Cryo-EM SPR structures of Salmonella typhimurium ArnC; the key enzyme in lipid-A modification conferring polymyxin resistance.

IF 4.5 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Protein Science Pub Date : 2025-02-01 DOI:10.1002/pro.70037
Dhruvin H Patel, Elina Karimullina, Yirui Guo, Cameron Semper, Deepak T Patel, Tabitha Emde, Dominika Borek, Alexei Savchenko
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Abstract

Polymyxins are last-resort antimicrobial peptides administered clinically against multi-drug resistant bacteria, specifically in the case of Gram-negative species. However, an increasing number of these pathogens employ a defense strategy that involves a relay of enzymes encoded by the pmrE (ugd) loci and the arnBCDTEF operon. The pathway modifies the lipid-A component of the outer membrane (OM) lipopolysaccharide (LPS) by adding a 4-amino-4-deoxy-l-arabinose (L-Ara4N) headgroup, which renders polymyxins ineffective. Here, we report the cryo-EM SPR structures of glycosyltransferase ArnC from Salmonella typhimurium determined in apo and UDP-bound forms at resolutions 2.75 Å and 3.8 Å, respectively. The structure of the ArnC protomer comprises three distinct regions: an N-terminal glycosyltransferase domain, transmembrane region, and the interface helices (IHs). ArnC forms a tetramer with C2 symmetry, where the C-terminal strand inserts into the adjacent protomer. This tetrameric state is further stabilized by two distinct interfaces formed by ArnC that form a network of hydrogen bonds and salt bridges. The binding of UDP induces conformational changes that stabilize the loop between residues H201 to S213, and part of the putative catalytic pocket formed by IH1 and IH2. The surface property analysis revealed a hydrophobic cavity formed by TM1 and TM2 in the apo state, which is disrupted upon UDP binding. The comparison of ArnC structures to their homologs GtrB and DPMS suggests the key residues involved in ArnC catalytic activity.

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多粘菌素是临床上对付多重耐药细菌(特别是革兰氏阴性菌)的最后一种抗菌肽。然而,越来越多的病原体采用了一种防御策略,其中涉及 pmrE(ugd)基因座和 arnBCDTEF 操作子编码的酶的中继。该途径通过添加 4-氨基-4-脱氧-l-阿拉伯糖(L-Ara4N)头基来修饰外膜(OM)脂多糖(LPS)的脂质-A 组份,从而使多粘菌素失效。在此,我们报告了鼠伤寒沙门氏菌糖基转移酶 ArnC 的低温电子显微镜 SPR 结构,该结构以 apo 和 UDP 结合形式测定,分辨率分别为 2.75 Å 和 3.8 Å。ArnC 原型的结构包括三个不同的区域:N 端糖基转移酶结构域、跨膜区域和界面螺旋(IHs)。ArnC 形成具有 C2 对称性的四聚体,其中 C 端链插入到相邻的原体中。ArnC 形成的两个不同的界面形成了氢键和盐桥网络,进一步稳定了这种四聚体状态。UDP 的结合引起构象变化,从而稳定了残基 H201 至 S213 之间的环路,以及由 IH1 和 IH2 形成的假定催化袋的一部分。表面性质分析表明,TM1 和 TM2 在正常状态下形成了一个疏水空腔,当与 UDP 结合时,该空腔被破坏。将 ArnC 结构与其同源物 GtrB 和 DPMS 的结构进行比较,发现了参与 ArnC 催化活性的关键残基。
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来源期刊
Protein Science
Protein Science 生物-生化与分子生物学
CiteScore
12.40
自引率
1.20%
发文量
246
审稿时长
1 months
期刊介绍: Protein Science, the flagship journal of The Protein Society, is a publication that focuses on advancing fundamental knowledge in the field of protein molecules. The journal welcomes original reports and review articles that contribute to our understanding of protein function, structure, folding, design, and evolution. Additionally, Protein Science encourages papers that explore the applications of protein science in various areas such as therapeutics, protein-based biomaterials, bionanotechnology, synthetic biology, and bioelectronics. The journal accepts manuscript submissions in any suitable format for review, with the requirement of converting the manuscript to journal-style format only upon acceptance for publication. Protein Science is indexed and abstracted in numerous databases, including the Agricultural & Environmental Science Database (ProQuest), Biological Science Database (ProQuest), CAS: Chemical Abstracts Service (ACS), Embase (Elsevier), Health & Medical Collection (ProQuest), Health Research Premium Collection (ProQuest), Materials Science & Engineering Database (ProQuest), MEDLINE/PubMed (NLM), Natural Science Collection (ProQuest), and SciTech Premium Collection (ProQuest).
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