Cryo-EM structure of the conjugation H-pilus reveals the cyclic nature of the TrhA pilin

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2025-04-17 DOI:10.1073/pnas.2427228122
Naito Ishimoto, Joshua L. C. Wong, Shan He, Sally Shirran, Olivia Wright-Paramio, Chloe Seddon, Nanki Singh, Carlos Balsalobre, Ravi R. Sonani, Abigail Clements, Edward H. Egelmane, Gad Frankel, Konstantinos Beis
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Abstract

Conjugation, the major driver of the spread of antimicrobial resistance genes, relies on a conjugation pilus for DNA transfer. Conjugative pili, such as the F-pilus, are dynamic tubular structures, composed of a polymerized pilin, that mediate the initial donor–recipient interactions, a process known as mating pair formation (MPF). IncH are low-copy-number plasmids, traditionally considered broad host range, which are found in bacteria infecting both humans and animals. The reference IncHI1 plasmid R27, isolated from Salmonella enterica serovar Typhi, encodes the conjugative H-pilus subunit TrhA containing 74 residues after cleavage of the signal sequence. Here, we show that the H-pilus forms long filamentous structures that mediate MPF and describe its cryoelectron-microscopic (cryo-EM) structure at 2.2 Å resolution. Like the F pilus, the H-pilin subunits form helical assemblies with phospholipid molecules at a stoichiometric ratio of 1:1. While there were previous reports that the T-pilus from Agrobacterium tumefaciens was composed of cyclic subunits, three recent cryo-EM structures of the T-pilus found no such cyclization. Here, we report that the H-pilin is cyclic, with a covalent bond connecting the peptide backbone between the N and C termini. Both the cryo-EM map and mass spectrometry revealed cleavage of the last five residues of the pilin, followed by cyclization via condensation of the amine and carboxyl residues. Mutagenesis experiments revealed that loss of cyclization abolished pilus biogenesis and efficient plasmid transfer. The cyclic nature of the pilin could stabilize the pilus and may explain the high incidence of IncH plasmid dissemination.
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共轭h - pilin的低温电镜结构揭示了TrhA pilin的循环性质
偶联是抗菌素耐药基因传播的主要驱动力,它依赖于DNA转移的偶联菌毛。共轭菌毛,如f -菌毛,是一种动态管状结构,由聚合的菌毛组成,介导最初的供体-受体相互作用,这个过程被称为交配对形成(MPF)。英寸是低拷贝数的质粒,传统上被认为是广泛的宿主,在感染人类和动物的细菌中发现。从伤寒沙门氏菌中分离得到的IncHI1质粒R27编码h -菌毛结合亚基TrhA,该亚基在信号序列裂解后含有74个残基。在这里,我们发现h -菌毛形成了长丝状结构,介导MPF,并描述了其2.2 Å分辨率的低温电子显微镜(cryo-EM)结构。像F菌毛一样,h -菌毛蛋白亚基与磷脂分子以1:1的化学计量比形成螺旋组合。虽然以前有报道称农杆菌的t -菌毛是由环状亚基组成的,但最近的三个t -菌毛的低温电镜结构没有发现这种环状结构。在这里,我们报道了H-pilin是环状的,在N和C端之间有一个共价键连接肽主链。低温电镜图和质谱分析均显示,pilin的最后5个残基被裂解,然后通过胺和羧基残基的缩合进行环化。诱变实验表明,环化的缺失破坏了菌毛的生物发生和有效的质粒转移。菌毛的循环特性可以稳定菌毛,并可能解释了IncH质粒传播的高发生率。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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