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Elife. 2017 Aug 11;6:e27192. doi: 10.7554/eLife.27192.
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Targeting deregulated AMPK/mTORC1 pathways improves muscle function in myotonic dystrophy type I.靶向失调的AMPK/mTORC1信号通路可改善I型强直性肌营养不良症的肌肉功能。
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Neonatal cardiac dysfunction and transcriptome changes caused by the absence of Celf1.Celf1 缺失导致的新生儿心脏功能障碍和转录组变化。
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Oncogenic mTOR signalling recruits myeloid-derived suppressor cells to promote tumour initiation.致癌性mTOR信号传导招募髓源性抑制细胞以促进肿瘤起始。
Nat Cell Biol. 2016 Jun;18(6):632-44. doi: 10.1038/ncb3355. Epub 2016 May 16.
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How many biological replicates are needed in an RNA-seq experiment and which differential expression tool should you use?RNA测序实验需要多少生物学重复,以及应该使用哪种差异表达工具?
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Pivotal Importance of STAT3 in Protecting the Heart from Acute and Chronic Stress: New Advancement and Unresolved Issues.STAT3 在保护心脏免受急性和慢性应激中的关键作用:新进展和未解决的问题。
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Upregulation of EGFR signaling is correlated with tumor stroma remodeling and tumor recurrence in FGFR1-driven breast cancer.在FGFR1驱动的乳腺癌中,表皮生长因子受体(EGFR)信号上调与肿瘤基质重塑及肿瘤复发相关。
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8
Sense and Antisense DMPK RNA Foci Accumulate in DM1 Tissues during Development.在发育过程中,有义链和反义链 DMPK RNA 病灶在 DM1 组织中积累。
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9
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1 型肌强直性营养不良小鼠模型中骨骼肌萎缩的机制。

Mechanisms of skeletal muscle wasting in a mouse model for myotonic dystrophy type 1.

机构信息

Department of Pathology and Immunology, Baylor College of Medicine, Houston, TX, USA.

Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, TX, USA.

出版信息

Hum Mol Genet. 2018 Aug 15;27(16):2789-2804. doi: 10.1093/hmg/ddy192.

DOI:10.1093/hmg/ddy192
PMID:29771332
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6077786/
Abstract

Myotonic dystrophy type 1 (DM1) is a multi-systemic disease resulting in severe muscle weakening and wasting. DM1 is caused by expansion of CTG repeats in the 3' untranslated region of the dystrophia myotonica protein kinase (DMPK) gene. We have developed an inducible, skeletal muscle-specific mouse model of DM1 (CUG960) that expresses 960 CUG repeat-expressing animals (CUG960) in the context of human DMPK exons 11-15. CUG960 RNA-expressing mice induced at postnatal day 1, as well as adult-onset animals, show clear, measurable muscle wasting accompanied by severe histological defects including central myonuclei, reduced fiber cross-sectional area, increased percentage of oxidative myofibers, the presence of nuclear RNA foci that colocalize with Mbnl1 protein, and increased Celf1 protein in severely affected muscles. Importantly, muscle loss, histological abnormalities and RNA foci are reversible, demonstrating recovery upon removal of toxic RNA. RNA-seq and protein array analysis indicate that the balance between anabolic and catabolic pathways that normally regulate muscle mass may be disrupted by deregulation of platelet derived growth factor receptor β signaling and the PI3K/AKT pathways, along with prolonged activation of AMP-activated protein kinase α signaling. Similar changes were detected in DM1 skeletal muscle compared with unaffected controls. The mouse model presented in this paper shows progressive skeletal muscle wasting and has been used to identify potential molecular mechanisms underlying skeletal muscle loss. The reversibility of the phenotype establishes a baseline response for testing therapeutic approaches.

摘要

肌强直性营养不良 1 型(DM1)是一种多系统疾病,导致严重的肌肉弱化和消耗。DM1 是由肌强直性营养不良蛋白激酶(DMPK)基因 3'非翻译区的 CTG 重复扩展引起的。我们开发了一种诱导型、骨骼肌特异性 DM1 小鼠模型(CUG960),在人类 DMPK 外显子 11-15 的背景下表达 960 个 CUG 重复表达的动物(CUG960)。在出生后第 1 天诱导的 CUG960 RNA 表达小鼠,以及成年发病的动物,表现出明显的、可测量的肌肉消耗,伴有严重的组织学缺陷,包括中央肌核、纤维横截面积减小、氧化肌纤维比例增加、与 Mbnl1 蛋白共定位的核 RNA 焦点,以及在严重受影响的肌肉中 Celf1 蛋白增加。重要的是,肌肉损失、组织学异常和 RNA 焦点是可逆的,表明在去除毒性 RNA 后可恢复。RNA-seq 和蛋白质阵列分析表明,正常调节肌肉质量的合成代谢和分解代谢途径之间的平衡可能因血小板衍生生长因子受体β信号通路和 PI3K/AKT 通路的失调以及 AMP 激活蛋白激酶α信号通路的持续激活而被破坏。与未受影响的对照组相比,在 DM1 骨骼肌中检测到了类似的变化。本文提出的小鼠模型显示出进行性骨骼肌消耗,并已被用于鉴定骨骼肌丢失的潜在分子机制。表型的可逆性为测试治疗方法建立了基线反应。