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不同肌原纤维肌病的 Actin1 突变小鼠模型显示出与线粒体生物学相关的不同异常。

Different Mouse Models of Nemaline Myopathy Harboring Acta1 Mutations Display Differing Abnormalities Related to Mitochondrial Biology.

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):1548-1567. doi: 10.1016/j.ajpath.2023.06.008. Epub 2023 Jul 5.

Abstract

ACTA1 encodes skeletal muscle-specific α-actin, which polymerizes to form the thin filament of the sarcomere. Mutations in ACTA1 are responsible for approximately 30% of nemaline myopathy (NM) cases. Previous studies of weakness in NM have focused on muscle structure and contractility, but genetic issues alone do not explain the phenotypic heterogeneity observed in patients with NM or NM mouse models. To identify additional biological processes related to NM phenotypic severity, proteomic analysis was performed using muscle protein isolates from wild-type mice in comparison to moderately affected knock-in (KI) Acta1 and the minimally affected transgenic (Tg) ACTA1 NM mice. This analysis revealed abnormalities in mitochondrial function and stress-related pathways in both mouse models, supporting an in-depth assessment of mitochondrial biology. Interestingly, evaluating each model in comparison to its wild-type counterpart identified different degrees of mitochondrial abnormality that correlated well with the phenotypic severity of the mouse model. Muscle histology, mitochondrial respiration, electron transport chain function, and mitochondrial transmembrane potential were all normal or minimally affected in the TgACTA1 mouse model. In contrast, the more severely affected KI.Acta1 mice displayed significant abnormalities in relation to muscle histology, mitochondrial respirometry, ATP, ADP, and phosphate content, and mitochondrial transmembrane potential. These findings suggest that abnormal energy metabolism is related to symptomatic severity in NM and may constitute a contributor to phenotypic variability and a novel treatment target.

摘要

ACTA1 编码骨骼肌特异性 α-肌动蛋白,它聚合形成肌节的细肌丝。ACTA1 突变约占 nemaline 肌病 (NM) 病例的 30%。先前对 NM 无力的研究集中在肌肉结构和收缩性上,但仅遗传问题并不能解释 NM 患者或 NM 小鼠模型中观察到的表型异质性。为了确定与 NM 表型严重程度相关的其他生物学过程,使用来自野生型小鼠的肌肉蛋白分离物进行蛋白质组学分析,与中度受影响的 knock-in (KI) Acta1 和受影响最小的转基因 (Tg) ACTA1 NM 小鼠进行比较。该分析显示两种小鼠模型中线粒体功能和应激相关途径的异常,支持对线粒体生物学进行深入评估。有趣的是,将每个模型与其野生型对照进行比较,发现了不同程度的线粒体异常,与小鼠模型的表型严重程度密切相关。TgACTA1 小鼠模型的肌肉组织学、线粒体呼吸、电子传递链功能和线粒体跨膜电位均正常或受影响最小。相比之下,受影响更严重的 KI.Acta1 小鼠在肌肉组织学、线粒体呼吸测定、ATP、ADP 和磷酸盐含量以及线粒体跨膜电位方面表现出显著异常。这些发现表明,异常能量代谢与 NM 的症状严重程度有关,可能是表型变异性的一个原因,并构成一个新的治疗靶点。

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