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Hyperammonemia and proteostasis in cirrhosis.肝硬化中的高血氨症和蛋白质稳态。
Curr Opin Clin Nutr Metab Care. 2018 Jan;21(1):30-36. doi: 10.1097/MCO.0000000000000426.
2
ER stress and subsequent activated calpain play a pivotal role in skeletal muscle wasting after severe burn injury.内质网应激及随后激活的钙蛋白酶在严重烧伤后的骨骼肌消耗中起关键作用。
PLoS One. 2017 Oct 13;12(10):e0186128. doi: 10.1371/journal.pone.0186128. eCollection 2017.
3
Low-intensity extracorporeal shock wave therapy promotes myogenesis through PERK/ATF4 pathway.低强度体外冲击波疗法通过 PERK/ATF4 通路促进成肌生成。
Neurourol Urodyn. 2018 Feb;37(2):699-707. doi: 10.1002/nau.23380. Epub 2017 Aug 1.
4
Ligand-induced rapid skeletal muscle atrophy in HSA-Fv2E-PERK transgenic mice.配体诱导的HSA-Fv2E-PERK转基因小鼠快速骨骼肌萎缩
PLoS One. 2017 Jun 23;12(6):e0179955. doi: 10.1371/journal.pone.0179955. eCollection 2017.
5
ER stress disturbs SR/ER-mitochondria Ca transfer: Implications in Duchenne muscular dystrophy.内质网应激扰乱肌质网/内质网钙传递:在杜氏肌营养不良症中的意义。
Biochim Biophys Acta Mol Basis Dis. 2017 Sep;1863(9):2229-2239. doi: 10.1016/j.bbadis.2017.06.009. Epub 2017 Jun 15.
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A chemical chaperone improves muscle function in mice with a RyR1 mutation.化学伴侣改善了携带 RyR1 突变的小鼠的肌肉功能。
Nat Commun. 2017 Mar 24;8:14659. doi: 10.1038/ncomms14659.
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The PERK arm of the unfolded protein response regulates satellite cell-mediated skeletal muscle regeneration.未折叠蛋白反应的PERK分支调节卫星细胞介导的骨骼肌再生。
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8
The unfolded protein response in relation to mitochondrial biogenesis in skeletal muscle cells.骨骼肌细胞中与线粒体生物发生相关的未折叠蛋白反应。
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9
JNK at the crossroad of obesity, insulin resistance, and cell stress response.JNK 在肥胖、胰岛素抵抗和细胞应激反应的十字路口。
Mol Metab. 2016 Dec 8;6(2):174-184. doi: 10.1016/j.molmet.2016.12.001. eCollection 2017 Feb.
10
Emerging roles of ER stress and unfolded protein response pathways in skeletal muscle health and disease.内质网应激和未折叠蛋白反应通路在骨骼肌健康与疾病中的新作用
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骨骼肌重构和肌病中的内质网应激。

ER stress in skeletal muscle remodeling and myopathies.

机构信息

Department of Anatomical Sciences and Neurobiology, University of Louisville School of Medicine, KY, USA.

Department of Immunology and Molecular Medicine, Sher-I-Kashmir Institute of Medical Sciences, Srinagar, India.

出版信息

FEBS J. 2019 Jan;286(2):379-398. doi: 10.1111/febs.14358. Epub 2017 Dec 29.

DOI:10.1111/febs.14358
PMID:29239106
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6002870/
Abstract

Skeletal muscle is a highly plastic tissue in the human body that undergoes extensive adaptation in response to environmental cues, such as physical activity, metabolic perturbation, and disease conditions. The endoplasmic reticulum (ER) plays a pivotal role in protein folding and calcium homeostasis in many mammalian cell types, including skeletal muscle. However, overload of misfolded or unfolded proteins in the ER lumen cause stress, which results in the activation of a signaling network called the unfolded protein response (UPR). The UPR is initiated by three ER transmembrane sensors: protein kinase R-like endoplasmic reticulum kinase, inositol-requiring protein 1α, and activating transcription factor 6. The UPR restores ER homeostasis through modulating the rate of protein synthesis and augmenting the gene expression of many ER chaperones and regulatory proteins. However, chronic heightened ER stress can also lead to many pathological consequences including cell death. Accumulating evidence suggests that ER stress-induced UPR pathways play pivotal roles in the regulation of skeletal muscle mass and metabolic function in multiple conditions. They have also been found to be activated in skeletal muscle under catabolic states, degenerative muscle disorders, and various types of myopathies. In this article, we have discussed the recent advancements toward understanding the role and mechanisms through which ER stress and individual arms of the UPR regulate skeletal muscle physiology and pathology.

摘要

骨骼肌是人体内一种高度可塑的组织,它会对环境信号(如体力活动、代谢紊乱和疾病状态)做出广泛的适应性改变。内质网(ER)在许多哺乳动物细胞类型中,包括骨骼肌中,都起着蛋白质折叠和钙平衡的关键作用。然而,内质网腔中错误折叠或未折叠的蛋白质过载会导致应激,从而激活一种称为未折叠蛋白反应(UPR)的信号网络。UPR 是由三个 ER 跨膜传感器启动的:蛋白激酶 R 样内质网激酶、需要肌醇的蛋白 1α 和激活转录因子 6。UPR 通过调节蛋白质合成速率和增强许多 ER 伴侣蛋白和调节蛋白的基因表达来恢复 ER 稳态。然而,慢性增强的 ER 应激也会导致许多病理后果,包括细胞死亡。越来越多的证据表明,ER 应激诱导的 UPR 途径在多种情况下调节骨骼肌质量和代谢功能中起着关键作用。它们也在分解代谢状态、退行性肌肉疾病和各种类型的肌病下的骨骼肌中被发现被激活。在本文中,我们讨论了在理解 ER 应激和 UPR 的各个分支调节骨骼肌生理学和病理学方面的最新进展。