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首页> 外文期刊>Journal of Molecular Biology >A New Mechanism for High-Affinity Uptake of C4-Dicarboxylates in Bacteria Revealed by the Structure of Rhodopseudomonas palustris MatC (RPA3494), a Periplasmic Binding Protein of the Tripartite Tricarboxylate Transporter (TTT) Family
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A New Mechanism for High-Affinity Uptake of C4-Dicarboxylates in Bacteria Revealed by the Structure of Rhodopseudomonas palustris MatC (RPA3494), a Periplasmic Binding Protein of the Tripartite Tricarboxylate Transporter (TTT) Family

机译:罗多麦芽糖菌(RPA3494)的结构揭示的细菌中C4-二羧酸酯的高亲和力摄取的新机制,三羧酸三羧酸盐转运蛋白(TTT)家族的周质结合蛋白

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摘要

C4-dicarboxylates play a central role in cellular physiology as key metabolic intermediates. Under aerobic conditions, they participate in the citric acid cycle, while in anaerobic bacteria, they are important in energy-conserving fermentation and respiration processes. Ten different families of secondary transporters have been described to participate in C4-dicarboxylate movement across biological membranes, but only one of these utilizes an extracytoplasmic solute binding protein to achieve high-affinity uptake. Here, we identify the MatBAC system from the photosynthetic bacterium Rhodopseudomonas palustris as the first member of the tripartite tricarboxylate transport family to be involved in C4-dicarboxylate transport. Tryptophan fluorescence spectroscopy showed that MatC, the periplasmic binding protein from this system, binds to L- and D-malate with K-d values of 27 and 21 nM, respectively, the highest reported affinity to date for these C4-dicarboxylates, and to succinate (K-d = 110 nM) and fumarate (K-d = 400 nM). The 2.1-angstrom crystal structure of MatC with bound malate shows a high level of substrate coordination, with participation of two water molecules that bridge hydrogen bonds between the ligand proximal carboxylic group and the main chain of two conserved loops in the protein structure. The substrate coordination in MatC correlates with the binding data and explains the protein's selectivity for different substrates and respective binding affinities. Our results reveal a new function in C4-dicarboxylate transport by members of the poorly characterized tripartite tricarboxylate transport family, which are widely distributed in bacterial genomes but for which details of structure-function relationships and transport mechanisms have been lacking. (C) 2018 The Authors. Published by Elsevier Ltd.
机译:C4-二羧酸盐在细胞生理中发挥着核心作用作为关键代谢中间体。在有氧条件下,它们参与柠檬酸循环,而在厌氧细菌中,它们在节能发酵和呼吸过程中是重要的。已经描述了十种不同的二次转运蛋白家族以参与生物膜的C4-二羧酸盐运动,但其中只有其中一种利用外晶溶质结合蛋白来实现高亲和力摄取。在这里,我们将MATBAC系统从光合菌罗多麦莫纳斯帕尔斯蒂斯鉴定为三级三羧酸盐的第一成员,以参与C4-二羧酸盐转运。色氨酸荧光光谱表明,MATC,该系统的周质结合蛋白,分别与KD值为27和21nm的L-和D-苹果醛,其最高报道的这些C4-二羧酸盐和琥珀酸盐( KD = 110nm)和富马酸味(KD = 400nm)。 MATC的2.1-angstrom晶体结构具有结合的苹果醛显示出高水平的底物协调,其中两个水分子的参与桥接配体近端羧基之间的氢键和蛋白质结构中的两个保守环的主链。 MATC中的衬底配位与结合数据相关,并解释蛋白质对不同底物和各自的结合亲和力的选择性。我们的结果揭示了C4-二羧酸盐的新功能,其特征在于三羧酸三羧酸盐族的成员,其广泛分布在细菌基因组中,但缺乏结构功能关系和运输机制的细节。 (c)2018年作者。 elsevier有限公司出版

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