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Hum Mol Genet. 2008 Dec 15;17(24):3897-908. doi: 10.1093/hmg/ddn292. Epub 2008 Sep 9.
2
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Murine muscle cell models for Pompe disease and their use in studying therapeutic approaches.用于庞贝病的小鼠肌肉细胞模型及其在研究治疗方法中的应用。
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From Acid Alpha-Glucosidase Deficiency to Autophagy: Understanding the Bases of POMPE Disease.从酸性α-葡萄糖苷酶缺乏到自噬:了解庞贝病的发病基础
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本文引用的文献

1
Structural basis for sorting mechanism of p62 in selective autophagy.选择性自噬中p62分选机制的结构基础
J Biol Chem. 2008 Aug 15;283(33):22847-57. doi: 10.1074/jbc.M802182200. Epub 2008 Jun 4.
2
The role of autophagy in neonatal tissues: just a response to amino acid starvation?自噬在新生儿组织中的作用:仅仅是对氨基酸饥饿的反应吗?
Autophagy. 2008 Jul;4(5):727-30. doi: 10.4161/auto.6143. Epub 2008 Apr 17.
3
Downstream of Akt: FoxO3 and mTOR in the regulation of autophagy in skeletal muscle.Akt下游:FoxO3和mTOR在骨骼肌自噬调节中的作用
Autophagy. 2008 May;4(4):524-6. doi: 10.4161/auto.5905. Epub 2008 Mar 13.
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Autophagy fights disease through cellular self-digestion.自噬通过细胞自我消化来对抗疾病。
Nature. 2008 Feb 28;451(7182):1069-75. doi: 10.1038/nature06639.
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Guidelines for the use and interpretation of assays for monitoring autophagy in higher eukaryotes.高等真核生物中自噬监测检测方法的使用与解读指南。
Autophagy. 2008 Feb;4(2):151-75. doi: 10.4161/auto.5338. Epub 2007 Nov 21.
6
The itinerary of autophagosomes: from peripheral formation to kiss-and-run fusion with lysosomes.自噬体的行程:从外周形成到与溶酶体的吻别式融合。
Traffic. 2008 Apr;9(4):574-87. doi: 10.1111/j.1600-0854.2008.00701.x. Epub 2008 Jan 7.
7
Homeostatic levels of p62 control cytoplasmic inclusion body formation in autophagy-deficient mice.自噬缺陷小鼠中,p62的稳态水平控制着细胞质包涵体的形成。
Cell. 2007 Dec 14;131(6):1149-63. doi: 10.1016/j.cell.2007.10.035.
8
A block of autophagy in lysosomal storage disorders.溶酶体贮积症中的自噬阻断。
Hum Mol Genet. 2008 Jan 1;17(1):119-29. doi: 10.1093/hmg/ddm289. Epub 2007 Oct 3.
9
Autophagy: from phenomenology to molecular understanding in less than a decade.自噬:在不到十年的时间里从现象学到分子层面的理解
Nat Rev Mol Cell Biol. 2007 Nov;8(11):931-7. doi: 10.1038/nrm2245.
10
Plasticity of polyubiquitin recognition as lysosomal targeting signals by the endosomal sorting machinery.内体分选机制将多聚泛素识别为溶酶体靶向信号的可塑性。
Mol Biol Cell. 2007 Oct;18(10):3952-65. doi: 10.1091/mbc.e07-07-0678. Epub 2007 Aug 8.

骨骼肌中自噬的抑制揭示了泛素化蛋白的积累及其在庞贝病肌肉损伤中的潜在作用。

Suppression of autophagy in skeletal muscle uncovers the accumulation of ubiquitinated proteins and their potential role in muscle damage in Pompe disease.

作者信息

Raben Nina, Hill Victoria, Shea Lauren, Takikita Shoichi, Baum Rebecca, Mizushima Noboru, Ralston Evelyn, Plotz Paul

机构信息

Arthritis and Rheumatism Branch, National Institute of Arthritis and Musculoskeletal and Skin Diseases, National Institutes of Health, Bethesda, MD 20892-1820, USA.

出版信息

Hum Mol Genet. 2008 Dec 15;17(24):3897-908. doi: 10.1093/hmg/ddn292. Epub 2008 Sep 9.

DOI:10.1093/hmg/ddn292
PMID:18782848
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2638578/
Abstract

The role of autophagy, a catabolic lysosome-dependent pathway, has recently been recognized in a variety of disorders, including Pompe disease, the genetic deficiency of the glycogen-degrading lysosomal enzyme acid-alpha glucosidase. Accumulation of lysosomal glycogen, presumably transported from the cytoplasm by the autophagic pathway, occurs in multiple tissues, but pathology is most severe in skeletal and cardiac muscle. Skeletal muscle pathology also involves massive autophagic buildup in the core of myofibers. To determine if glycogen reaches the lysosome via autophagy and to ascertain whether autophagic buildup in Pompe disease is a consequence of induction of autophagy and/or reduced turnover due to defective fusion with lysosomes, we generated muscle-specific autophagy-deficient Pompe mice. We have demonstrated that autophagy is not required for glycogen transport to lysosomes in skeletal muscle. We have also found that Pompe disease involves induction of autophagy but manifests as a functional deficiency of autophagy because of impaired autophagosomal-lysosomal fusion. As a result, autophagic substrates, including potentially toxic aggregate-prone ubiquitinated proteins, accumulate in Pompe myofibers and may cause profound muscle damage.

摘要

自噬是一种分解代谢的、依赖溶酶体的途径,其作用最近在多种疾病中得到了认可,包括庞贝病,这是一种由溶酶体糖原降解酶酸性α-葡萄糖苷酶基因缺陷引起的疾病。溶酶体糖原的积累,可能是通过自噬途径从细胞质转运而来,发生在多个组织中,但骨骼肌和心肌的病理变化最为严重。骨骼肌病理还涉及肌纤维核心中大量自噬积累。为了确定糖原是否通过自噬到达溶酶体,并确定庞贝病中的自噬积累是否是自噬诱导和/或由于与溶酶体融合缺陷导致的周转减少的结果,我们构建了肌肉特异性自噬缺陷的庞贝小鼠。我们已经证明,骨骼肌中糖原转运到溶酶体不需要自噬。我们还发现,庞贝病涉及自噬的诱导,但由于自噬体-溶酶体融合受损,表现为自噬功能缺陷。因此,自噬底物,包括潜在有毒的、易于聚集的泛素化蛋白,在庞贝病肌纤维中积累,并可能导致严重的肌肉损伤。