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心脏的代谢状态调节小鼠中线粒体超级复合物的丰度。

The metabolic state of the heart regulates mitochondrial supercomplex abundance in mice.

机构信息

Center for Cardiometabolic Science, Christina Lee Brown Envirome Institute, Department of Medicine, University of Louisville, Louisville, KY, USA.

Cardiovascular Research Center, Department of Cardiovascular Sciences, Lewis Katz School of Medicine, Temple University, Philadelphia, PA, 19140, USA.

出版信息

Redox Biol. 2023 Jul;63:102740. doi: 10.1016/j.redox.2023.102740. Epub 2023 May 15.

Abstract

Mitochondrial supercomplexes are observed in mammalian tissues with high energy demand and may influence metabolism and redox signaling. Nevertheless, the mechanisms that regulate supercomplex abundance remain unclear. In this study, we examined the composition of supercomplexes derived from murine cardiac mitochondria and determined how their abundance changes with substrate provision or by genetically induced changes to the cardiac glucose-fatty acid cycle. Protein complexes from digitonin-solubilized cardiac mitochondria were resolved by blue-native polyacrylamide gel electrophoresis and were identified by mass spectrometry and immunoblotting to contain constituents of Complexes I, III, IV, and V as well as accessory proteins involved in supercomplex assembly and stability, cristae architecture, carbohydrate and fat oxidation, and oxidant detoxification. Respiratory analysis of high molecular mass supercomplexes confirmed the presence of intact respirasomes, capable of transferring electrons from NADH to O. Provision of respiratory substrates to isolated mitochondria augmented supercomplex abundance, with fatty acyl substrate (octanoylcarnitine) promoting higher supercomplex abundance than carbohydrate-derived substrate (pyruvate). Mitochondria isolated from transgenic hearts that express kinase-deficient 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase (Glyco), which decreases glucose utilization and increases reliance on fatty acid oxidation for energy, had higher mitochondrial supercomplex abundance and activity compared with mitochondria from wild-type or phosphatase-deficient 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase-expressing hearts (Glyco), the latter of which encourages reliance on glucose catabolism for energy. These findings indicate that high energetic reliance on fatty acid catabolism bolsters levels of mitochondrial supercomplexes, supporting the idea that the energetic state of the heart is regulatory factor in supercomplex assembly or stability.

摘要

线粒体超级复合物存在于高能量需求的哺乳动物组织中,可能会影响代谢和氧化还原信号。然而,调节超级复合物丰度的机制尚不清楚。在这项研究中,我们检查了来自鼠心脏线粒体的超级复合物的组成,并确定了它们的丰度如何随着底物供应的变化或通过遗传诱导的心脏葡萄糖-脂肪酸循环的变化而变化。用去垢剂溶解的心脏线粒体的蛋白质复合物通过蓝色非变性聚丙烯酰胺凝胶电泳分离,并通过质谱和免疫印迹鉴定,含有复合物 I、III、IV 和 V 的组成部分以及参与超级复合物组装和稳定性、嵴结构、碳水化合物和脂肪氧化以及氧化剂解毒的辅助蛋白。高分子质量超级复合物的呼吸分析证实了完整的呼吸体的存在,能够将电子从 NADH 转移到 O。向分离的线粒体提供呼吸底物会增加超级复合物的丰度,而脂肪酸底物(辛酰肉碱)比碳水化合物衍生的底物(丙酮酸)更能促进超级复合物的丰度增加。表达激酶缺陷型 6-磷酸果糖-2-激酶/果糖-2,6-二磷酸酶(Glyco)的转基因心脏分离的线粒体具有更高的线粒体超级复合物丰度和活性,Glyco 降低了葡萄糖的利用并增加了对脂肪酸氧化的依赖,以获取能量,与来自野生型或磷酸酶缺陷型 6-磷酸果糖-2-激酶/果糖-2,6-二磷酸酶表达心脏(Glyco)的线粒体相比,后者鼓励依赖葡萄糖分解代谢获取能量。这些发现表明,对脂肪酸分解代谢的高能量依赖增强了线粒体超级复合物的水平,支持心脏的能量状态是超级复合物组装或稳定性的调节因子的观点。

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