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单核细胞中线粒体超微结构和活性受糖酵解、三羧酸循环及微生物群衍生代谢产物的差异调节。

Mitochondrial Ultrastructure and Activity Are Differentially Regulated by Glycolysis-, Krebs Cycle-, and Microbiota-Derived Metabolites in Monocytes.

作者信息

Pérez-Hernández C Angélica, Moreno-Altamirano M Maximina Bertha, López-Villegas Edgar O, Butkeviciute Egle, Ali Mohammad, Kronsteiner Barbara, Dunachie Susanna J, Dockrell Hazel M, Smith Steven G, Sánchez-García F Javier

机构信息

Laboratorio de Inmunorregulación, Departamento de Inmunología, Escuela Nacional de Ciencias Biológicas, Instituto Politécnico Nacional, Mexico City 11340, Mexico.

Unidad de Microscopía, Escuela Nacional de Ciencias Biológicas, Instituto Politécnico Nacional, Mexico City 11340, Mexico.

出版信息

Biology (Basel). 2022 Jul 28;11(8):1132. doi: 10.3390/biology11081132.

Abstract

Several intermediate metabolites harbour cell-signalling properties, thus, it is likely that specific metabolites enable the communication between neighbouring cells, as well as between host cells with the microbiota, pathogens, and tumour cells. Mitochondria, a source of intermediate metabolites, participate in a wide array of biological processes beyond that of ATP production, such as intracellular calcium homeostasis, cell signalling, apoptosis, regulation of immune responses, and host cell-microbiota crosstalk. In this regard, mitochondria's plasticity allows them to adapt their bioenergetics status to intra- and extra-cellular cues, and the mechanisms driving such plasticity are currently a matter of intensive research. Here, we addressed whether mitochondrial ultrastructure and activity are differentially shaped when human monocytes are exposed to an exogenous source of lactate (derived from glycolysis), succinate, and fumarate (Krebs cycle metabolic intermediates), or butyrate and acetate (short-chain fatty acids produced by intestinal microbiota). It has previously been shown that fumarate induces mitochondrial fusion, increases the mitochondrial membrane potential (Δψ), and reshapes the mitochondrial cristae ultrastructure. Here, we provide evidence that, in contrast to fumarate, lactate, succinate, and butyrate induce mitochondrial fission, while acetate induces mitochondrial swelling. These traits, along with mitochondrial calcium influx kinetics and glycolytic vs. mitochondrial ATP-production rates, suggest that these metabolites differentially shape mitochondrial function, paving the way for the understanding of metabolite-induced metabolic reprogramming of monocytes and its possible use for immune-response intervention.

摘要

几种中间代谢产物具有细胞信号传导特性,因此,特定的代谢产物可能促成相邻细胞之间以及宿主细胞与微生物群、病原体和肿瘤细胞之间的通讯。线粒体作为中间代谢产物的来源,参与了除ATP生成之外的一系列生物过程,如细胞内钙稳态、细胞信号传导、细胞凋亡、免疫反应调节以及宿主细胞与微生物群的相互作用。在这方面,线粒体的可塑性使其能够根据细胞内和细胞外的信号调整其生物能量状态,而驱动这种可塑性的机制目前是深入研究的课题。在此,我们探讨了当人类单核细胞暴露于乳酸(源自糖酵解)、琥珀酸和富马酸(三羧酸循环代谢中间体)或丁酸和乙酸(肠道微生物群产生的短链脂肪酸)的外源来源时,线粒体超微结构和活性是否会受到不同影响。此前已有研究表明,富马酸会诱导线粒体融合,增加线粒体膜电位(Δψ),并重塑线粒体嵴超微结构。在此,我们提供证据表明,与富马酸相反,乳酸、琥珀酸和丁酸会诱导线粒体分裂,而乙酸会诱导线粒体肿胀。这些特征,连同线粒体钙内流动力学以及糖酵解与线粒体ATP生成速率,表明这些代谢产物对线粒体功能的影响各不相同,为理解代谢产物诱导的单核细胞代谢重编程及其在免疫反应干预中的潜在应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a66/9404980/cd367a777600/biology-11-01132-g001.jpg

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