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脊髓损伤所致肌肉麻痹中微小RNA失调的特征包括靶向肌肉生长抑制素信号通路的微小RNA下调。

The Signature of MicroRNA Dysregulation in Muscle Paralyzed by Spinal Cord Injury Includes Downregulation of MicroRNAs that Target Myostatin Signaling.

作者信息

De Gasperi Rita, Graham Zachary A, Harlow Lauren M, Bauman William A, Qin Weiping, Cardozo Christopher P

机构信息

VA RR&D Service National Center for the Medical Consequences of Spinal Cord Injury, James J. Peters Medical Center, Bronx, New York.

Department of Psychiatry, Icahn School of Medicine at Mount Sinai, New York, New York.

出版信息

PLoS One. 2016 Dec 1;11(12):e0166189. doi: 10.1371/journal.pone.0166189. eCollection 2016.

Abstract

Spinal cord injury (SCI) results in muscle atrophy, reduced force generation and an oxidative-to-glycolytic fiber type shift. The mechanisms responsible for these alterations remain incompletely understood. To gain new insights regarding mechanisms involved in deterioration of muscle after SCI, global expression profiles of miRs in paralyzed gastrocnemius muscle were compared between sham-operated (Sham) and spinal cord-transected (SCI) rats. Ingenuity Pathways Analysis of the altered miRs identified signaling via insulin, IGF-1, integrins and TGF-β as being significantly enriched for target genes. By qPCR, miRs 23a, 23b, 27b, 145, and 206, were downregulated in skeletal muscle 56 days after SCI. Using FISH, miR-145, a miR not previously implicated in the function of skeletal muscle, was found to be localized to skeletal muscle fibers. One predicted target of miR-145 was Cited2, a transcriptional regulator that modulates signaling through NF-κB, Smad3 and other transcription factors. The 3' UTR of Cited2 mRNA contained a highly conserved miR-145 seed sequence. Luciferase reporter assays confirmed that miR-145 interacts with this seed sequence. However, Cited2 protein levels were similar between Sham and SCI groups, indicating a biochemical interaction that was not involved in the context of adaptations after SCI. Taken together, the findings indicate dysregulation of several highly expressed miRs in skeletal muscle after SCI and suggest that reduced expression of miR-23a, 145 and 206 may have roles in alteration in skeletal muscle mass and insulin responsiveness in muscle paralyzed by upper motor neuron injuries.

摘要

脊髓损伤(SCI)会导致肌肉萎缩、力量生成减少以及氧化型纤维向糖酵解型纤维类型转变。导致这些改变的机制仍未完全明确。为了深入了解SCI后肌肉退化所涉及的机制,我们比较了假手术(Sham)组和脊髓横断(SCI)组大鼠瘫痪腓肠肌中miR的整体表达谱。对改变的miR进行的 Ingenuity 通路分析表明,胰岛素、IGF-1、整合素和TGF-β信号通路在靶基因中显著富集。通过qPCR检测发现,miR 23a、23b、27b、145和206在SCI后56天的骨骼肌中表达下调。使用FISH技术发现,miR-145(一种先前未涉及骨骼肌功能的miR)定位于骨骼肌纤维。miR-145的一个预测靶标是Cited2,它是一种转录调节因子,可调节通过NF-κB、Smad3和其他转录因子的信号传导。Cited2 mRNA的3'UTR包含一个高度保守的miR-145种子序列。荧光素酶报告基因检测证实miR-145与该种子序列相互作用。然而,Sham组和SCI组之间的Cited2蛋白水平相似,这表明这种生化相互作用在SCI后的适应性变化中不涉及。综上所述,这些发现表明SCI后骨骼肌中几种高表达miR存在失调,提示miR-23a、145和206表达降低可能在上运动神经元损伤导致的肌肉瘫痪中,对骨骼肌质量改变和肌肉胰岛素反应性方面发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/463f/5132212/fab2dd9a6f93/pone.0166189.g001.jpg

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