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本文引用的文献

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A pharmacological chaperone improves memory by reducing Aβ and tau neuropathology in a mouse model with plaques and tangles.一种药理学伴侣通过减少斑块和缠结小鼠模型中的 Aβ 和 tau 神经病理学来改善记忆。
Mol Neurodegener. 2020 Jan 22;15(1):1. doi: 10.1186/s13024-019-0350-4.
2
Clinical and Neuropathological Features Associated With Loss of RAB39B.与 RAB39B 缺失相关的临床和神经病理学特征。
Mov Disord. 2020 Apr;35(4):687-693. doi: 10.1002/mds.27951. Epub 2020 Jan 17.
3
Coupling of terminal differentiation deficit with neurodegenerative pathology in Vps35-deficient pyramidal neurons.Vps35 缺陷型锥体神经元中端分化缺陷与神经退行性病理的偶联。
Cell Death Differ. 2020 Jul;27(7):2099-2116. doi: 10.1038/s41418-019-0487-2. Epub 2020 Jan 6.
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The many functions of ESCRTs.ESCRTs 的多种功能。
Nat Rev Mol Cell Biol. 2020 Jan;21(1):25-42. doi: 10.1038/s41580-019-0177-4. Epub 2019 Nov 8.
5
Identification of novel risk loci, causal insights, and heritable risk for Parkinson's disease: a meta-analysis of genome-wide association studies.帕金森病的新风险基因座鉴定、因果关系洞察和遗传风险:全基因组关联研究的荟萃分析。
Lancet Neurol. 2019 Dec;18(12):1091-1102. doi: 10.1016/S1474-4422(19)30320-5.
6
Genetic, Structural, and Functional Evidence Link TMEM175 to Synucleinopathies.遗传、结构和功能证据将 TMEM175 与突触核蛋白病联系起来。
Ann Neurol. 2020 Jan;87(1):139-153. doi: 10.1002/ana.25629. Epub 2019 Nov 18.
7
Membrane association but not identity is required for LRRK2 activation and phosphorylation of Rab GTPases.LRRK2 的膜结合而非身份对于其激活和 Rab GTPases 的磷酸化是必需的。
J Cell Biol. 2019 Dec 2;218(12):4157-4170. doi: 10.1083/jcb.201902184. Epub 2019 Oct 17.
8
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9
The genetic architecture of Parkinson's disease.帕金森病的遗传结构。
Lancet Neurol. 2020 Feb;19(2):170-178. doi: 10.1016/S1474-4422(19)30287-X. Epub 2019 Sep 11.
10
RAB8, RAB10 and RILPL1 contribute to both LRRK2 kinase-mediated centrosomal cohesion and ciliogenesis deficits.RAB8、RAB10 和 RILPL1 均有助于 LRRK2 激酶介导的中心体黏附和纤毛发生缺陷。
Hum Mol Genet. 2019 Nov 1;28(21):3552-3568. doi: 10.1093/hmg/ddz201.

帕金森病发病机制中的内体分选途径。

Endosomal sorting pathways in the pathogenesis of Parkinson's disease.

机构信息

Van Andel Institute Graduate School, Grand Rapids, MI, United States; Center for Neurodegenerative Science, Van Andel Institute, Grand Rapids, MI, United States.

Center for Neurodegenerative Science, Van Andel Institute, Grand Rapids, MI, United States.

出版信息

Prog Brain Res. 2020;252:271-306. doi: 10.1016/bs.pbr.2020.02.001. Epub 2020 Mar 16.

DOI:10.1016/bs.pbr.2020.02.001
PMID:32247367
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7206894/
Abstract

The identification of Parkinson's disease (PD)-associated genes has created a powerful platform to begin to understand and nominate pathophysiological disease mechanisms. Herein, we discuss the genetic and experimental evidence supporting endolysosomal dysfunction as a major pathway implicated in PD. Well-studied familial PD-linked gene products, including LRRK2, VPS35, and α-synuclein, demonstrate how disruption of different aspects of endolysosomal sorting pathways by disease-causing mutations may manifest into PD-like phenotypes in many disease models. Newly-identified PD-linked genes, including auxilin, synaptojanin-1 and Rab39b, as well as putative risk genes for idiopathic PD (endophilinA1, Rab29, GAK), further support endosomal sorting deficits as being central to PD. LRRK2 may represent a nexus by regulating many distinct features of endosomal sorting, potentially via phosphorylation of key endocytosis machinery (i.e., auxilin, synaptojanin-1, endoA1) and Rab GTPases (i.e., Rab29, Rab8A, Rab10) that function within these pathways. In turn, LRRK2 kinase activity is critically regulated by Rab29 at the Golgi complex and retromer-associated VPS35 at endosomes. Taken together, the known functions of PD-associated gene products, the impact of disease-linked mutations, and the emerging functional interactions between these proteins points to endosomal sorting pathways as a key point of convergence in the pathogenesis of PD.

摘要

帕金森病(PD)相关基因的鉴定为我们开始理解和提名病理生理学疾病机制提供了一个强大的平台。在此,我们讨论了支持内体溶酶体功能障碍作为 PD 中涉及的主要途径的遗传和实验证据。经过充分研究的家族性 PD 相关基因产物,包括 LRRK2、VPS35 和 α-突触核蛋白,表明疾病相关突变如何破坏内体分选途径的不同方面,可能导致许多疾病模型中出现类似 PD 的表型。新发现的 PD 相关基因,包括辅助蛋白、突触结合蛋白-1 和 Rab39b,以及特发性 PD 的假定风险基因(内收蛋白 A1、Rab29、GAK),进一步支持内体分选缺陷是 PD 的核心。LRRK2 可能通过调节内体分选的许多不同特征来代表一个枢纽,这可能是通过磷酸化关键的胞吞机制(例如辅助蛋白、突触结合蛋白-1、内收蛋白 A1)和 Rab GTPases(例如 Rab29、Rab8A、Rab10)来实现的,这些机制在这些途径中发挥作用。反过来,LRRK2 激酶活性在高尔基复合体处受到 Rab29 和内体处的 retromer 相关 VPS35 的严格调节。总之,PD 相关基因产物的已知功能、疾病相关突变的影响以及这些蛋白之间新出现的功能相互作用表明,内体分选途径是 PD 发病机制中的一个关键汇聚点。