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1
Intracellular control of axial shape in non-uniform neurites: a serial electron microscopic analysis of organelles and microtubules in AI and AII retinal amacrine neurites.非均匀神经突中轴形状的细胞内控制:对AI和AII视网膜无长突神经突中细胞器和微管的系列电子显微镜分析
J Cell Biol. 1984 Apr;98(4):1279-90. doi: 10.1083/jcb.98.4.1279.
2
Experimental modification of PC12 neurite shape with the microtubule-depolymerizing drug Nocodazole: a serial electron microscopic study of neurite shape control.用微管解聚药物诺考达唑对PC12神经突形状进行实验性改变:神经突形状控制的系列电子显微镜研究
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3
The cytoskeleton of neurites after microtubule depolymerization.微管解聚后神经突的细胞骨架。
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Serial reconstruction of microtubular arrays within dendrites of the cat retinal ganglion cell: the cytoskeleton of a vertebrate dendrite.猫视网膜神经节细胞树突内微管阵列的连续重建:脊椎动物树突的细胞骨架
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Cytoplasmic structure in rapid-frozen axons.快速冷冻轴突中的细胞质结构。
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6
Changes in the organization of the neuritic cytoskeleton during nerve growth factor-activated differentiation of PC12 cells: a serial electron microscopic study of the development and control of neurite shape.神经生长因子激活PC12细胞分化过程中神经突细胞骨架组织的变化:神经突形态发育与调控的系列电子显微镜研究
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7
Irregular geometries in normal unmyelinated axons: a 3D serial EM analysis.正常无髓鞘轴突中的不规则几何形状:三维连续电子显微镜分析
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8
Evidence for self-absorption of terminals by developing axons of retinal ganglion cells in the chick.鸡视网膜神经节细胞发育中的轴突对终末的自我吸收证据。
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Three-dimensional fine structure of the organization of microtubules in neurite varicosities by ultra-high voltage electron microscope tomography.超高电压电子显微镜断层扫描技术研究神经突膨体中微管的三维精细结构。
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10
Polarized compartmentalization of organelles in growth cones from developing optic tectum.发育中的视顶盖生长锥中细胞器的极化区室化。
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AII amacrine cells: quantitative reconstruction and morphometric analysis of electrophysiologically identified cells in live rat retinal slices imaged with multi-photon excitation microscopy.所有无长突细胞:对用多光子激发显微镜成像的活大鼠视网膜切片中经电生理鉴定的细胞进行定量重建和形态计量分析。
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7
Phosphorylation on carboxyl terminus domains of neurofilament proteins in retinal ganglion cell neurons in vivo: influences on regional neurofilament accumulation, interneurofilament spacing, and axon caliber.体内视网膜神经节细胞神经元中神经丝蛋白羧基末端结构域的磷酸化:对区域神经丝积累、神经丝间距和轴突管径的影响。
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8
Experimental modification of PC12 neurite shape with the microtubule-depolymerizing drug Nocodazole: a serial electron microscopic study of neurite shape control.用微管解聚药物诺考达唑对PC12神经突形状进行实验性改变:神经突形状控制的系列电子显微镜研究
J Cell Biol. 1986 Sep;103(3):907-15. doi: 10.1083/jcb.103.3.907.
9
Changes in the organization of the neuritic cytoskeleton during nerve growth factor-activated differentiation of PC12 cells: a serial electron microscopic study of the development and control of neurite shape.神经生长因子激活PC12细胞分化过程中神经突细胞骨架组织的变化:神经突形态发育与调控的系列电子显微镜研究
J Cell Biol. 1986 Sep;103(3):895-906. doi: 10.1083/jcb.103.3.895.
10
Comparison of the effects of microtubule-associated protein 2 and tau on the packing density of in vitro assembled microtubules.微管相关蛋白2和tau对体外组装微管堆积密度影响的比较。
Proc Natl Acad Sci U S A. 1987 Nov;84(21):7783-7. doi: 10.1073/pnas.84.21.7783.

本文引用的文献

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Acceleration and retardation of the process of axon-sprouting in partially devervated muscles.部分去神经肌肉中轴突芽生过程的加速与延迟
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Serial reconstruction of microtubular arrays within dendrites of the cat retinal ganglion cell: the cytoskeleton of a vertebrate dendrite.猫视网膜神经节细胞树突内微管阵列的连续重建:脊椎动物树突的细胞骨架
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非均匀神经突中轴形状的细胞内控制:对AI和AII视网膜无长突神经突中细胞器和微管的系列电子显微镜分析

Intracellular control of axial shape in non-uniform neurites: a serial electron microscopic analysis of organelles and microtubules in AI and AII retinal amacrine neurites.

作者信息

Sasaki-Sherrington S E, Jacobs J R, Stevens J K

出版信息

J Cell Biol. 1984 Apr;98(4):1279-90. doi: 10.1083/jcb.98.4.1279.

DOI:10.1083/jcb.98.4.1279
PMID:6538879
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2113234/
Abstract

AI and AII cat retinal amacrine cells have highly varicose non-uniform, neuritic processes. Processes of both types were reconstructed via a computer system using serial electron micrographs. These reconstructions were analyzed for (a) varicosity volume, surface area, and length, (b) "neck" volume, surface area, and length, (c) number of microtubules within the varicosity, (d) number of microtubules within the "neck," and (e) volume and surface area of mitochondria and smooth endoplasmic reticulum and large smooth vesicular bodies within the processes. Correlation of these parameters revealed a linear relationship between the number of microtubules in the necks and mean neck cross-sectional area (rs = 0.780, P less than 0.001), while microtubule number within the varicosities showed no correlation with varicosity volume (rs = 0.239, P greater than 0.2). Varicosity volume did, however, correlate strongly with the summed volume of mitochondria and smooth vesicular bodies contained within the varicosity for both cell types examined. The ratio between membranous organelle volume and varicosity volume for AI amacrine processes of 1:6.97 (rs = 0.927), differed from the ratio of 1:1.80 for the AII amacrine processes (rs = 0.987). Similar relationships were observed in other nonvaricose neurites such as optic tract axons. Membranous organelles appear to contribute an additional obligatory volume to the cytosol that can be as much as seven times the organelles' direct volume. These observations suggest that both the cytoskeletal components, and the membrane organelles play a direct role in determining neurite shape.

摘要

AI和AII型猫视网膜无长突细胞具有高度曲张的、不均匀的神经突。通过计算机系统利用系列电子显微镜照片对这两种类型细胞的神经突进行了重建。对这些重建结果进行了以下分析:(a)曲张体的体积、表面积和长度;(b)“颈部”的体积、表面积和长度;(c)曲张体内微管的数量;(d)“颈部”内微管的数量;(e)神经突内线粒体、光滑内质网和大的光滑囊泡体的体积和表面积。这些参数的相关性显示,颈部微管数量与颈部平均横截面积之间存在线性关系(rs = 0.780,P小于0.001),而曲张体内的微管数量与曲张体体积无相关性(rs = 0.239,P大于0.2)。然而,在所研究的两种细胞类型中,曲张体体积与曲张体内所含线粒体和光滑囊泡体的总体积密切相关。AI无长突细胞神经突的膜性细胞器体积与曲张体体积之比为1:6.97(rs = 0.927),与AII无长突细胞神经突的1:1.80之比(rs = 0.987)不同。在其他非曲张神经突如视束轴突中也观察到类似的关系。膜性细胞器似乎为细胞质溶胶贡献了额外的必需体积,其大小可达细胞器直接体积的七倍之多。这些观察结果表明,细胞骨架成分和膜性细胞器在决定神经突形状方面都起着直接作用。