Membrane Transport Discovery Lab, Department of Nephrology and Hypertension, and Department of Biomedical Research, Inselspital, University of Bern, Kinderklinik, Freiburgstrasse 15, CH-3010 Bern, Switzerland.
Biomolecules. 2020 Nov 28;10(12):1611. doi: 10.3390/biom10121611.
Mitochondrial carriers facilitate the transfer of small molecules across the inner mitochondrial membrane (IMM) to support mitochondrial function and core cellular processes. In addition to the classical SLC25 (solute carrier family 25) mitochondrial carriers, the past decade has led to the discovery of additional protein families with numerous members that exhibit IMM localization and transporter-like properties. These include mitochondrial pyruvate carriers, sideroflexins, and mitochondrial cation/H exchangers. These transport proteins were linked to vital physiological functions and disease. Their structures and transport mechanisms are, however, still largely unknown and understudied. Protein sequence analysis per se can often pinpoint hotspots that are of functional or structural importance. In this review, we summarize current knowledge about the sequence features of mitochondrial transporters with a special focus on the newly included SLC54, SLC55 and SLC56 families of the SLC solute carrier superfamily. Taking a step further, we combine sequence conservation analysis with transmembrane segment and secondary structure prediction methods to extract residue positions and sequence motifs that likely play a role in substrate binding, binding site gating or structural stability. We hope that our review will help guide future experimental efforts by the scientific community to unravel the transport mechanisms and structures of these novel mitochondrial carriers.
线粒体载体促进小分子在内外膜间的转移,以支持线粒体功能和核心细胞过程。除了经典的 SLC25(溶质载体家族 25)线粒体载体外,在过去的十年中,还发现了许多具有跨膜定位和转运蛋白特性的其他蛋白家族。这些包括线粒体丙酮酸载体、亚铁螯合蛋白和线粒体阳离子/H 交换体。这些转运蛋白与重要的生理功能和疾病有关。然而,它们的结构和转运机制在很大程度上仍然未知和研究不足。蛋白质序列分析本身通常可以指出具有功能或结构重要性的热点。在这篇综述中,我们总结了目前关于线粒体转运蛋白序列特征的知识,特别关注 SLC 溶质载体超家族中新纳入的 SLC54、SLC55 和 SLC56 家族。更进一步,我们将序列保守性分析与跨膜片段和二级结构预测方法相结合,以提取可能在底物结合、结合位点门控或结构稳定性中起作用的残基位置和序列基序。我们希望我们的综述将有助于指导科学界未来的实验努力,以揭示这些新型线粒体载体的转运机制和结构。