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线粒体载体系统的功能特性

Functional Properties of the Mitochondrial Carrier System.

作者信息

Taylor Eric B

机构信息

Department of Biochemistry, Fraternal Order of the Eagles Diabetes Center, Holden Comprehensive Cancer Center, Abboud Cardiovascular Research Center, Pappajohn Biomedical Discovery Institute, Carver College of Medicine, University of Iowa, Iowa City, IA 52242, USA.

出版信息

Trends Cell Biol. 2017 Sep;27(9):633-644. doi: 10.1016/j.tcb.2017.04.004. Epub 2017 May 15.

Abstract

The mitochondrial carrier system (MCS) transports small molecules between mitochondria and the cytoplasm. It is integral to the core mitochondrial function to regulate cellular chemistry by metabolism. The mammalian MCS comprises the transporters of the 53-member canonical SLC25A family and a lesser number of identified noncanonical transporters. The recent discovery and investigations of the mitochondrial pyruvate carrier (MPC) illustrate the diverse effects a single mitochondrial carrier may exert on cellular function. However, the transport selectivities of many carriers remain unknown, and most have not been functionally investigated in mammalian cells. The mechanisms coordinating their function as a unified system remain undefined. Increased accessibility to molecular genetic and metabolomic technologies now greatly enables investigation of the MCS. Continued investigation of the MCS may reveal how mitochondria encode complex regulatory information within chemical thermodynamic gradients. This understanding may enable precision modulation of cellular chemistry to counteract the dysmetabolism inherent in disease.

摘要

线粒体载体系统(MCS)在线粒体和细胞质之间转运小分子。它对于通过代谢调节细胞化学的核心线粒体功能至关重要。哺乳动物的MCS由53个成员的典型SLC25A家族的转运蛋白和数量较少的已鉴定非典型转运蛋白组成。线粒体丙酮酸载体(MPC)的最新发现和研究表明,单个线粒体载体可能对细胞功能产生多种影响。然而,许多载体的转运选择性仍然未知,并且大多数尚未在哺乳动物细胞中进行功能研究。协调它们作为一个统一系统发挥功能的机制仍不明确。分子遗传学和代谢组学技术的可及性增加,现在极大地促进了对MCS的研究。对MCS的持续研究可能会揭示线粒体如何在化学热力学梯度中编码复杂的调控信息。这种理解可能使我们能够精确调节细胞化学,以对抗疾病中固有的代谢紊乱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d6f2/5773108/76a313d5831b/nihms871495f1.jpg

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