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能量代谢和应激相关途径的异常导致杆状体肌病的 Neb 条件性敲除小鼠模型的病理生理学改变。

Aberrations in Energetic Metabolism and Stress-Related Pathways Contribute to Pathophysiology in the Neb Conditional Knockout Mouse Model of Nemaline Myopathy.

机构信息

Division of Pediatric Pathology, Department of Pathology and Laboratory Medicine and Neuroscience Research Center, Medical College of Wisconsin, Milwaukee, Wisconsin; Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin; Clinical and Translational Science Institute, Medical College of Wisconsin, Milwaukee, Wisconsin.

Division of Pediatric Pathology, Department of Pathology and Laboratory Medicine and Neuroscience Research Center, Medical College of Wisconsin, Milwaukee, Wisconsin.

出版信息

Am J Pathol. 2023 Oct;193(10):1528-1547. doi: 10.1016/j.ajpath.2023.06.009. Epub 2023 Jul 6.

Abstract

Nemaline myopathy (NM) is a genetically and clinically heterogeneous disease that is diagnosed on the basis of the presence of nemaline rods on skeletal muscle biopsy. Although NM has typically been classified by causative genes, disease severity or prognosis cannot be predicted. The common pathologic end point of nemaline rods (despite diverse genetic causes) and an unexplained range of muscle weakness suggest that shared secondary processes contribute to the pathogenesis of NM. We speculated that these processes could be identified through a proteome-wide interrogation using a mouse model of severe NM in combination with pathway validation and structural/functional analyses. A proteomic analysis was performed using skeletal muscle tissue from the Neb conditional knockout mouse model compared with its wild-type counterpart to identify pathophysiologically relevant biological processes that might impact disease severity or provide new treatment targets. A differential expression analysis and Ingenuity Pathway Core Analysis predicted perturbations in several cellular processes, including mitochondrial dysfunction and changes in energetic metabolism and stress-related pathways. Subsequent structural and functional studies demonstrated abnormal mitochondrial distribution, decreased mitochondrial respiratory function, an increase in mitochondrial transmembrane potential, and extremely low ATP content in Neb conditional knockout muscles relative to wild type. Overall, the findings of these studies support a role for severe mitochondrial dysfunction as a novel contributor to muscle weakness in NM.

摘要

肌强直性营养不良(NM)是一种遗传和临床表现均存在异质性的疾病,其诊断依据是骨骼肌活检中存在杆状体。尽管 NM 通常根据致病基因进行分类,但无法预测疾病的严重程度或预后。尽管存在不同的遗传原因,但杆状体的常见病理终点(despite diverse genetic causes)和无法解释的肌肉无力范围表明,共同的次要过程有助于 NM 的发病机制。我们推测,这些过程可以通过使用严重 NM 的小鼠模型进行蛋白质组范围的询问,结合途径验证和结构/功能分析来识别。使用 Neb 条件性敲除小鼠模型的骨骼肌组织与野生型进行蛋白质组学分析,以鉴定可能影响疾病严重程度或提供新的治疗靶点的病理生理相关生物学过程。差异表达分析和 IPA 核心分析预测了几个细胞过程的干扰,包括线粒体功能障碍以及能量代谢和应激相关途径的变化。随后的结构和功能研究表明,与野生型相比,Neb 条件性敲除肌肉中的线粒体分布异常、线粒体呼吸功能降低、线粒体跨膜电位增加以及 ATP 含量极低。总的来说,这些研究的结果支持严重的线粒体功能障碍作为 NM 肌肉无力的一个新的贡献因素。

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