首页> 外文期刊>Molecular Plant-Microbe Interactions >Exopolysaccharide production is required for biofilm formation and plant colonization by the nitrogen-fixing endophyte Gluconacetobacter diazotrophicus.
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Exopolysaccharide production is required for biofilm formation and plant colonization by the nitrogen-fixing endophyte Gluconacetobacter diazotrophicus.

机译:固氮内生菌重氮糖营养菌固氮菌的生物膜形成和植物定植需要胞外多糖的产生。

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摘要

The genome of the endophytic diazotrophic bacterial species Gluconacetobacter diazotrophicus PAL5 (PAL5) revealed the presence of a gum gene cluster. In this study, the gumD gene homologue, which is predicted to be responsible for the first step in exopolysaccharide (EPS) production, was insertionally inactivated and the resultant mutant (MGD) was functionally studied. The mutant MGD presented normal growth and nitrogen (N2) fixation levels but did not produce EPS when grown on different carbon sources. MGD presented altered colony morphology on soft agar plates (0.3% agar) and was defective in biofilm formation on glass wool. Most interestingly, MGD was defective in rice root surface attachment and in root surface and endophytic colonization. Genetic complementation reverted all mutant phenotypes. Also, the addition of EPS purified from culture supernatants of the wild-type strain PAL5 to the mutant MGD was effective in partially restoring wild-type biofilm formation and plant colonization. These data provide strong evidence that the PAL5 gumD gene is involved in EPS biosynthesis and that EPS biosynthesis is required for biofilm formation and plant colonization. To our knowledge, this is the first report of a role of EPS in the endophytic colonization of graminaceous plants by a nitrogen-fixing bacterium.
机译:内生重氮营养细菌种类 Gluconacetobacter diazotrophicus PAL5(PAL5)的基因组显示存在 gum 基因簇。在这项研究中, gumD 基因同源物被插入失活,预计该基因同源物是胞外多糖(EPS)产生的第一步,并对其功能进行了研究。突变的MGD表现出正常的生长和氮(N 2 )固定水平,但在不同碳源上生长时不产生EPS。 MGD在软琼脂平板上(0.3%琼脂)呈现出改变的菌落形态,并且在玻璃棉上生物膜形成方面存在缺陷。最有趣的是,MGD在水稻根部表面附着,根部表面和内生菌定植方面存在缺陷。遗传互补恢复了所有突变表型。而且,将从野生型菌株PAL5的培养上清液中纯化的EPS添加到突变体MGD中,可有效地部分恢复野生型生物膜的形成和植物定植。这些数据提供了有力的证据,证明PAL5 gumD 基因参与EPS的生物合成,并且EPS生物合成是生物膜形成和植物定植所必需的。据我们所知,这是EPS在固氮细菌对禾本科植物内生定植中的作用的首次报道。

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