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Intraparenchymal grafting of cerebellar cell suspensions to the deep cerebellar nuclei of pcd mutant mice, with particular emphasis on re-establishment of a Purkinje cell cortico-nuclear projection

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Summary

In transplanting embryonic cerebellar grafts to the cerebellar cortex of “Purkinje cell degeneration” (pcd) mutant mice to replace missing Purkinje cells (PC), donor PC leave the graft and migrate to the molecular layer of the host. However, PC axons do not always reach the deep cerebellar nuclei of the host, which would be a key element in restoring much of the necessary inhibitory cortico-nuclear projection associated with normal cerebellar function. Rather, grafted PC axons often innervate a region containing deep cerebellar nuclei neurons inside the transplant, while the perikaryon migrates to the host molecular layer. In the present study, aimed at re-establishing a PC innervation of the deep nuclei, we implanted E12 cerebellar cell suspensions intraparenchymally to the deep cerebellar mass of the hosts. The development of grafted PC was monitored with 28-kDa calcium-binding protein (CaBP) immunocytochemistry at various times after transplantation. At short survival times (5 days after grafting), grafts were confined to the site of the original injection. At longer survival times (7–32 days after grafting), grafted PC formed a migratory stream that reached the cerebellar cortex of the host. The most robust graft development was seen 1 month after grafting, the longest survival time allowed in this series of experiments. At that time, clusters of donor PC were found both in the deep nuclei parenchyma and aligned along cortical folia. The orientation of the dendritic trees of PC that had migrated to the cortex was toward the pia. A CaBP-immunoreactive fibre plexus innervated the host deep cerebellar nuclei. The stream of grafted PC extended from the deep cerebellar nuclei to the cerebellar cortex of the host, indicating that donor PC could establish their axonal contacts in the deep nuclei and then move to their final cortical locality, thus recapitulating a migratory path normally taken during cerebellar ontogeny. It appears therefore that both from the pathophysiological and ontogenetic standpoints, the deep cerebellar nuclei represent the appropriate site for PC implantation in cerebellocortical atrophy.

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References

  • Altman J (1982) Morphological development of the rat cerebellum and some of its mechanisms. Exp Brain Res [Suppl] 6:8–49

    Google Scholar 

  • Altman J, Bayer SA (1985a) Embryonic development of the rat cerebellum. II. Translocation and regional distribution of the deep neurons. J Comp Neurol 231:27–41

    Google Scholar 

  • Altman J, Bayer SA (1985b) Embryonic development of the rat cerebellum. III. Regional differences in the time of origin, migration, and settling of Purkinje cells. J Comp Neurol 231:42–65

    Google Scholar 

  • Angaut P, Sotelo C (1987) The dentato-olivary projection in the rat as a presumptive GABAergic link in the olivo-cerebello-olivary loop. Neurosci Lett 83:227–231

    Google Scholar 

  • Barry DI, Kikvadze I, Brundin P, Bolwig TG, Björklund A, Lindvall O (1987) Grafted noradrenergic neurons suppress seizure development in kindling-induced epilepsy. Proc Natl Acad Sci USA 84:8712–8715

    Google Scholar 

  • Björklund A, Stenevi U (1977) Reformation of the severed septohippocampal cholinergic pathway in the adult rat by transplanted septal neurons. Cell Tissue Res 185:289–302

    Google Scholar 

  • Björklund A, Stenevi U (1979) Reconstruction of the nigrostriatal dopamine pathway by intracerebral nigral transplants. Brain Res 177:555–560

    Google Scholar 

  • Björklund A, Stenevi U, Svendgaard N-A (1976) Growth of transplanted monoaminergic neurones into the adult hippocampus along the perforant path. Nature 262:787–790

    Google Scholar 

  • Björklund A, Schmidt RH, Stenevi U (1980) Functional reinnervation of the neostriatum in the adult rat by use of intraparenchymal grafting of dissociated cell suspensions from the substantia nigra. Cell Tissue Res 212:39–45

    Google Scholar 

  • Björklund A, Stenevi U, Schmidt RH, Dunnett SB, Gage FH (1983) Survival and growth of nigral cell suspensions implanted in different brain sites. Acta Physiol Scand [Suppl] 522:9–18

    Google Scholar 

  • Caroni P, Schwab ME (1988) Antibody against myelin-associated inhibitor of neurite growth neutralizes nonpermissive substrate properties of CNS white matter. Neuron 1:85–96

    Google Scholar 

  • Celio MR, Baier W, Schärer L, Gregersen HJ, de Viragh PA, Norman AW (1990) Monoclonal antibodies directed against the calcium binding protein Calbindin D-28k. Cell Calcium 11:599–602

    Google Scholar 

  • Chang AC, Triarhou LC, Alyea CJ, Low WC, Ghetti B (1989) Developmental expression of polypeptide PEP-19 in cerebellar cell suspensions transplanted into the cerebellum of pcd mutant mice. Exp Brain Res 76:639–645

    Google Scholar 

  • Eccles JC, Ito M, Szentágothai J (1967) The cerebellum as a neuronal machine. Springer, Berlin Heidelberg, 335 pp

    Google Scholar 

  • Gardette R, Alvarado-Mallart RM, Crepel F, Sotelo C (1988) Electrophysiological demonstration of a synaptic integration of transplanted Purkinje cells into the cerebellum of the adult Purkinje cell degeneration mutant mouse. Neuroscience 24:777–789

    Google Scholar 

  • Gardette R, Crepel F, Alvarado-Mallart RM, Sotelo C (1990) Fate of grafted embryonic Purkinje cells in the cerebellum of the adult “Purkinje cell degeneration” mutant mouse. II. Development of synaptic responses: An in vitro study. J Comp Neurol 295:188–196

    Google Scholar 

  • Ghetti B, Alyea CJ, Muller J (1978) Studies on the Purkinje cell degeneration (pcd) mutant: primary pathology and transneuronal changes. J Neuropathol Exp Neurol 37:617

    Google Scholar 

  • Ghetti B, Norton J, Triarhou LC (1987) Nerve cell atrophy and loss in the inferior olivary complex of “Purkinje cell degeneration” mutant mice. J Comp Neurol 260:409–422

    Google Scholar 

  • Ghetti B, Triarhou LC, Alyea CJ, Low WC, Chang AC (1990) Timing of neuronal replacement in cerebellar degenerative ataxia of Purkinje cell type. Prog Brain Res 82:197–202

    Google Scholar 

  • Holmes G (1907) A form of familial degeneration of the cerebellum. Brain 30:467–489

    Google Scholar 

  • Ito M (1984) The cerebellum and neural control. Plenum Press, New York, 580 pp

    Google Scholar 

  • Landis SC, Mullen RJ (1978) The development and degeneration of Purkinje cells in pcd mutant mice. J Comp Neurol 177:125–144

    Article  Google Scholar 

  • Low WC, Lewis PR, Bunch ST, Dunnett SB, Thomas SR, Iversen SD, Björklund A, Stenevi U (1980) Functional recovery following neural transplantation of embryonic septal nuclei in adult rats with septohippocampal lesions. Nature 300:260–262

    Google Scholar 

  • Miale IL, Sidman RL (1961) An autoradiographic analysis of histogenesis in the mouse cerebellum. Exp Neurol 4:277–296

    Google Scholar 

  • Mullen RJ (1977) Site of pcd gene action and Purkinje cell mosaicism in cerebella of chimaeric mice. Nature 270:245–247

    Google Scholar 

  • Mullen RJ, Eicher EM, Sidman RL (1976) Purkinje cell degeneration, a new neurological mutation in the mouse. Proc Natl Acad Sci USA 73:208–212

    Google Scholar 

  • Nelson BJ, Mugnaini E (1989) Origins of GABAergic inputs to the inferior olive. Exp Brain Res [Suppl] 17:86–87

    Google Scholar 

  • Nelson B, Barmack NH, Mugnaini E (1984) A GABAergic cerebello-olivary projection in the rat. Soc Neurosci Abstr 10:539

    Google Scholar 

  • Obata K (1969) GABA in Purkinje cells and motoneurons. Experientia 25:1285

    Google Scholar 

  • Palay SL, Chan-Palay V (1974) Cerebellar cortex: Cytology and organization. Springer, Berlin, 348 pp

    Google Scholar 

  • Ramón y Cajal S (1910) Algunas observaciones favorables a la hipótesis neurotrópica. Trab Lab Invest Biol Univ Madrid 8:63–135

    Google Scholar 

  • Ramón y Cajal S (1926) Sur les fibres moussues et quelques points douteux de la texture de l'écorce cérébelleuse. Trab Lab Invest Biol Univ Madrid 24:215–251

    Google Scholar 

  • Ramón y Cajal S (1929) Studies on vertebrate neurogenesis. Guth L (transl). Thomas, Springfield, Ill., 1960, pp 251–321

    Google Scholar 

  • Reichardt LF, Tomaselli KJ (1991) Extracellular matrix molecules and their receptors:Functions in neural development. Ann Rev Neurosci 14:531–570

    Google Scholar 

  • Schnell L, Schwab ME (1990) Axonal regeneration in the rat spinal cord produced by an antibody against myelin-associated neurite growth inhibitors. Nature 343:269–272

    Google Scholar 

  • Segal M, Azmitia EC (1986) Fetal raphe neurons grafted into the hippocampus develop normal adult physiological properties. Brain Res 364:162–166

    Google Scholar 

  • Shojaeian H, Delhaye-Bouchaud N, Mariani J (1988) Stability of inferior olivary neurons in rodents. I. Moderate cell loss in adult Purkinje cell degeneration mutant mouse. Dev Brain Res 38:211–218

    Google Scholar 

  • Sotelo C (1988) Transplantation de neurones embryonnaires dans le cervelet de souris: Restauration de l'intégrité cérébelleuse chez des souris avec ataxie hérédo-dégénérative. Méd Sci 8:507–514

    Google Scholar 

  • Sotelo C, Alvarado-Mallart RM (1986) Growth and differentiation of cerebellar suspensions transplanted into the adult cerebellum of mice with heredodegenerative ataxia. Proc Natl Acad Sci USA 83:1135–1139

    Google Scholar 

  • Sotelo C, Alvarado-Mallart RM (1987a) Embryonic and adult neurons interact to allow Purkinje cell replacement in mutant cerebellum. Nature 327:421–423

    Google Scholar 

  • Sotelo C, Alvarado-Mallart RM (1987b) Reconstruction of the defective cerebellar circuitry in adult Purkinje cell degeneration mutant mice by Purkinje cell replacement through transplantation of solid embryonic implants. Neuroscience 20:1–22

    Google Scholar 

  • Sotelo C, Alvarado-Mallart RM (1991) The reconstruction of cerebellar circuits. Trends Neurosci 14:350–355

    Google Scholar 

  • Sotelo C, Alvarado-Mallart RM, Gardette R, Crepel F (1990) Fate of grafted embryonic Purkinje cells in the cerebellum of the adult “Purkinje cell degeneration” mutant mouse. I. Development of reciprocal graft-host interactions. J Comp Neurol 295:165–187

    Google Scholar 

  • Triarhou LC, Ghetti B (1991) Stabilisation of neurone number in the inferior olivary complex of aged ‘Purkinje cell degeneration’ mutant mice. Acta Neuropathol (Berl) 81:597–602

    Google Scholar 

  • Triarhou LC, Norton J, Alyea C, Ghetti B (1985) A quantitative study of the granule cells in the Purkinje cell degeneration (pcd) mutant. Ann Neurol 18:146

    Google Scholar 

  • Triarhou LC, Low WC, Ghetti B (1987a) Transplantation of cerebellar anlagen to hosts with genetic cerebellocortical atrophy. Anat Embryol 176:145–154

    Google Scholar 

  • Triarhou LC, Norton J, Ghetti B (1987b) Anterograde transsynaptic degeneration in the deep cerebellar nuclei of Purkinje cell degeneration (pcd) mutant mice. Exp Brain Res 66:577–588

    Google Scholar 

  • Triarhou LC, Low WC, Ghetti B (1989) Intraparenchymal grafting of cerebellar cell suspensions to the deep cerebellar nuclei of pcd mutant mice: Rationale and histochemical organization. Soc Neurosci Abstr 15:10

    Google Scholar 

  • Triarhou LC, Low WC, Ghetti B (1991) Serotonin fiber innervation of cerebellar cell suspensions intraparenchymally grafted to the cerebellum of pcd mutant mice. Neurochem Res 17:475–482

    Google Scholar 

  • Ungerstedt U, Arbuthnott GW (1970) Quantitative recording of rotational behavior in rats after 6-hydroxydopamine lesions of the nigrostriatal dopamine system. Brain Res 24:485–493

    Article  CAS  PubMed  Google Scholar 

  • Wassef M, Simons J, Tappaz ML, Sotelo C (1986) Non-Purkinje cell GABAergic innervation of the deep cerebellar nuclei: A quantitative immunocytochemical study in C57BL and in Purkinje cell degeneration mutant mice. Brain Res 399:125–135

    Google Scholar 

  • Yuasa S, Kawamura K, Ono K, Yamakuni T, Takahashi Y (1991) Development and migration of Purkinje cells in the mouse cerebellar primordium. Anat Embryol 184:195–212

    Google Scholar 

Download references

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Triarhou, L.C., Low, W.C. & Ghetti, B. Intraparenchymal grafting of cerebellar cell suspensions to the deep cerebellar nuclei of pcd mutant mice, with particular emphasis on re-establishment of a Purkinje cell cortico-nuclear projection. Anat Embryol 185, 409–420 (1992). https://doi.org/10.1007/BF00174079

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