多重耐药嗜水气单胞菌T6SS的机制及其在竞争和发病中的作用。

IF 4.5 Q1 MICROBIOLOGY
mLife Pub Date : 2025-07-22 eCollection Date: 2025-08-01 DOI:10.1002/mlf2.70018
Hao Wang, Ying Liu, Zhao Wang, PeiYi Xia, Zhiwei Li, Ming Liu, Yang Fu
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引用次数: 0

摘要

嗜水气单胞菌是一种机会致病菌,通常编码VI型分泌系统(T6SS)基因。然而,T6SS的具体功能,特别是在临床菌株的背景下,仍然知之甚少。在这项研究中,我们对一株多重耐药菌株AH54进行了表征,该菌株具有完整的功能T6SS,由一个结构簇和两个同源辅助簇(Aux1和Aux2)组成。每个辅助簇编码两种不同的效应蛋白:重排热点(Rhs)蛋白和脯氨酸-丙氨酸-精氨酸重复(PAAR)蛋白——Aux1中的rhs1 /PAAR1和Aux2中的Rhs2/PAAR2。我们的研究结果表明,AH54组装了一个完全可操作的T6SS,能够传递这些效应物,驱动细菌间拮抗。有趣的是,AH54中的T6SS活性是受温度调节的,在较低的温度下,T6SS分泌增强,抗菌活性增强。为了防止自身中毒,AH54产生免疫蛋白(Tsi1-Tsi4)来中和毒性效应物。虽然PAAR1和PAAR2对Hcp的分泌至关重要,但免疫蛋白Tsi3和Tsi4对PAAR效应物没有交叉保护作用,这表明每种PAAR蛋白在优化AH54的竞争适应性方面具有不同的作用。此外,通过Dictyostelium disideum吞噬模型,我们证明了Rhs2(一种金属离子依赖性dna酶效应物)在通过T6SS保护AH54免受真核生物捕食中起着至关重要的作用。这些发现强调了T6SS在细菌竞争和发病机制中的关键作用,为研究嗜水单胞杆菌的毒力机制提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanistic insights into the T6SS of multi-drug-resistant Aeromonas hydrophila and its role in competition and pathogenesis.

Aeromonas hydrophila, an opportunistic pathogen, often encodes Type VI Secretion System (T6SS) genes. However, the specific functions of T6SS, particularly in the context of clinical strains, remain poorly understood. In this study, we characterize a multi-drug-resistant strain, AH54, which possesses a complete and functional T6SS, composed of a structural cluster and two homologous auxiliary clusters (Aux1 and Aux2). Each auxiliary cluster encodes two distinct effector proteins: a rearrangement hotspot (Rhs) protein and a proline-alanine-arginine repeat (PAAR) protein-Rhs1/PAAR1 in Aux1 and Rhs2/PAAR2 in Aux2. Our findings reveal that AH54 assembles a fully operational T6SS capable of delivering these effectors, driving inter-bacterial antagonism. Interestingly, the T6SS activity in AH54 is temperature-regulated, with enhanced secretion and antibacterial activity at lower temperatures. To protect itself from self-intoxication, AH54 produces immunity proteins (Tsi1-Tsi4) that neutralize the toxic effectors. While PAAR1 and PAAR2 are critical for Hcp secretion, immunity proteins Tsi3 and Tsi4 do not cross-protect against PAAR effectors, suggesting distinct roles for each PAAR protein in optimizing AH54's competitive fitness. In addition, using a Dictyostelium discoideum phagocytosis model, we demonstrate that Rhs2, a metal ion-dependent DNase effector, plays a crucial role in protecting AH54 from eukaryotic predation via T6SS. These findings highlight the pivotal role of T6SS in bacterial competition and pathogenesis, offering new insights into the virulence mechanisms of A. hydrophila.

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