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金鱼视网膜顶盖压缩投射中突触数量的靶向调控。

Target regulation of synaptic number in the compressed retinotectal projection of goldfish.

作者信息

Murray M, Sharma S, Edwards M A

出版信息

J Comp Neurol. 1982 Aug 20;209(4):374-85. doi: 10.1002/cne.902090407.

DOI:10.1002/cne.902090407
PMID:7130464
Abstract

In order to determine the morphological consequences of the formation of a compressed retinotectal projection, the optic neuropil lamina (stratum fibrosum et griseum superficialis, SFGS) was examined in large goldfish 3 months to 4 years after ablation of the caudal half of the tectum both with crush of the optic nerve (HTX) without (HT). In semithin sections, the SFGS, as delineated with orthograde HRP labeling, shows a persistent hypertrophy of about 25% in HTX and HT groups. Comparison of ultrastructural stereological data with similar data on control and regenerated projections to intact tecta (Murray and Edwards, '82) indicated that this hypertrophy can be attributed largely to an increased number of axons and not to increases in terminal or dendritic compartments. A normal number of synaptic terminals per column through SFGS is conserved in HTX and HT groups. Planimetric analysis and observations using orthograde HRP labeling reveal no group differences in size and shape of terminal profiles. The same number of retinal ganglion cells project to a half-tectum as to an intact tectum, as indicated by estimates of ganglion cell number and of the minimum percentage of them which project to the tectum using retrograde HRP labeling. The results suggest that the regenerating and sprouting optic axons participating in the formation of a compressed retinotopic projection compete for a limited accommodation inthe SFGS and that this capacity to accept synaptic input becomes saturated at the control innervation density. The results are consistent with the formation of a smaller than normal number of terminals per optic axon, numerical estimates for which are given. If the percentage of terminals which are optic does not change, then the number of terminals per axon is reduced by about 40%.

摘要

为了确定形成压缩视网膜 - 顶盖投射的形态学后果,在切除顶盖后半部3个月至4年的大型金鱼中,对视神经纤维层(浅纤维灰质层,SFGS)进行了检查,实验分为视神经挤压组(HTX)和未挤压组(HT)。在半薄切片中,用顺行HRP标记描绘的SFGS在HTX组和HT组中显示出约25%的持续肥大。将超微结构立体学数据与对照及完整顶盖再生投射的类似数据(Murray和Edwards,1982年)进行比较表明,这种肥大主要归因于轴突数量的增加,而非终末或树突部分的增加。HTX组和HT组中,穿过SFGS的每列突触终末数量正常。平面分析以及使用顺行HRP标记的观察结果显示,终末轮廓的大小和形状在两组之间没有差异。用逆行HRP标记估计神经节细胞数量以及投射到顶盖的神经节细胞的最小百分比表明,投射到半顶盖的视网膜神经节细胞数量与投射到完整顶盖的数量相同。结果表明,参与形成压缩视网膜拓扑投射的再生和出芽视神经轴突在SFGS中争夺有限的空间,并且这种接受突触输入的能力在对照神经支配密度时达到饱和。结果与每条视神经轴突形成的终末数量少于正常数量一致,并给出了数值估计。如果视神经终末的百分比不变,那么每条轴突的终末数量减少约40%。

相似文献

1
Target regulation of synaptic number in the compressed retinotectal projection of goldfish.金鱼视网膜顶盖压缩投射中突触数量的靶向调控。
J Comp Neurol. 1982 Aug 20;209(4):374-85. doi: 10.1002/cne.902090407.
2
A quantitative study of the reinnervation of the goldfish optic tectum following optic nerve crush.视神经挤压后金鱼视顶盖再支配的定量研究。
J Comp Neurol. 1982 Aug 20;209(4):363-73. doi: 10.1002/cne.902090406.
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Laminar histochemical and cytochemical localization of cytochrome oxidase in the goldfish retina and optic tectum in response to deafferentation and during regeneration.金鱼视网膜和视顶盖中细胞色素氧化酶的层状组织化学和细胞化学定位:对传入神经切断和再生的反应
J Comp Neurol. 1988 Dec 22;278(4):521-42. doi: 10.1002/cne.902780405.
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Normal and regenerating optic fibers in goldfish tectum: HRP-EM evidence for rapid synaptogenesis and optic fiber-fiber affinity.金鱼视顶盖中正常和再生的视神经纤维:HRP-EM 证明快速突触形成及视神经纤维-纤维亲和性
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Optic axons ignore foreign denervated sites in goldfish tectum even after removal of some of their normal termination sites.即使去除了金鱼视顶盖中一些正常的终止位点,视神经轴突仍会忽略外来的去神经支配位点。
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Topography of regenerating optic fibers in goldfish traced with local wheat germ injections into retina: evidence for discontinuous microtopography in the retinotectal projection.通过向金鱼视网膜局部注射小麦胚芽追踪再生视神经纤维的拓扑结构:视网膜顶盖投射中不连续微拓扑结构的证据。
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Staining of regenerated optic arbors in goldfish tectum: progressive changes in immature arbors and a comparison of mature regenerated arbors with normal arbors.金鱼视顶盖中再生视轴突的染色:未成熟轴突的渐进性变化以及成熟再生轴突与正常轴突的比较
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Optic axons ignore denervated foreign territory in goldfish tectum.金鱼视顶盖中视神经轴突会忽略去神经支配的外来区域。
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Rules for retinotectal terminal arborizations in the goldfish optic tectum: a whole-mount study.金鱼视顶盖中视网膜-顶盖终末分支的规则:整装片研究
J Comp Neurol. 1984 Oct 20;229(2):214-32. doi: 10.1002/cne.902290207.

引用本文的文献

1
Growth dynamics and morphology of regenerating optic fibers in tectum are altered by injury conditions: an in vivo imaging study in goldfish.损伤条件改变金鱼视顶盖中再生视神经纤维的生长动力学和形态:一项体内成像研究
Exp Neurol. 2008 Apr;210(2):592-601. doi: 10.1016/j.expneurol.2007.12.006. Epub 2007 Dec 23.
2
Eye-specific segregation of optic afferents in mammals, fish, and frogs: the role of activity.哺乳动物、鱼类和青蛙中视神经传入纤维的眼特异性分离:活动的作用。
Cell Mol Neurobiol. 1985 Jun;5(1-2):5-34. doi: 10.1007/BF00711083.
3
Impaired refinement of the regenerated retinotectal projection of the goldfish in stroboscopic light: a quantitative WGA-HRP study.
频闪光照下金鱼再生视网膜-顶盖投射的精细度受损:一项定量WGA-HRP研究
Exp Brain Res. 1986;63(2):421-30. doi: 10.1007/BF00236861.
4
Formation of retinotopic connections: selective stabilization by an activity-dependent mechanism.视网膜拓扑连接的形成:通过一种活动依赖机制进行选择性稳定。
Cell Mol Neurobiol. 1985 Jun;5(1-2):65-84. doi: 10.1007/BF00711086.
5
Retinal ganglion cell death during regeneration of the frog optic nerve is not accompanied by appreciable cell loss from the inner nuclear layer.青蛙视神经再生过程中视网膜神经节细胞死亡,而内核层并未出现明显的细胞丢失。
Anat Embryol (Berl). 1990;182(5):487-92. doi: 10.1007/BF00178914.