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SPTLC3 对复合物 I 活性至关重要,并有助于缺血性心肌病。

SPTLC3 Is Essential for Complex I Activity and Contributes to Ischemic Cardiomyopathy.

机构信息

Department of Human and Molecular Genetics (A.K., M.J., J.J.W., M.A.S.), Virginia Commonwealth University, Richmond.

Department of Internal Medicine, Division of Cardiology, Pauley Heart Center, Richmond, VA (A.G.M., J.T., Q.C., T.D., E.J.L., F.N.S.).

出版信息

Circulation. 2024 Aug 20;150(8):622-641. doi: 10.1161/CIRCULATIONAHA.123.066879. Epub 2024 Apr 25.

Abstract

BACKGROUND

Dysregulated metabolism of bioactive sphingolipids, including ceramides and sphingosine-1-phosphate, has been implicated in cardiovascular disease, although the specific species, disease contexts, and cellular roles are not completely understood. Sphingolipids are produced by the serine palmitoyltransferase enzyme, canonically composed of 2 subunits, SPTLC1 (serine palmitoyltransferase long chain base subunit 1) and SPTLC2 (serine palmitoyltransferase long chain base subunit 2). Noncanonical sphingolipids are produced by a more recently described subunit, SPTLC3 (serine palmitoyltransferase long chain base subunit 3).

METHODS

The noncanonical (d16) and canonical (d18) sphingolipidome profiles in cardiac tissues of patients with end-stage ischemic cardiomyopathy and in mice with ischemic cardiomyopathy were analyzed by targeted lipidomics. Regulation of SPTLC3 by HIF1α under ischemic conditions was determined with chromatin immunoprecipitation. Transcriptomics, lipidomics, metabolomics, echocardiography, mitochondrial electron transport chain, mitochondrial membrane fluidity, and mitochondrial membrane potential were assessed in the cSPTLC3 transgenic mice we generated. Furthermore, morphological and functional studies were performed on cSPTLC3 mice subjected to permanent nonreperfused myocardial infarction.

RESULTS

Herein, we report that SPTLC3 is induced in both human and mouse models of ischemic cardiomyopathy and leads to production of atypical sphingolipids bearing 16-carbon sphingoid bases, resulting in broad changes in cell sphingolipid composition. This induction is in part attributable to transcriptional regulation by HIF1α under ischemic conditions. Furthermore, cardiomyocyte-specific depletion of SPTLC3 in mice attenuates oxidative stress, fibrosis, and hypertrophy in chronic ischemia, and mice demonstrate improved cardiac function and increased survival along with increased ketone and glucose substrate metabolism utilization. Depletion of SPTLC3 mechanistically alters the membrane environment and subunit composition of mitochondrial complex I of the electron transport chain, decreasing its activity.

CONCLUSIONS

Our findings suggest a novel essential role for SPTLC3 in electron transport chain function and a contribution to ischemic injury by regulating complex I activity.

摘要

背景

生物活性神经鞘脂,包括神经酰胺和 1-磷酸鞘氨醇的代谢失调与心血管疾病有关,尽管具体的物种、疾病背景和细胞作用尚不完全清楚。神经鞘脂由丝氨酸棕榈酰转移酶酶产生,通常由 2 个亚基组成,SPTLC1(丝氨酸棕榈酰转移酶长链碱基亚基 1)和 SPTLC2(丝氨酸棕榈酰转移酶长链碱基亚基 2)。最近描述的亚基 SPTLC3(丝氨酸棕榈酰转移酶长链碱基亚基 3)可产生非典型神经鞘脂。

方法

通过靶向脂质组学分析,对终末期缺血性心肌病患者的心脏组织和缺血性心肌病小鼠的非典型(d16)和典型(d18)神经鞘脂谱进行分析。在缺血条件下,通过染色质免疫沉淀法确定 HIF1α 对 SPTLC3 的调控作用。在我们生成的 cSPTLC3 转基因小鼠中评估了转录组学、脂质组学、代谢组学、超声心动图、线粒体电子传递链、线粒体膜流动性和线粒体膜电位。此外,对接受永久性非再灌注心肌梗死的 cSPTLC3 小鼠进行了形态学和功能研究。

结果

在此,我们报告 SPTLC3 在人类和小鼠缺血性心肌病模型中均被诱导,并导致产生带有 16 碳神经酰胺的非典型神经鞘脂,从而导致细胞神经鞘脂组成发生广泛变化。这种诱导部分归因于缺血条件下 HIF1α 的转录调节。此外,在小鼠中,心肌细胞特异性敲除 SPTLC3 可减轻慢性缺血中的氧化应激、纤维化和肥大,小鼠表现出更好的心脏功能和更高的存活率,同时增加酮体和葡萄糖底物代谢的利用。SPTLC3 的缺失在机制上改变了电子传递链线粒体复合物 I 的膜环境和亚基组成,降低了其活性。

结论

我们的研究结果表明 SPTLC3 在电子传递链功能中具有新的重要作用,并通过调节复合物 I 活性对缺血损伤有一定贡献。

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