The two-component system CpxAR controls biofilm formation by directly regulating the T3SS needle tip protein EseB in Edwardsiella piscicida.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Applied and Environmental Microbiology Pub Date : 2025-06-18 Epub Date: 2025-05-29 DOI:10.1128/aem.02264-24
Shu Ya Zhang, Shan Shan Sun, Lu Yi Liu, Thusyakaanth Sivaranjan, Pin Nie, Hai Xia Xie
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引用次数: 0

Abstract

The type III secretion system (T3SS) translocon protein EseB (needle tip protein) forms filamentous appendages on the surface of Edwardsiella piscicida to facilitate autoaggregation and biofilm formation. By contrast, another T3SS translocon protein EseC inhibits biofilm formation by sequestering EseC's chaperone EseE, which also functions as a positive regulator of the escC-eseE operon, in which EseB is encoded. The two-component system (TCS) EsrAB and the regulator EsrC tightly and positively regulate the T3SS in E. piscicida. The TCS CpxAR provides an adaptive response to external environmental changes. In this study, we have shown that disruption of the histidine kinase CpxA (sensor) instead of CpxR (response regulator) significantly reduces biofilm formation in E. piscicida. CpxR is negatively regulated by CpxA, and significant amounts of CpxR accumulate in E. piscicida in the absence of CpxA. CpxR, together with EsrB and EsrC, directly binds the promoter of the cpxR-cpxA operon to promote CpxR transcription and expression. The elevated phosphorylated CpxR (CpxR-P) binds to the promoter of the escC-eseE operon to repress eseB transcription and expression, while EseE, EsrB, and EsrC bind directly to the same promoter to promote EseB transcription and expression. E. piscicida is an enteric pathogen that senses microbiota-derived indole in the gut lumen. EseB filament-mediated biofilm formation in E. piscicida is inversely proportional to exogenous indole. Together, CpxR inhibits while EsrB, EsrC, and EseE stimulate transcription and expression of the escC-eseE operon, thereby coordinately controlling EseB filament-mediated biofilm formation in E. piscicida in response to environmental stimuli.IMPORTANCEEdwardsiella piscicida is primarily an enteric pathogen of fish and can form a biofilm to resist the lethal effects of host or antimicrobial agents. The assembly of filamentous appendages on the bacterial surface, mediated by the type III secretion system (T3SS) needle tip protein EseB, promotes bacterial-bacterial interactions and biofilm formation when E. piscicida is cultured in Dulbecco's modified Eagle's medium (DMEM). In this study, we have shown that the histidine kinase CpxA regulates biofilm formation in E. piscicida by negatively regulating its response regulator CpxR. Binding to the promoter of the escC-eseE operon, CpxR negatively regulates, whereas EsrB, EsrC, and EseE positively regulate the escC-eseE operon, of which EseB is encoded, coordinately regulating biofilm formation in E. piscicida.

双组分系统CpxAR通过直接调控鱼爱德华菌T3SS针尖蛋白EseB来控制生物膜的形成。
III型分泌系统(T3SS)易位蛋白EseB(针尖蛋白)在鱼腥鱼爱德华菌表面形成丝状附属物,促进自聚集和生物膜的形成。相比之下,另一种T3SS转座蛋白EseC通过隔离EseC的伴侣蛋白EseE来抑制生物膜的形成,EseC也作为escC-eseE操纵子的正调节因子,EseB在其中编码。双组分系统(TCS) EsrAB和调控因子EsrC紧密正向调控piscicida的T3SS。TCS CpxAR对外部环境变化提供自适应响应。在这项研究中,我们发现组氨酸激酶CpxA(传感器)而不是CpxR(反应调节因子)的破坏显著减少了piscicida生物膜的形成。CpxR受CpxA的负向调控,在CpxA缺失的情况下,CpxR在pspicida中大量积累。CpxR与EsrB和EsrC一起直接结合CpxR - cpxa操纵子的启动子,促进CpxR的转录和表达。升高的磷酸化CpxR (CpxR- p)结合到escC-eseE操纵子的启动子上抑制eseB的转录和表达,而EseE、EsrB和EsrC直接结合到同一个启动子上促进eseB的转录和表达。piscicida是一种肠道病原体,可感知肠道内微生物来源的吲哚。piscicida中EseB丝介导的生物膜形成与外源吲哚成反比。CpxR共同抑制EsrB, EsrC和EseE刺激escC-eseE操纵子的转录和表达,从而协调控制piscicida中EseB丝介导的生物膜形成,以响应环境刺激。重要意义鱼腥味爱德华氏菌主要是鱼类的肠道病原体,可形成生物膜以抵抗宿主或抗菌剂的致死作用。III型分泌系统(T3SS)针尖蛋白EseB介导丝状附着物在细菌表面的组装,促进了piscicida在Dulbecco改良Eagle培养基(DMEM)中培养的细菌-细菌相互作用和生物膜的形成。在本研究中,我们发现组氨酸激酶CpxA通过负调控其反应调节因子CpxR来调控鱼鲷生物膜的形成。CpxR与escC-eseE操纵子启动子结合,负调控escC-eseE,而EsrB、EsrC和EseE正调控escC-eseE操纵子,EseB编码escC-eseE操纵子,协同调控piscicida生物膜的形成。
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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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