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Functional and structural characterization of Hyp730 a highly conserved and dormancy‐specific hypothetical membrane protein

机译:Hyp730的功能性和结构表征高度保守和特异性特异性假设膜蛋白

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摘要

Membrane proteins represent major drug targets, and the ability to determine their functions, structures, and conformational changes will significantly advance mechanistic approaches to both biotechnology and bioremediation, as well as the fight against pathogenic bacteria. A pertinent example is Mycobacterium tuberculosis (H37Rv), which contains ~4000 protein‐coding genes, with almost a thousand having been categorized as ‘membrane protein’, and a few of which (~1%) have been functionally characterized and structurally modeled. However, the functions and structures of most membrane proteins that are sparsely, or only transiently, expressed, but essential in small phenotypic subpopulations or under stress conditions such as persistence or dormancy, remain unknown. Our deep quantitative proteomics profiles revealed that the hypothetical membrane protein 730 (Hyp730) {"type":"entrez-protein","attrs":{"text":"WP_010079730","term_id":"497765546","term_text":"WP_010079730"}}WP_010079730 (protein ID Mlut_RS11895) from M. luteus is upregulated in dormancy despite a ~5‐fold reduction in overall protein diversity. Its H37Rv paralog, Rv1234, showed a similar proteomic signature, but the function of Hyp730‐like proteins has never been characterized. Here, we present an extensive proteomic and transcriptomic analysis of Hyp730 and have also characterized its in vitro recombinant expression, purification, refolding, and essentiality as well as its tertiary fold. Our biophysical studies, circular dichroism, and tryptophan fluorescence are in immediate agreement with in‐depth in silico 3D‐structure prediction, suggesting that Hyp730 is a double‐pass membrane‐spanning protein. Ablation of Hyp730‐expression did not alter M. luteus growth, indicating that Hyp730 is not essential. Structural homology comparisons showed that Hyp730 is highly conserved and non‐redundant in G+C rich Actinobacteria and might be involved, under stress conditions, in an energy‐saving role in respiration during dormancy.
机译:膜蛋白代表主要药物靶标,确定其功能,结构和构象变化的能力将显着推进生物技术和生物修复的机制方法,以及对抗病原细菌的斗争。相关实例是结核分枝杆菌(H37RV),其含有〜4000个蛋白质编码基因,几乎一千个被分类为“膜蛋白”,其中一些(〜1%)已经在功能上表征和结构上建模。然而,大多数膜蛋白的功能和结构稀疏或仅瞬时表达,但在小表型群或持久性或休眠等压力条件下仍然是必需的。我们深度的定量蛋白质组学曲线揭示了假设膜蛋白730(Hyp730){“类型”:“entrez-incotfic”,“attrs”:{“text”:“wp_010079730”,“term_id”:“term_dext”,“term_text” :“WP_010079730”} WP_010079730(蛋白质ID MLUT_RS11895)来自M.叶黄素在休眠中上调,尽管整体蛋白质多样性降低了〜5倍。其H37RV Paralog,RV1234显示出类似的蛋白质组学签名,但是从未表征过Hyp730样蛋白的功能。在这里,我们介绍了Hyp7​​30的广泛蛋白质组学和转录组分析,还表征其体外重组表达,纯化,重折叠和基本性以及其三级折叠。我们的生物物理学研究,圆形二色性和色氨酸荧光在硅3D结构预测中立即达成一致,表明Hyp730是双通膜跨越蛋白质。消融Hyp730-表达没有改变M.叶黄素生长,表明Hyp730不是必不可少的。结构性同源性比较表明,Hyp730在G + C富含抗菌杆菌中具有高度保守和非冗余,并且可能在休眠期间在呼吸中的节能作用下涉及节能作用。

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