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Mitochondrion. 2013 Nov;13(6):637-46. doi: 10.1016/j.mito.2013.09.002. Epub 2013 Sep 14.
2
Mitofusion-2-mediated alleviation of insulin resistance in rats through reduction in lipid intermediate accumulation in skeletal muscle.线粒体融合蛋白 2 介导的骨骼肌脂质中间产物积累减少改善大鼠胰岛素抵抗
J Biomed Sci. 2013 Jul 1;20(1):45. doi: 10.1186/1423-0127-20-45.
3
Rac-1 superactivation triggers insulin-independent glucose transporter 4 (GLUT4) translocation that bypasses signaling defects exerted by c-Jun N-terminal kinase (JNK)- and ceramide-induced insulin resistance.Rac-1 超活化触发胰岛素非依赖性葡萄糖转运蛋白 4(GLUT4)易位,绕过了由 c-Jun N 端激酶(JNK)和神经酰胺诱导的胰岛素抵抗所产生的信号缺陷。
J Biol Chem. 2013 Jun 14;288(24):17520-31. doi: 10.1074/jbc.M113.467647. Epub 2013 May 2.
4
Physiologic functions of cyclophilin D and the mitochondrial permeability transition pore.亲环素 D 的生理功能和线粒体通透性转换孔。
Circ J. 2013;77(5):1111-22. doi: 10.1253/circj.cj-13-0321. Epub 2013 Mar 29.
5
Slow-twitch fiber proportion in skeletal muscle correlates with insulin responsiveness.骨骼肌中慢肌纤维比例与胰岛素敏感性相关。
J Clin Endocrinol Metab. 2013 May;98(5):2027-36. doi: 10.1210/jc.2012-3876. Epub 2013 Mar 20.
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Acylcarnitines: reflecting or inflicting insulin resistance?酰基肉碱:反映还是导致胰岛素抵抗?
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Overexpression of the adiponectin receptor AdipoR1 in rat skeletal muscle amplifies local insulin sensitivity.脂肪细胞因子受体 1 在大鼠骨骼肌中的过表达增强了局部胰岛素敏感性。
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8
Insulin resistance and aging: a cause or a protective response?胰岛素抵抗与衰老:原因还是保护性反应?
J Gerontol A Biol Sci Med Sci. 2012 Dec;67(12):1329-31. doi: 10.1093/gerona/gls145. Epub 2012 Aug 2.
9
Perspectives on: SGP symposium on mitochondrial physiology and medicine: what comes first, misshape or dysfunction? The view from metabolic excess.关于线粒体生理学与医学SGP研讨会的观点:何者为先,形态异常还是功能障碍?代谢过剩视角下的观点。
J Gen Physiol. 2012 Jun;139(6):455-63. doi: 10.1085/jgp.201210771.
10
Insulin resistance improves metabolic and contractile efficiency in stressed rat heart.应激大鼠心脏胰岛素抵抗改善代谢和收缩效能。
FASEB J. 2012 Aug;26(8):3118-26. doi: 10.1096/fj.12-208991. Epub 2012 May 18.

线粒体通透性转换孔的开放将线粒体功能障碍与骨骼肌胰岛素抵抗联系起来。

Opening of the mitochondrial permeability transition pore links mitochondrial dysfunction to insulin resistance in skeletal muscle.

机构信息

Department of Pharmacology, University of Virginia, Charlottesville, VA 22908, USA.

Department of Medicine, University of Virginia, Charlottesville, VA 22908, USA ; Robert M. Berne Cardiovascular Research Center, University of Virginia, Charlottesville, VA 22908, USA.

出版信息

Mol Metab. 2013 Nov 26;3(2):124-34. doi: 10.1016/j.molmet.2013.11.003. eCollection 2014 Apr.

DOI:10.1016/j.molmet.2013.11.003
PMID:24634818
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3953683/
Abstract

Insulin resistance is associated with mitochondrial dysfunction, but the mechanism by which mitochondria inhibit insulin-stimulated glucose uptake into the cytoplasm is unclear. The mitochondrial permeability transition pore (mPTP) is a protein complex that facilitates the exchange of molecules between the mitochondrial matrix and cytoplasm, and opening of the mPTP occurs in response to physiological stressors that are associated with insulin resistance. In this study, we investigated whether mPTP opening provides a link between mitochondrial dysfunction and insulin resistance by inhibiting the mPTP gatekeeper protein cyclophilin D (CypD) in vivo and in vitro. Mice lacking CypD were protected from high fat diet-induced glucose intolerance due to increased glucose uptake in skeletal muscle. The mitochondria in CypD knockout muscle were resistant to diet-induced swelling and had improved calcium retention capacity compared to controls; however, no changes were observed in muscle oxidative damage, insulin signaling, lipotoxic lipid accumulation or mitochondrial bioenergetics. In vitro, we tested 4 models of insulin resistance that are linked to mitochondrial dysfunction in cultured skeletal muscle cells including antimycin A, C2-ceramide, ferutinin, and palmitate. In all models, we observed that pharmacological inhibition of mPTP opening with the CypD inhibitor cyclosporin A was sufficient to prevent insulin resistance at the level of insulin-stimulated GLUT4 translocation to the plasma membrane. The protective effects of mPTP inhibition on insulin sensitivity were associated with improved mitochondrial calcium retention capacity but did not involve changes in insulin signaling both in vitro and in vivo. In sum, these data place the mPTP at a critical intersection between alterations in mitochondrial function and insulin resistance in skeletal muscle.

摘要

胰岛素抵抗与线粒体功能障碍有关,但线粒体抑制胰岛素刺激的细胞质葡萄糖摄取的机制尚不清楚。线粒体通透性转换孔(mPTP)是一种蛋白质复合物,促进线粒体基质和细胞质之间分子的交换,mPTP 的开放发生在与胰岛素抵抗相关的生理应激下。在这项研究中,我们通过在体内和体外抑制 mPTP 门控蛋白亲环素 D(CypD)来研究 mPTP 的开放是否为线粒体功能障碍和胰岛素抵抗之间提供了联系。缺乏 CypD 的小鼠由于骨骼肌葡萄糖摄取增加而免受高脂肪饮食引起的葡萄糖不耐受。与对照相比,CypD 敲除肌肉中的线粒体对饮食引起的肿胀具有抗性,并且具有改善的钙保留能力;然而,在肌肉氧化损伤、胰岛素信号、脂毒性脂质积累或线粒体生物能学方面没有观察到变化。在体外,我们测试了在培养的骨骼肌细胞中与线粒体功能障碍相关的 4 种胰岛素抵抗模型,包括抗霉素 A、C2-神经酰胺、ferutinin 和棕榈酸。在所有模型中,我们观察到用 CypD 抑制剂环孢素 A 抑制 mPTP 的开放足以防止胰岛素抵抗,达到胰岛素刺激 GLUT4 易位到质膜的水平。mPTP 抑制对胰岛素敏感性的保护作用与改善的线粒体钙保留能力相关,但在体内和体外均不涉及胰岛素信号的变化。总之,这些数据将 mPTP 置于骨骼肌中线粒体功能改变和胰岛素抵抗之间的关键交叉点。