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Guidance of peripheral pioneer neurons in the grasshopper: adhesive hierarchy of epithelial and neuronal surfaces.外周先驱神经元在蝗虫中的指导作用:上皮和神经元表面的黏附层次结构。
Science. 1984 Feb 3;223(4635):493-6. doi: 10.1126/science.223.4635.493.
2
Polyornithine-attached neurite-promoting factors (PNPFs). Culture sources and responsive neurons.聚鸟氨酸附着的神经突促进因子(PNPFs)。培养来源及反应性神经元。
Brain Res. 1981 Feb 9;206(1):129-44. doi: 10.1016/0006-8993(81)90105-0.
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Lateral diffusion of surface molecules in animal cells and tissues.动物细胞和组织中表面分子的侧向扩散。
Science. 1981 Aug 21;213(4510):903-5. doi: 10.1126/science.7196087.
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Purification and cytochemical identification of neuronal and non-neuronal cells in chick embryo retina cultures.鸡胚视网膜培养物中神经元和非神经元细胞的纯化及细胞化学鉴定
Dev Neurosci. 1982;5(1):27-39. doi: 10.1159/000112659.
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Binding properties of a cell adhesion molecule from neural tissue.一种来自神经组织的细胞黏附分子的结合特性。
Proc Natl Acad Sci U S A. 1982 Jan;79(2):685-9. doi: 10.1073/pnas.79.2.685.
6
Differential regulation of muscarinic and nicotinic receptors by cholinergic stimulation in cultured avian retina cells.胆碱能刺激对培养的鸡视网膜细胞中毒蕈碱受体和烟碱受体的差异调节
Brain Res. 1983 Feb 28;262(1):99-108. doi: 10.1016/0006-8993(83)90473-0.
7
Alteration of the retinotectal map in Xenopus by antibodies to neural cell adhesion molecules.用抗神经细胞黏附分子抗体改变非洲爪蟾的视网膜顶盖图谱。
Proc Natl Acad Sci U S A. 1984 Jul;81(13):4222-6. doi: 10.1073/pnas.81.13.4222.
8
Studies on extracellular matrix components that promote neurite outgrowth.关于促进神经突生长的细胞外基质成分的研究。
Cold Spring Harb Symp Quant Biol. 1983;48 Pt 2:611-23. doi: 10.1101/sqb.1983.048.01.065.
9
Navigational substrates for peripheral pioneer growth cones: limb-axis polarity cues, limb-segment boundaries, and guidepost neurons.外周先驱生长锥的导航底物:肢体轴极性线索、肢体节段边界和路标神经元。
Cold Spring Harb Symp Quant Biol. 1983;48 Pt 2:573-85. doi: 10.1101/sqb.1983.048.01.062.
10
Structure and modulation of neural cell adhesion molecules in early and late embryogenesis.神经细胞粘附分子在胚胎发育早期和晚期的结构与调节
Cold Spring Harb Symp Quant Biol. 1983;48 Pt 2:515-26. doi: 10.1101/sqb.1983.048.01.056.

生长锥黏附的分子基础:含黏附子细丝在黏附位点的锚定。

Molecular basis of growth cone adhesion: anchoring of adheron-containing filaments at adhesive loci.

作者信息

Tsui H C, Schubert D, Klein W L

机构信息

Department of Anatomy and Neurobiology, Washington University, St. Louis, Missouri 63110.

出版信息

J Cell Biol. 1988 Jun;106(6):2095-108. doi: 10.1083/jcb.106.6.2095.

DOI:10.1083/jcb.106.6.2095
PMID:3384855
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2115151/
Abstract

Adhesive contacts made by filopodia of neuronal growth cones are essential for proper neurite elongation and may have a role in the formation of synaptic junctions. Previously we described the appearance of filamentous materials extending from growth cone surfaces that seem to be associated with the strongly adhesive behavior of filopodia (Tsui, H.-C., K. L. Lankford, and W. L. Klein. 1985. Proc. Natl. Acad. Sci. USA. 82:8256-8260). Here, we have used immunogold labeling to determine whether known adhesive molecules might be localized at points of adhesion and possibly be constituents of the filamentous material. Antibodies to an adhesive molecule (neural cell adhesion molecule [N-CAM]) and to an adhesive macromolecular complex of proteins and proteoglycans (adheron) were localized at the EM level in whole mounts of cultured avian retina cells. Labeling of fixed cells showed that N-CAM and adheron molecules were both present on growth cones and on filopodia. However, filamentous materials extending from the cell surface were labeled with anti-adheron but not with anti-N-CAM. If cells were labeled before fixation, patches of anti-N-CAM labeling occurred in random areas over the growth cones, but adheron antibodies concentrated at points of apparent adhesion. Particularly dense clustering of anti-adheron occurred at individual filopodial tips and at points of contact between pairs of filopodia. The different patterns of labeling imply that N-CAMS do not associate with the main antigenic components of adheron on the membrane surface. Most importantly, the data indicate the N-CAMs were mobile in the membrane but that constituents of adherons were anchored at adhesive loci. An appealing hypothesis is that molecules found in adheron preparations have an important role in establishing the adhesive junctions formed by growth cone filopodia.

摘要

由神经元生长锥丝状伪足形成的黏附接触对于神经突的正常伸长至关重要,并且可能在突触连接的形成中发挥作用。此前我们描述了从生长锥表面延伸出的丝状物质的外观,这些物质似乎与丝状伪足的强黏附行为有关(Tsui, H.-C., K. L. Lankford, and W. L. Klein. 1985. Proc. Natl. Acad. Sci. USA. 82:8256-8260)。在此,我们使用免疫金标记来确定已知的黏附分子是否可能定位于黏附点,并且可能是丝状物质的组成成分。针对一种黏附分子(神经细胞黏附分子[N-CAM])以及一种由蛋白质和蛋白聚糖组成的黏附大分子复合物(黏附素)的抗体,在培养的鸡视网膜细胞整装标本的电子显微镜水平上进行了定位。对固定细胞的标记显示,N-CAM和黏附素分子都存在于生长锥和丝状伪足上。然而,从细胞表面延伸出的丝状物质用抗黏附素抗体标记,但未用抗N-CAM抗体标记。如果在固定前对细胞进行标记,抗N-CAM标记的斑块出现在生长锥上的随机区域,但黏附素抗体集中在明显的黏附点。抗黏附素的特别密集聚集出现在单个丝状伪足尖端以及成对丝状伪足之间的接触点。不同的标记模式表明,N-CAM不与膜表面黏附素的主要抗原成分相关联。最重要的是,数据表明N-CAM在膜中是可移动的,但黏附素的成分锚定在黏附位点。一个引人注目的假设是,在黏附素制剂中发现的分子在建立由生长锥丝状伪足形成的黏附连接中起重要作用。