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1
Antibody decoration of neurofilaments.神经丝的抗体标记
J Cell Biol. 1981 May;89(2):198-205. doi: 10.1083/jcb.89.2.198.
2
Organization of mammalian neurofilament polypeptides within the neuronal cytoskeleton.哺乳动物神经丝多肽在神经元细胞骨架内的组织方式。
J Cell Biol. 1984 Apr;98(4):1523-36. doi: 10.1083/jcb.98.4.1523.
3
Association of an axonally transported polypeptide (H) with 100-A filaments. Use of immunoaffinity electron microscope grids.一种轴突运输多肽(H)与100埃细丝的关联。免疫亲和电子显微镜网格的应用。
J Cell Biol. 1980 Jun;85(3):587-96. doi: 10.1083/jcb.85.3.587.
4
Immunohistochemical differences between neurofilaments in perikarya, dendrites and axons. Immunofluorescence study with antisera raised to neurofilament polypeptides (200K, 150K, 70K) isolated by anion exchange chromatography.神经元胞体、树突和轴突中神经丝的免疫组化差异。用针对通过阴离子交换色谱法分离的神经丝多肽(200K、150K、70K)制备的抗血清进行免疫荧光研究。
Exp Cell Res. 1983 Dec;149(2):397-408. doi: 10.1016/0014-4827(83)90352-x.
5
Assessment of immunological properties of neurofilament triplet proteins.神经丝三联体蛋白免疫特性评估
Brain Res. 1981 Dec 7;226(1-2):259-72. doi: 10.1016/0006-8993(81)91098-2.
6
Immunological and ultrastructural studies of neurofilaments isolated from rat peripheral nerve.对从大鼠外周神经分离出的神经丝进行的免疫学和超微结构研究。
J Cell Biol. 1977 Jul;74(1):226-40. doi: 10.1083/jcb.74.1.226.
7
Neurofilaments from ox spinal nerves. Isolation, disassembly, reassembly and cross-linking properties.来自牛脊髓神经的神经丝。分离、拆卸、重新组装及交联特性。
Biochem J. 1983 Nov 1;215(2):227-37. doi: 10.1042/bj2150227.
8
Multiple phosphorylated variants of the high molecular mass subunit of neurofilaments in axons of retinal cell neurons: characterization and evidence for their differential association with stationary and moving neurofilaments.视网膜细胞神经元轴突中神经丝高分子量亚基的多种磷酸化变体:其与静止和移动神经丝差异关联的表征及证据
J Cell Biol. 1988 Dec;107(6 Pt 2):2689-701. doi: 10.1083/jcb.107.6.2689.
9
Microtubule-associated proteins connect microtubules and neurofilaments in vitro.微管相关蛋白在体外连接微管和神经丝。
Biochemistry. 1984 Dec 4;23(25):6023-31. doi: 10.1021/bi00320a019.
10
Separation of neurofilaments from ATPase activity by precipitation with anti-neurofilament antibodies.通过用抗神经丝抗体沉淀法将神经丝与ATP酶活性分离。
J Neurochem. 1982 Jun;38(6):1774-6. doi: 10.1111/j.1471-4159.1982.tb06663.x.

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Mol Biol Cell. 2024 May 1;35(5):re1. doi: 10.1091/mbc.E23-11-0438. Epub 2024 Apr 10.
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Neurofilaments and Neurofilament Proteins in Health and Disease.健康与疾病中的神经丝及神经丝蛋白
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3
Effect of melatonin and melatonylvalpromide on beta-amyloid and neurofilaments in N2a cells.褪黑素和褪黑素基丙戊酰胺对N2a细胞中β-淀粉样蛋白和神经丝的影响。
Neurochem Res. 2008 Jun;33(6):1138-44. doi: 10.1007/s11064-007-9563-y. Epub 2008 Jan 31.
4
Protein-chemical characterization of NF-H, the largest mammalian neurofilament component; intermediate filament-type sequences followed by a unique carboxy-terminal extension.NF-H,即最大的哺乳动物神经丝成分的蛋白化学特性;中间丝型序列,其后是独特的羧基末端延伸。
EMBO J. 1985 Jan;4(1):57-63. doi: 10.1002/j.1460-2075.1985.tb02317.x.
5
The neurofilament middle molecular mass subunit carboxyl-terminal tail domains is essential for the radial growth and cytoskeletal architecture of axons but not for regulating neurofilament transport rate.神经丝中分子质量亚基的羧基末端尾部结构域对于轴突的径向生长和细胞骨架结构至关重要,但对于调节神经丝运输速率并非如此。
J Cell Biol. 2003 Dec 8;163(5):1021-31. doi: 10.1083/jcb.200308076.
6
Relating interactions between neurofilaments to the structure of axonal neurofilament distributions through polymer brush models.通过聚合物刷模型将神经丝之间的相互作用与轴突神经丝分布的结构联系起来。
Biophys J. 2002 May;82(5):2360-72. doi: 10.1016/S0006-3495(02)75581-1.
7
Neurofilament architecture combines structural principles of intermediate filaments with carboxy-terminal extensions increasing in size between triplet proteins.神经丝结构将中间丝的结构原理与三联体蛋白之间大小不断增加的羧基末端延伸相结合。
EMBO J. 1983;2(8):1295-302. doi: 10.1002/j.1460-2075.1983.tb01584.x.
8
Regulation of neurofilament interactions in vitro by natural and synthetic polypeptides sharing Lys-Ser-Pro sequences with the heavy neurofilament subunit NF-H: neurofilament crossbridging by antiparallel sidearm overlapping.天然和合成的与重神经丝亚基NF-H共享赖氨酸-丝氨酸-脯氨酸序列的多肽对体外神经丝相互作用的调节:通过反平行侧臂重叠实现神经丝交联
Med Biol Eng Comput. 1998 May;36(3):371-87. doi: 10.1007/BF02522486.
9
Neurofilament and intermediate filament immunoreactivity in human intestinal myenteric neurons.人肠道肌间神经元中的神经丝和中间丝免疫反应性
Dig Dis Sci. 1997 Sep;42(9):1926-32. doi: 10.1023/a:1018871428831.
10
Modulation of phosphorylation of neuronal cytoskeletal proteins by neuronal depolarization.神经元去极化对神经元细胞骨架蛋白磷酸化的调节作用。
Cell Mol Neurobiol. 1997 Feb;17(1):129-40. doi: 10.1023/a:1026337322916.

本文引用的文献

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The cleavage of rabbit gamma-globulin by papain.木瓜蛋白酶对兔γ球蛋白的裂解作用。
J Biol Chem. 1962 Mar;237:717-26.
2
THE POLYPEPTIDE CHAINS OF RABBIT GAMMA-GLOBULIN AND ITS PAPAIN-CLEAVED FRAGMENTS.兔γ球蛋白的多肽链及其木瓜蛋白酶裂解片段
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Antibodies to neurofilament, glial filament, and fibroblast intermediate filament proteins bind to different cell types of the nervous system.针对神经丝、胶质丝和成纤维细胞中间丝蛋白的抗体与神经系统的不同细胞类型结合。
J Cell Biol. 1981 Jan;88(1):115-26. doi: 10.1083/jcb.88.1.115.
4
Studies on the biosynthesis of neurofilament proteins.神经丝蛋白的生物合成研究。
J Cell Biol. 1980 Jun;85(3):726-34. doi: 10.1083/jcb.85.3.726.
5
Association of an axonally transported polypeptide (H) with 100-A filaments. Use of immunoaffinity electron microscope grids.一种轴突运输多肽(H)与100埃细丝的关联。免疫亲和电子显微镜网格的应用。
J Cell Biol. 1980 Jun;85(3):587-96. doi: 10.1083/jcb.85.3.587.
6
Determination of gene product positions in bacteriophage T4 by specific antibody association.通过特异性抗体结合确定噬菌体T4中基因产物的位置
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Fast transport of materials in mammalian nerve fibers.哺乳动物神经纤维中物质的快速运输。
Science. 1972 Apr 21;176(4032):252-60. doi: 10.1126/science.176.4032.252.
8
Electron microscope and experimental investigations of the neurofilamentous network in Deiters' neurons. Relationship with the cell surface and nuclear pores.德伊特氏神经元中神经丝网络的电子显微镜及实验研究。与细胞表面和核孔的关系。
J Cell Biol. 1974 Jun;61(3):701-22. doi: 10.1083/jcb.61.3.701.
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Topics in the methodology of substitution reactions with agarose.琼脂糖取代反应方法学中的主题。
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10
Electron microscopy of an antibody-hapten complex.抗体-半抗原复合物的电子显微镜检查。
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神经丝的抗体标记

Antibody decoration of neurofilaments.

作者信息

Willard M, Simon C

出版信息

J Cell Biol. 1981 May;89(2):198-205. doi: 10.1083/jcb.89.2.198.

DOI:10.1083/jcb.89.2.198
PMID:6788775
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2111683/
Abstract

We have decorated neurofilaments with antibodies against three polypeptides (designated here as H [mol wt = 195,000], 45[mol wt = 145,000], and 46[mol wt = 73,000]) in an effort to understand the arrangement of these polypeptides within neurofilaments. The three polypeptides were purified and antibodies were raised against each. The cross-reactivity of the antibodies suggested that each polypeptide contains both shared and unique antigenic determinants. The differential reactivities of each antibody preparation were enhanced by adsorption with the two heterologous polypeptides, and the resulting preparations were used to decorate purified neurofilaments, which were then negatively stained and examined in an electron microscope. The appearance of the antibody-decorated structures led to the following conclusions: All three polypeptides are physically associated with the same neurofilament. However, the disposition of H and 46 within a filament is different; 46 antigens appear to be associated with a "central core" of the filament, whereas H antigens compose a structure more loosely and peripherally attached to the central core and periodically arranged along its axis. The antibody-decorated H-containing structure assumes variable configurations; in some cases it appears asa bridge connecting two filaments; in other cases it appears as a helix wrapping the central core with a period of approximately 1,000 A and an apparent unit length of approximately 1.5 periods. These configurations suggest several functional implications, including the possibility that H is a component of the cross-bridges observed between filaments in situ. We also note that the central core-helix relationship could be used in the design of an intracellular transport motor.

摘要

我们用针对三种多肽(此处分别命名为H[分子量 = 195,000]、45[分子量 = 145,000]和46[分子量 = 73,000])的抗体对神经丝进行了标记,以了解这些多肽在神经丝中的排列方式。这三种多肽被纯化后,分别制备了针对它们的抗体。抗体的交叉反应表明,每种多肽都含有共同的和独特的抗原决定簇。通过用两种异源多肽吸附,增强了每种抗体制剂的差异反应性,然后将所得制剂用于标记纯化的神经丝,接着对其进行负染色并在电子显微镜下观察。抗体标记结构的外观得出了以下结论:所有三种多肽在物理上都与同一神经丝相关联。然而,H和46在细丝中的分布不同;46抗原似乎与细丝的“中央核心”相关联,而H抗原构成的结构更松散且在周边附着于中央核心,并沿其轴周期性排列。抗体标记的含H结构呈现出可变的构型;在某些情况下,它表现为连接两条细丝的桥;在其他情况下,它表现为以大约1000埃的周期和大约1.5个周期的表观单位长度缠绕中央核心的螺旋。这些构型暗示了几种功能含义,包括H可能是原位观察到的细丝间横桥的一个组成部分。我们还注意到,中央核心 - 螺旋关系可用于设计细胞内运输马达。