首页> 外文OA文献 >LbDSF, the Lysobacter brunescens Quorum-Sensing System Diffusible Signaling Factor, Regulates Anti- Xanthomonas XSAC Biosynthesis, Colony Morphology, and Surface Motility
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LbDSF, the Lysobacter brunescens Quorum-Sensing System Diffusible Signaling Factor, Regulates Anti- Xanthomonas XSAC Biosynthesis, Colony Morphology, and Surface Motility

机译:LBDSF,Lysobacter Brunescens批量传感系统扩散信号因子,调节抗黄霉素Xsac生物合成,菌落形态和表面运动

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摘要

Lysobacter species are emerging as novel sources of antibiotics, but the regulation of these antibiotics has not been thoroughly elucidated to date. In this work, we identified a small diffusible signaling factor (DSF) molecule (LbDSF) that regulates the biosynthesis of a novel Xanthomonas-specific antibiotic compound (XSAC) in Lysobacter brunescens OH23. LbDSF was isolated from the culture broth of L. brunescens OH23, and the chemical structure of the molecule was determined by NMR and MS. The LbDSF compound induced GUS expression in a reporter strain of Xanthomonas campestris pv. campestris FE58, which contained the gus gene under the control of a DSF-inducible engXCA promoter. LbDSF production was found to be linked to the enoyl-CoA hydratase RpfF and dependent on the two-component regulatory system RpfC (hybrid sensor histidine kinase)/RpfG (response regulator), and LbDSF production was increased 6.72 times in the ΔrpfC compared to wild-type OH23. LbDSF-regulated XSAC production was dramatically decreased in ΔrpfF, ΔrpfC, and ΔrpfG. Additionally, a significant reduction in surface motility and a number of changes in colony morphology was observed in the ΔrpfF, ΔrpfC, and ΔrpfG compared to the wild-type OH23. The exogenous LbDSF significantly increased XSAC production in wild-type OH23 and recovered the XSAC biosynthetic ability in ΔrpfF. Taken together, these results showed that LbDSF is a fatty-acid-derived DSF that positively regulates XSAC biosynthesis, cell morphology, and surface motility. Moreover, the RpfC/RpfG quorum-sensing signal transduction pathway mediates XSAC biosynthesis. These findings may facilitate antibiotic production through genetic engineering in Lysobacter spp.
机译:粘膜杆菌物种被涌现为新的抗生素来源,但这些抗生素的调节迄今尚未彻底阐明。在这项工作中,我们鉴定了一种小的扩散信号因子(DSF)分子(LBDSF),其调节溶血杆菌的新型Xanthomonas特异性抗生素化合物(Xsac)的生物合成OH23。 LBDSF与L. Brunescens OH23的培养液中分离出来,通过NMR和MS测定分子的化学结构。 LBDSF化合物在Xanthomonas Campestris PV的报告菌株中诱导GUS表达。 Campestris Fe58,它在DSF诱导engxca启动子的控制下含有GUS基因。发现LBDSF生产与Enoyl-CoA水解酶RPFF相关并取决于双组分调节系统RPFC(混合传感器组氨酸激酶)/ RPFG(响应调节剂),与野生的ΔRPFC增加6.72倍-type OH23。在ΔRPFF,ΔRPFC和ΔRPFG中,LBDSF调节的XSAC产生显着降低。另外,在ΔRPFF,ΔRPFC和与野生型OH23相比,在ΔRPFF,ΔRPFC和ΔRPFG中观察到表面活性的显着降低和菌落形态的变化。外源性LBDSF在野生型OH23中显着增加了XSAC产生,并在ΔRPFF中恢复了Xsac生物合成能力。总之,这些结果表明,LBDSF是一种脂肪酸衍生的DSF,可积极调节Xsac生物合成,细胞形态和表面运动。此外,RPFC / RPFG仲裁信号转导通路介导XSAC生物合成。这些发现可以通过溶血杆菌SPP的遗传工程促进抗生素产生。

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