Alarmone ppGpp通过调控和配合腐胺信号机制,调节稻瘟病菌的细菌运动、玉米胺的产生和毒力。

IF 3.1 2区 生物学 Q2 MICROBIOLOGY
mSphere Pub Date : 2025-04-29 Epub Date: 2025-03-20 DOI:10.1128/msphere.00682-24
Zurong Shi, Zhibin Liang, Qian Yang, Lian-Hui Zhang, Qingwei Wang
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引用次数: 0

摘要

腐胺是一种重要的种间和界间通讯信号,可调节d.o ryzae的细菌运动、生物膜形成和毒力。目前对腐胺在d.o ryzae中的生物合成和运输调控的认识有限。在本研究中,我们报道了alarmone ppGpp分层调节腐胺的生物合成和转运,并与腐胺协同调节d.o ryzae的毒力性状和毒力。我们发现RelA合成的警报器ppGpp通过调节speA的表达来调节腐胺的生物合成,其产物腐胺会抑制potF和plaP的表达。值得注意的是,我们揭示了警报酮、ppGpp和腐胺在调节游泳运动和玉米胺产生方面的协同作用。与relA和speA的单缺失相比,relA和speA的双缺失可降低RNA伴侣编码基因hfq的表达和植物毒素玉米胺的产生,从而进一步减弱d.o ryzae EC1抑制水稻种子萌发的能力。综上所述,本研究结果描述了alarmone ppGpp对腐胺生物合成和转运的调控,并提出了alarmone ppGpp和腐胺在d.o ryzae毒力调控中的协同作用。重要意义稻瘟病菌是水稻根腐病的病原。稻瘟病菌侵染水稻种子时,细菌活力和植物毒性玉米胺是两个主要的致病因素。腐胺作为稻瘟杆菌感染的种间和界间通讯信号,先前已被证明参与细菌运动的调节。在这里,我们报道了腐胺信号和警报酮ppGpp通过调节RNA伴侣编码基因hfq的表达来调节玉米胺产生和细菌运动的新型协同作用。此外,我们还发现alarmone ppGpp分层次调节腐胺的生物合成和运输。因此,本研究的发现揭示了以前不确定的腐胺在调节毒力决定因素中的作用,以及腐胺在D. oryzae中的生物合成和运输的调节机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Alarmone ppGpp modulates bacterial motility, zeamine production, and virulence of Dickeya oryzae through the regulation of and cooperation with the putrescine signaling mechanism.

Putrescine is an important interspecies and interkingdom communication signal, modulating the bacterial motility, biofilm formation, and virulence of D. oryzae. The understanding of the regulation of putrescine biosynthesis and transport in D. oryzae is limited. In this study, we report that alarmone ppGpp hierarchically modulates putrescine biosynthesis and transport and synergistically cooperates with putrescine to regulate virulence traits and the virulence of D. oryzae. We found that the alarmone ppGpp synthesized by RelA regulated putrescine biosynthesis through modulating speA expression, and the product putrescine would thus inhibit the expression of potF and plaP. Remarkably, we unveiled the synergistic effect of alarmone ppGpp and putrescine on the modulation of swimming motility and zeamine production. Compared with the single deletion of either relA or speA, the double deletion of relA and speA could decrease the expression of RNA chaperone encoded gene hfq and the production of phytotoxin zeamine, which further attenuated the capability of D. oryzae EC1 in inhibition of rice seed germination. Collectively, the findings from this study depict alarmone ppGpp regulation on putrescine biosynthesis and transport and present the cooperation of regulation of alarmone ppGpp and putrescine in the virulence of D. oryzae.IMPORTANCEDickeya oryzae is the causal agent of rice root rot disease. Bacterial motility and phytotoxic zeamines are characterized as two major virulent factors during D. oryzea infecting rice seed. Putrescine, as an interspecies and interkingdom communication signal for the infections of D. oryzae, has been previously demonstrated to be involved in the modulation of bacterial motility. Here we report the novel synergistic effect of putrescine signal and alarmone ppGpp on the regulation of both zeamine production and bacterial motility via modulating the expression of RNA chaperone-encoded gene hfq. In addition, we also showed that alarmone ppGpp hierarchically modulates putrescine biosynthesis and transport. Therefore, the findings of this study unveil the previously undetermined contribution of putrescine in the modulation of virulence determinants, and the regulatory mechanism of putrescine biosynthesis and transport in D. oryzae.

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来源期刊
mSphere
mSphere Immunology and Microbiology-Microbiology
CiteScore
8.50
自引率
2.10%
发文量
192
审稿时长
11 weeks
期刊介绍: mSphere™ is a multi-disciplinary open-access journal that will focus on rapid publication of fundamental contributions to our understanding of microbiology. Its scope will reflect the immense range of fields within the microbial sciences, creating new opportunities for researchers to share findings that are transforming our understanding of human health and disease, ecosystems, neuroscience, agriculture, energy production, climate change, evolution, biogeochemical cycling, and food and drug production. Submissions will be encouraged of all high-quality work that makes fundamental contributions to our understanding of microbiology. mSphere™ will provide streamlined decisions, while carrying on ASM''s tradition for rigorous peer review.
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