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Caveolin‐3 deficiency associated with the dystrophy P104L mutation impairs skeletal muscle mitochondrial form and function

机译:Caveolin-3与营养不良P104L突变相关的缺乏症损害骨骼肌线粒体形式和功能

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Background Caveolin‐3 (Cav3) is the principal structural component of caveolae in skeletal muscle. Dominant pathogenic mutations in the Cav3 gene, such as the Limb Girdle Muscular Dystrophy‐1C (LGMD1C) P104L mutation, result in substantial loss of Cav3 and myopathic changes characterized by muscle weakness and wasting. We hypothesize such myopathy may also be associated with disturbances in mitochondrial biology. Herein, we report studies assessing the effects of Cav3 deficiency on mitochondrial form and function in skeletal muscle cells. Methods L6 myoblasts were stably transfected with Cav3P104L or expression of native Cav3 repressed by shRNA or CRISPR/Cas9 genome editing prior to performing fixed/live cell imaging of mitochondrial morphology, subcellular fractionation and immunoblotting, or analysis of real time mitochondrial respiration. Skeletal muscle from wild‐type and Cav3?/? mice was processed for analysis of mitochondrial proteins by immunoblotting. Results Caveolin‐3 was detected in mitochondrial‐enriched membranes isolated from mouse gastrocnemius muscle and L6 myoblasts. Expression of Cav3P104L in L6 myoblasts led to its targeting to the Golgi and loss of native Cav3 (95%), including that associated with mitochondrial membranes. Cav3P104L reduced mitochondrial mass and induced fragmentation of the mitochondrial network that was associated with significant loss of proteins involved in mitochondrial biogenesis, respiration, morphology, and redox function [i.e. PGC1α, succinate dehyrdogenase (SDHA), ANT1, MFN2, OPA1, and MnSOD). Furthermore, Cav3P104L myoblasts exhibited increased mitochondrial cholesterol and loss of cardiolipin. Consistent with these changes, Cav3P104L expression reduced mitochondrial respiratory capacity and increased myocellular superoxide production. These morphological, biochemical, and functional mitochondrial changes were phenocopied in myoblasts in which Cav3 had been silenced/knocked‐out using shRNA or CRISPR. Reduced mitochondrial mass, PGC1α, SDHA, ANT1, and MnSOD were also demonstrable in Cav3?/? mouse gastrocnemius. Strikingly, Cav3 re‐expression in Cav3KO myoblasts restored its mitochondrial association and facilitated reformation of a tubular mitochondrial network. Significantly, re‐expression also mitigated changes in mitochondrial superoxide, cholesterol, and cardiolipin content and recovered cellular respiratory capacity. Conclusions Our results identify Cav3 as an important regulator of mitochondrial homeostasis and reveal that Cav3 deficiency in muscle cells associated with the Cav3P104L mutation invokes major disturbances in mitochondrial respiration and energy status that may contribute to the pathology of LGMD1C.
机译:背景技术Caveolin-3(Cav3)是骨骼肌中Caveolae的主要结构组分。 CAV3基因中的主要致病性突变,例如肢体肌肌营养不良-1C(LGMD1C)P104L突变,导致CAV3的实质性损失,其特征在于肌肉弱点和浪费的肌疗法变化。我们假设这种肌病也可能与线粒体生物学的紊乱相关。在此,我们报告研究评估CAV3缺乏对线粒体形态和功能在骨骼肌细胞中的作用的研究。方法使用SHRNA或CRISPR / CAS9基因组在进行线粒体形态,亚细胞分级和免疫印迹的固定/活细胞成像之前稳定地转染L6肌细胞或通过SHRNA或CRISPR / CAS9基因组的表达。来自野生型和Cav3的骨骼肌?/?通过免疫印迹加工小鼠以分析线粒体蛋白。结果在小鼠胃肠肌肉和L6肌细胞中分离的线粒体富集的膜中检测到Caveolin-3。 L6肌细胞中CAV3P104L的表达导致其靶向GOLGI和天然脉冲孔(> 95%)的丧失,包括与线粒体膜相关的。 CAV3P104L减少线粒体质量和线粒体网络的诱导与参与线粒体生物发生,呼吸,形态学和氧化还原功能的显着损失相关的线粒体网络的碎片化[即PGC1α,琥珀酸酯Dehyrdogens(SDHA),ANT1,MFN2,OPA1和MNSOD)。此外,CAV3P104L肌细胞表现出增加的线粒体胆固醇和心脏脂蛋白的丧失。符合这些变化,CAV3P104L表达减少了线粒体呼吸能力和肌细胞超氧化物产生增加。这些形态学,生物化学和功能性的线粒体变化在肌细胞中是肌细胞的,其中Cav3已经使用shRNA或Crispr沉默/敲除。在Cav3中也可以证明,减少线粒体质量,PGC1α,SDHA,ANT1和MNSOD也是说明的?/?小鼠胃肠脑。尖锐地,Cav3KO肌细胞中的CAV3重新表达恢复了其线粒体关联的线粒体关联,促进了管状线粒体网络的改性。显着地,再表达也减轻了线粒体超氧化物,胆固醇和心肌脂肪素含量的变化,并回收了细胞呼吸能力。结论我们的结果鉴定了CAV3作为线粒体稳态的重要调节因子,并揭示了与CAV3P104L突变相关的肌肉细胞的CAV3缺陷调用线粒体呼吸和能量状态的主要干扰,这可能有助于LGMD1C的病理学。

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