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在亚历山大病小鼠模型中,胶质纤维酸性蛋白的周转动力学发生改变。

Glial fibrillary acidic protein exhibits altered turnover kinetics in a mouse model of Alexander disease.

作者信息

Moody Laura R, Barrett-Wilt Gregory A, Sussman Michael R, Messing Albee

机构信息

From the Waisman Center.

the Biotechnology Center, and.

出版信息

J Biol Chem. 2017 Apr 7;292(14):5814-5824. doi: 10.1074/jbc.M116.772020. Epub 2017 Feb 21.

DOI:10.1074/jbc.M116.772020
PMID:28223355
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5392575/
Abstract

Mutations in the astrocyte-specific intermediate filament glial fibrillary acidic protein (GFAP) lead to the rare and fatal disorder, Alexander disease (AxD). A prominent feature of the disease is aberrant accumulation of GFAP. It has been proposed that this accumulation occurs because of an increase in gene transcription coupled with impaired proteasomal degradation, yet this hypothesis remains untested. We therefore sought to directly investigate GFAP turnover in a mouse model of AxD that is heterozygous for a disease-causing point mutation () (and thus expresses both wild-type and mutant protein). Stable isotope labeling by amino acids in cell culture, using primary cortical astrocytes, indicated that the half-lives of total GFAP in astrocytes from wild-type and mutant mice were similar at ∼3-4 days. Surprisingly, results obtained with stable isotope labeling of mammals revealed that, , the half-life of GFAP in mutant mice (15.4 ± 0.5 days) was much shorter than that in wild-type mice (27.5 ± 1.6 days). These unexpected data are most consistent with a model in which synthesis and degradation are both increased. Our work reveals that an AxD-causing mutation alters GFAP turnover kinetics and provides an essential foundation for future studies aimed at preventing or reducing the accumulation of GFAP. In particular, these data suggest that elimination of GFAP might be possible and occurs more quickly than previously surmised.

摘要

星形胶质细胞特异性中间丝胶质纤维酸性蛋白(GFAP)的突变会导致罕见的致命疾病——亚历山大病(AxD)。该疾病的一个显著特征是GFAP的异常积聚。有人提出,这种积聚是由于基因转录增加以及蛋白酶体降解受损所致,但这一假设尚未得到验证。因此,我们试图直接研究AxD小鼠模型中GFAP的周转情况,该模型对致病点突变()为杂合子(因此同时表达野生型和突变型蛋白)。使用原代皮质星形胶质细胞进行细胞培养中的氨基酸稳定同位素标记表明,野生型和突变型小鼠星形胶质细胞中总GFAP的半衰期相似,约为3 - 4天。令人惊讶的是,对哺乳动物进行稳定同位素标记获得的结果显示,,突变型小鼠中GFAP的半衰期(15.4±0.5天)比野生型小鼠(27.5±1.6天)短得多。这些意外的数据与合成和降解均增加的模型最为一致。我们的研究表明,导致AxD的突变会改变GFAP的周转动力学,并为未来旨在预防或减少GFAP积聚的研究提供了重要基础。特别是,这些数据表明消除GFAP是可能的,而且比之前推测的发生得更快。

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本文引用的文献

1
Composition of Rosenthal Fibers, the Protein Aggregate Hallmark of Alexander Disease.罗斯enthal纤维的组成,亚历山大病的蛋白质聚集体标志。
J Proteome Res. 2016 Jul 1;15(7):2265-82. doi: 10.1021/acs.jproteome.6b00316. Epub 2016 Jun 2.
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Astrocytic TDP-43 pathology in Alexander disease.星形胶质细胞 TDP-43 病理学在亚历山大病中的作用。
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Human traumatic brain injury induces autoantibody response against glial fibrillary acidic protein and its breakdown products.人类创伤性脑损伤会引发针对胶质纤维酸性蛋白及其降解产物的自身抗体反应。
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Post-translational modifications of intermediate filament proteins: mechanisms and functions.中间丝蛋白的翻译后修饰:机制与功能。
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Caspase cleavage of GFAP produces an assembly-compromised proteolytic fragment that promotes filament aggregation.半胱天冬酶对 GFAP 的切割产生了一个组装受损的蛋白水解片段,促进了丝聚集。
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GFAP expression as an indicator of disease severity in mouse models of Alexander disease.胶质纤维酸性蛋白表达作为亚历山大病小鼠模型疾病严重程度的指标。
ASN Neuro. 2013;5(1):e00109. doi: 10.1042/AN20130003.
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Bioactive 3D cell culture system minimizes cellular stress and maintains the in vivo-like morphological complexity of astroglial cells.三维细胞培养系统具有生物活性,可最大程度减少细胞应激,保持星形胶质细胞类似体内的形态复杂性。
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Beneficial effects of Nrf2 overexpression in a mouse model of Alexander disease.Nrf2 过表达对亚历山大病小鼠模型的有益作用。
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A data processing pipeline for mammalian proteome dynamics studies using stable isotope metabolic labeling.使用稳定同位素代谢标记进行哺乳动物蛋白质组动态研究的数据处理管道。
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