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1
Mouse models of myelin diseases.髓鞘疾病的小鼠模型
Brain Pathol. 1998 Oct;8(4):771-93. doi: 10.1111/j.1750-3639.1998.tb00200.x.
2
Gap junction communication in myelinating glia.有髓神经胶质细胞中的缝隙连接通讯
Biochim Biophys Acta. 2013 Jan;1828(1):69-78. doi: 10.1016/j.bbamem.2012.01.024. Epub 2012 Feb 3.
3
Pathomechanisms of mutant proteins in Charcot-Marie-Tooth disease.夏科-马里-图思病中突变蛋白的发病机制
Neuromolecular Med. 2006;8(1-2):217-42. doi: 10.1385/nmm:8:1-2:217.
4
Metabolism and functions of lipids in myelin.髓鞘中脂质的代谢与功能
Biochim Biophys Acta. 2015 Aug;1851(8):999-1005. doi: 10.1016/j.bbalip.2014.12.016. Epub 2014 Dec 24.
5
Regulation and dysregulation of axon infrastructure by myelinating glia.髓鞘形成性神经胶质细胞对轴突结构的调控与失调
J Cell Biol. 2017 Dec 4;216(12):3903-3916. doi: 10.1083/jcb.201702150. Epub 2017 Nov 7.
6
Schwann cells ER-associated degradation contributes to myelin maintenance in adult nerves and limits demyelination in CMT1B mice.施万细胞内质网相关降解有助于成年神经髓鞘的维持,并限制 CMT1B 小鼠的脱髓鞘。
PLoS Genet. 2019 Apr 17;15(4):e1008069. doi: 10.1371/journal.pgen.1008069. eCollection 2019 Apr.
7
[Protein composition and structure of the myelin sheath. Part I].[髓鞘的蛋白质组成与结构。第一部分]
Pol Merkur Lekarski. 2003 Sep;15(87):268-72.
8
Glycolytic oligodendrocytes maintain myelin and long-term axonal integrity.糖酵解性少突胶质细胞维持髓鞘和轴突的长期完整性。
Nature. 2012 Apr 29;485(7399):517-21. doi: 10.1038/nature11007.
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Systematic approaches to central nervous system myelin.中枢神经系统髓鞘的系统方法。
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Schwann Cell O-GlcNAc Glycosylation Is Required for Myelin Maintenance and Axon Integrity.雪旺细胞O-连接N-乙酰葡糖胺糖基化是髓鞘维持和轴突完整性所必需的。
J Neurosci. 2016 Sep 14;36(37):9633-46. doi: 10.1523/JNEUROSCI.1235-16.2016.

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Clemastine effects in rat models of a myelination disorder.克仑司汀对髓鞘障碍大鼠模型的作用。
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Inherited and acquired disorders of myelin: The underlying myelin pathology.髓鞘的遗传性和获得性疾病:潜在的髓鞘病理学
Exp Neurol. 2016 Sep;283(Pt B):452-75. doi: 10.1016/j.expneurol.2016.04.002. Epub 2016 Apr 9.
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Interplay between exercise and dietary fat modulates myelinogenesis in the central nervous system.运动与膳食脂肪之间的相互作用调节中枢神经系统中的髓鞘形成。
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A mutation in the canine gene encoding folliculin-interacting protein 2 (FNIP2) associated with a unique disruption in spinal cord myelination.一个与独特的脊髓髓鞘形成破坏相关的犬科基因编码滤泡素相互作用蛋白 2 (FNIP2) 的突变。
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Misalignment of PLP/DM20 transmembrane domains determines protein misfolding in Pelizaeus-Merzbacher disease.PLP/DM20 跨膜结构域的错位导致 Pelizaeus-Merzbacher 病中的蛋白质错误折叠。
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Using temporal genetic switches to synchronize the unfolded protein response in cell populations in vivo.利用时间性基因开关在体内细胞群体中同步未折叠蛋白反应。
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A mutation in the gene encoding mitochondrial Mg²+ channel MRS2 results in demyelination in the rat.编码线粒体 Mg²⁺通道 MRS2 的基因突变可导致大鼠脱髓鞘。
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10
Proteolipid protein is required for transport of sirtuin 2 into CNS myelin.转运沉默调节蛋白2至中枢神经系统髓磷脂中需要蛋白脂质蛋白。
J Neurosci. 2007 Jul 18;27(29):7717-30. doi: 10.1523/JNEUROSCI.1254-07.2007.

本文引用的文献

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MUTANT MICE (QUAKING AND JIMPY) WITH DEFICIENT MYELINATION IN THE CENTRAL NERVOUS SYSTEM.中枢神经系统髓鞘形成缺陷的突变小鼠(震颤小鼠和吉皮小鼠)
Science. 1964 Apr 17;144(3616):309-11. doi: 10.1126/science.144.3616.309.
2
Axonal swellings and degeneration in mice lacking the major proteolipid of myelin.缺乏髓鞘主要蛋白脂蛋白的小鼠的轴突肿胀和变性
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Late-onset neurodegeneration in mice with increased dosage of the proteolipid protein gene.
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Galactosphingolipids and axono-glial interaction in myelin of the central nervous system.中枢神经系统髓鞘中的半乳糖鞘脂与轴突-神经胶质细胞相互作用
Cell Tissue Res. 1998 May;292(2):199-210. doi: 10.1007/s004410051051.
5
Mutations in the early growth response 2 (EGR2) gene are associated with hereditary myelinopathies.早期生长反应2(EGR2)基因的突变与遗传性髓鞘病相关。
Nat Genet. 1998 Apr;18(4):382-4. doi: 10.1038/ng0498-382.
6
New perspectives on the function of myelin galactolipids.髓鞘半乳糖脂功能的新视角。
Trends Neurosci. 1998 Mar;21(3):126-30. doi: 10.1016/s0166-2236(97)01178-8.
7
Apoptotic glial cell death and kinetics in the spinal cord of the myelin-deficient rat.髓鞘缺乏大鼠脊髓中凋亡性神经胶质细胞死亡及其动力学
J Neurosci Res. 1998 Feb 15;51(4):497-507. doi: 10.1002/(SICI)1097-4547(19980215)51:4<497::AID-JNR9>3.0.CO;2-7.
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Charcot-Marie-Tooth disease: lessons in genetic mechanisms.夏科-马里-图斯病:遗传机制的启示
Mol Med. 1998 Jan;4(1):3-11.
9
Mouse strain backgrounds: more than black and white.小鼠品系背景:不止黑白两种。
Neuron. 1998 Feb;20(2):183. doi: 10.1016/s0896-6273(00)80447-x.
10
Myelin-associated glycoprotein is a myelin signal that modulates the caliber of myelinated axons.髓鞘相关糖蛋白是一种调节有髓轴突管径的髓鞘信号。
J Neurosci. 1998 Mar 15;18(6):1953-62. doi: 10.1523/JNEUROSCI.18-06-01953.1998.

髓鞘疾病的小鼠模型

Mouse models of myelin diseases.

作者信息

Werner H, Jung M, Klugmann M, Sereda M, Griffiths I R, Nave K A

机构信息

Zentrum für Molekulare Biologie (ZMBH), Universität Heidelberg, Germany.

出版信息

Brain Pathol. 1998 Oct;8(4):771-93. doi: 10.1111/j.1750-3639.1998.tb00200.x.

DOI:10.1111/j.1750-3639.1998.tb00200.x
PMID:9804383
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8098187/
Abstract

Dys- and demyelination are the common endpoints of several inherited diseases of glial cells, which elaborate myelin and which maintain the myelin sheath very much like an "external" cellular organelle. Whereas some of the genes that are affected by mutations appear to be glial-specific, other genes are expressed in many cell types but their defect is restricted to oligodendrocytes or Schwann cells. Many of the disease genes and their encoded proteins have been studied with the help of mouse models, and a number of different molecular pathomechanisms have emerged which have been summarized in Figure 8. Some of the new concepts in the field, which have been addressed in this review, have only emerged because similar pathomechanisms were discovered for different myelin proteins. Mouse models have clearly helped to address both, the molecular pathology of myelin diseases and the normal function of myelin genes, but as discussed in this review, these questions turned out to be very different. Despite the progress in understanding the role of the abundant myelin proteins, there also remain a number of open questions that concern, among other things, the initial axon-glia recognition, the assembly process of the myelin sheath, and the long-term interaction of axons with their myelinating glia. Finally, animal models of human neurological diseases should not be restricted to the study of pathology, but they should also contribute to the development of experimental treatments. It is encouraging that a few attempts have been made.

摘要

脱髓鞘和髓鞘形成异常是几种胶质细胞遗传性疾病的常见终末表现,这些胶质细胞形成髓鞘,并像“外部”细胞器一样维持髓鞘。虽然一些受突变影响的基因似乎是胶质细胞特异性的,但其他基因在多种细胞类型中表达,但其缺陷仅限于少突胶质细胞或施万细胞。许多疾病基因及其编码的蛋白质已借助小鼠模型进行了研究,并且出现了一些不同的分子发病机制,这些机制已总结在图8中。本综述中涉及的该领域的一些新概念之所以出现,只是因为针对不同的髓鞘蛋白发现了相似的发病机制。小鼠模型显然有助于解决髓鞘疾病的分子病理学和髓鞘基因的正常功能这两个问题,但正如本综述中所讨论的,这些问题结果大不相同。尽管在理解丰富的髓鞘蛋白的作用方面取得了进展,但仍存在一些未解决的问题,其中包括轴突与胶质细胞的初始识别、髓鞘的组装过程以及轴突与其髓鞘形成胶质细胞的长期相互作用。最后,人类神经疾病的动物模型不应局限于病理学研究,还应有助于实验性治疗的开发。已经进行了一些尝试,这令人鼓舞。