projection. Tritiated thymidine autoradiography and bromodeoxyuridine immunohistology were used to identify the stages at which cells became postmitotic. Cells in the diencephalon were found to become postmitotic before cells in the tectum. At the time of arrival of the first optic fibres (stage 37/38) no postmitotic cells appeared to be present in the tectal precursor region. The first postmitotic cells which could be definitely assigned to the tectum appeared between stages 41 and 45. The results suggest that the initial retinotopic ordering of optic fibres observed from stage 37/38 relates to the position of fibres in the optic tract and not the tectum.

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References

  • Bonhoeffer F, Huf J (1982) In vitro experiments on axon guidance demonstrating an anterior-posterior gradient on the tectum. EMBO J 1:427–431

    Google Scholar 

  • Bunt SM, Lund RD, Land PW (1983) Prenatal development of the optic projection in albino and hooded rats. Dev Brain Res 6:149–168

    Google Scholar 

  • Chung SH, Keating MJ, Bliss TVP (1974) Functional synaptic relations during the development of the retino-tectal projection in amphibians. Proc R Soc Lond [Biol] 187:449–459

    Google Scholar 

  • Fawcett JW, Gaze RM (1982) The retinotectal fibre pathways from normal and compound eyes in Xenopus. J Embryol Exp Morphol 72:19–37

    Google Scholar 

  • Fujisawa H (1987) Mode of growth of retinal axons within the tectum of Xenopus tadpoles, and implications in the ordered neuronal connection between the retina and the tectum. J Comp Neurol 260:127–139

    Google Scholar 

  • Gaze RM, Grant P (1992) Spatio-temporal patterns of retinal ganglion cell death during Xenopus development. J Comp Neurol (in press)

  • Gorlick DL, Kelley DB (1987) Neuorgenesis in the vocalization pathway of Xenopus laevis. J Comp Neurol 257:617–627

    Google Scholar 

  • Harris WA (1989) Local positional cues in the neuroepithelium guide retinal axons in embryonic Xenopus brain. Nature 339:218–221

    Google Scholar 

  • Harris WA, Holt CE, Bonhoeffer F (1987) Retinal axons with and without their somata growing to and arborizing in the tectum of Xenopus embryos: a time-lapse video study of single fibres in vivo. Development: 101:123–133

    Google Scholar 

  • Holt CE (1984) Does timing of axon outgrowth influence initial retinotectal topography in Xenopus? J Neurosci 4:1130–1152

    Google Scholar 

  • Holt CE, Harris WA (1983) Order in the initial retinotectal map in Xenopus: a new technique for labelling growing nerve fibres. Nature 301:150–152

    Google Scholar 

  • Jack J, Gooday D, Wilson M, Gaze M (1991) Retinal axons in Xenopus show different behaviour patterns on various glial substrates in vitro. Anat Embryol 183:193–203

    Google Scholar 

  • Jenkins S, Straznicky C (1986) Naturally occurring and induced ganglion cell death. A retinal whole mount autoradiographic study in Xenopus. Anat Embryol 174:59–66

    Google Scholar 

  • Kollros JJ, Thiesse ML (1988) Control of tectal cell number during larval development in Rana pipiens. J Comp Neurol 278:430–445

    Google Scholar 

  • Lamborghini JE (1980) Rohon-beard cells and other large neurons in Xenopus embryos originate during gastrulation. J Comp Neurol 189:323–333

    Google Scholar 

  • Lazar G (1971) The projection of the retinal quadrants on the optic centres in the frog. Acta Morphol Acad Sci Hung 19:325–334

    Google Scholar 

  • Lazar G (1984) Structure and connections of the frog optic tectum. In: Vanegas H (ed) Comparative neurology of the optic tectum. Plenum Press, New York, pp 185–210

    Google Scholar 

  • Levine RL (1980) An autoradiographic study of the retinal projection in Xenopus laevis with comparisons to Rana. J Comp Neurol 189:1–29

    Google Scholar 

  • Longley A (1978) Anatomical mapping of retino-tectal connections in developing and metamorphosed Xenopus: evidence for changing connections. J Embryol Exp Morphol 45:249–270

    Google Scholar 

  • Metcalfe WK (1985) Sensory neuron growth cones comigrate with posterior lateral line primordial cells in zebrafish. J Comp Neurol 238:218–224

    Google Scholar 

  • Muntz WRA (1962) Microelectrode recordings from the diencephalon of the frog (Rana pipiens) and a blue-sensitive system. J Neurophysiol 25:699–711

    Google Scholar 

  • Nieuwkoop PD, Faber J (1967) Normal table of Xenopus laevis (Daudin). North-Holland, Amsterdam

    Google Scholar 

  • O'Rourke NA, Fraser SE (1986) Dynamic aspects of retinotectal map formation revealed by a vital-dye fiber-tracing technique. Dev Biol 114:265–276

    Google Scholar 

  • O'Rourke N, Fraser SE (1990) Dynamic changes in optic fiber terminal arbors lead to retinotopic map formation: an in vivo confocal microscopic study. Neuron 5:159–171

    Google Scholar 

  • Reh TA, Pitts E, Constantine-Paton M (1983) The organization of the fibres in the optic nerve of normal and tectum-less Rana pipiens. J Comp Neurol 218:282–296

    Google Scholar 

  • Sakaguchi DS, Murphey RK (1985) Map formation in the developing Xenopus retinotectal system: an examination of ganglion cell terminal arborizations. J Neurosci 5:3228–3245

    Google Scholar 

  • Scalia F, Fite K (1974) A retinotopic analysis of the central connections of the optic nerve in the frog. J Comp Neurol 158:455–478

    Google Scholar 

  • Scalia F, Knapp H, Halpern M, Riss W (1968) New observations on the retinal projection in the frog. Brain Behav Evol 1:324–353

    Google Scholar 

  • Sperry RW (1951) Mechanisms of neural maturation. In: Stevens SS (ed) Handbook of experimental psychology. Wiley, New York, pp 236–280

    Google Scholar 

  • Stahl B, Muller B, von Boxberg Y, Cox EC, Bonhoeffer F (1990) Biochemical characterization of a putative axonal guidance molecule of the chick visual system. Neuron 5:735–743

    Google Scholar 

  • Steedman JG (1981) Pattern Formation in the Visual Pathways of Xenopus laevis. PhD Thesis, London University

  • Straznicky K, Gaze RM (1971) The growth of the retina in Xenopus laevis: an autoradiographic study. J Embryol Exp Morphol 26:67–79

    Google Scholar 

  • Straznicky K, Gaze RM (1972) The development of the tectum in Xenopus laevis: an autoradiographic study. J Embryol Exp Morphol 28:87–115

    Google Scholar 

  • Straznicky K, Gaze RM, Horder TJ (1979) Selection of appropriate medial branch of the optic tract by fibres of ventral retinal origin during development and in regeneration: an autoradiographic study in Xenopus. J Embryol Exp Morphol 50:253–267

    Google Scholar 

  • Stuermer CAO (1988) Retinotopic organization of the developing retinotectal projection in the Zebrafish embryo. J Neurosci 8:4513–4530

    Google Scholar 

  • Tay D, Straznicky C (1982) The development of the diencephalon in Xenopus. Anat Embryol 163:371–388

    Google Scholar 

  • Taylor AC, Kollros JJ (1946) Stages in the normal development of Rana pipiens larvae. Anat Rec 94:7–23

    Google Scholar 

  • Taylor JSH (1990) The directed growth of retinal axons towards surgically transposed tecta in Xenopus; an examination of homing behaviour by retinal ganglion cell axons. Development 108:147–158

    Google Scholar 

  • Udin SB, Fawcett JW (1988) Formation of topographic maps. Ann Rev Neurosci 11:289–327

    Google Scholar 

  • Walter J, Kern-Veits B, Huf J, Stolze B, Bonhoeffer F (1987a) Recognition of position-specific properties of tectal cell membranes by retinal axons in vitro. Development 101:685–696

    Google Scholar 

  • Walter J, Henke-Fahle S, Bonhoeffer F (1987b) Avoidance of posterior tectal membranes by temporal retinal axons. Development 101:909–913

    Google Scholar 

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Gaze, R.M., Grant, P. Development of the tectum and diencephalon in relation to the time of arrival of the earliest optic fibres in Xenopus . Anat Embryol 185, 599–612 (1992). https://doi.org/10.1007/BF00185619

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  • DOI: https://doi.org/10.1007/BF00185619

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