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植物病原物 基因型进化出不同的呼吸策略和行为以在木质部中茁壮成长。

Plant-Pathogenic Phylotypes Evolved Divergent Respiratory Strategies and Behaviors To Thrive in Xylem.

机构信息

Department of Plant Pathology, University of Wisconsin-Madison, Madison, Wisconsin, USA.

Microbiology Doctoral Training Program, University of Wisconsin-Madison, Madison, Wisconsin, USA.

出版信息

mBio. 2023 Feb 28;14(1):e0318822. doi: 10.1128/mbio.03188-22. Epub 2023 Feb 6.

Abstract

Bacterial pathogens in the Ralstonia solanacearum species complex (RSSC) infect the water-transporting xylem vessels of plants, causing bacterial wilt disease. Strains in RSSC phylotypes I and III can reduce nitrate to dinitrogen via complete denitrification. The four-step denitrification pathway enables bacteria to use inorganic nitrogen species as terminal electron acceptors, supporting their growth in oxygen-limited environments such as biofilms or plant xylem. Reduction of nitrate, nitrite, and nitric oxide all contribute to the virulence of a model phylotype I strain. However, little is known about the physiological role of the last denitrification step, the reduction of nitrous oxide to dinitrogen by NosZ. We found that phylotypes I and III need NosZ for full virulence. However, strains in phylotypes II and IV are highly virulent despite lacking NosZ. The ability to respire by reducing nitrate to nitrous oxide does not greatly enhance the growth of phylotype II and IV strains. These partial denitrifying strains reach high cell densities during plant infection and cause typical wilt disease. However, unlike phylotype I and III strains, partial denitrifiers cannot grow well under anaerobic conditions or form thick biofilms in culture or in tomato xylem vessels. Furthermore, aerotaxis assays show that strains from different phylotypes have different oxygen and nitrate preferences. Together, these results indicate that the RSSC contains two subgroups that occupy the same habitat but have evolved divergent energy metabolism strategies to exploit distinct metabolic niches in the xylem. Plant-pathogenic spp. are a heterogeneous globally distributed group of bacteria that colonize plant xylem vessels. cells multiply rapidly in plants and obstruct water transport, causing fatal wilting and serious economic losses of many key food security crops. The virulence of these pathogens depends on their ability to grow to high cell densities in the low-oxygen xylem environment. Plant-pathogenic can use denitrifying respiration to generate ATP. The last denitrification step, nitrous oxide reduction by NosZ, contributes to energy production and virulence for only one of the three phytopathogenic species. These complete denitrifiers form thicker biofilms in culture and in tomato xylem, suggesting they are better adapted to hypoxic niches. Strains with partial denitrification physiology form less biofilm and are more often planktonic. They are nonetheless highly virulent. Thus, these closely related bacteria have adapted their core metabolic functions to exploit distinct microniches in the same habitat.

摘要

类立克次氏体土壤杆菌复合种(RSSC)中的细菌病原体感染植物的输水木质部导管,导致细菌性萎蔫病。RSSC 生物型 I 和 III 的菌株可以通过完全反硝化将硝酸盐还原为氮气。四步反硝化途径使细菌能够将无机氮物种用作末端电子受体,从而支持它们在生物膜或植物木质部等缺氧环境中生长。硝酸盐、亚硝酸盐和一氧化氮的还原都有助于模式生物型 I 菌株的毒力。然而,对于最后一步反硝化,即 NosZ 将一氧化二氮还原为氮气的生理作用知之甚少。我们发现生物型 I 和 III 需要 NosZ 才能充分发挥毒力。然而,尽管缺乏 NosZ,生物型 II 和 IV 的菌株仍具有高度的毒力。通过将硝酸盐还原为一氧化二氮进行呼吸的能力并不能极大地促进生物型 II 和 IV 菌株的生长。在植物感染期间,这些部分反硝化菌株达到高细胞密度并引起典型的萎蔫病。然而,与生物型 I 和 III 菌株不同,部分脱氮菌不能在厌氧条件下或在培养物或番茄木质部导管中形成厚生物膜良好生长。此外,需氧趋化性测定表明,来自不同生物型的菌株对氧气和硝酸盐有不同的偏好。这些结果表明,RSSC 包含两个亚组,它们占据相同的栖息地,但已进化出不同的能量代谢策略,以利用木质部中的不同代谢小生境。植物病原 是一组全球分布的异质细菌,定植于植物木质部导管。在植物中, 细胞迅速繁殖并阻碍水的运输,导致许多关键粮食安全作物致命的萎蔫和严重的经济损失。这些病原体的毒力取决于它们在低氧木质部环境中生长到高细胞密度的能力。植物病原 可以利用反硝化呼吸来产生 ATP。最后一步反硝化,即 NosZ 还原一氧化二氮,仅对三种植物病原 中的一种物种的能量产生和毒力有贡献。这些完全脱氮菌在培养物中和番茄木质部中形成更厚的生物膜,表明它们更适应缺氧小生境。具有部分反硝化生理的菌株形成的生物膜较少,更多地呈浮游状态。然而,它们的毒力仍然很高。因此,这些密切相关的细菌已经适应了它们的核心代谢功能,以利用同一栖息地中的不同小生境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9822/9973335/ff5b0535d2a6/mbio.03188-22-f001.jpg

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