首页> 外文期刊>Applied and Environmental Microbiology >BDSF Is a Degradation-Prone Quorum-Sensing Signal Detected by the Histidine Kinase RpfC of Xanthomonas campestris pv. campestris
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BDSF Is a Degradation-Prone Quorum-Sensing Signal Detected by the Histidine Kinase RpfC of Xanthomonas campestris pv. campestris

机译:BDSF 是由油菜黄单胞菌 pv 的组氨酸激酶 RpfC 检测到的易降解群体感应信号。坎佩斯特里斯

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摘要

The diffusible signal factor (DSF) family consists of quorum-sensing signals employed by Gram-negative bacteria. These signals are a group of cis-2-unsaturated fatty acids, such as DSF, BDSF, IDSF, CDSF, and SDSF. Diffusible signal factors (DSFs) are medium-chain fatty acids that induce bacterial quorum sensing. Among these compounds, BDSF is a structural analog of DSF that is commonly detected in bacterial species, and it is the predominant in planta quorum-sensing signal in Xanthomonas campestris. How BDSF is sensed in Xanthomonas spp. and the functional diversity between BDSF and DSF remain unclear. In this study, we generated genetic and biochemical evidence that BDSF is a low-active regulator of X. campestris pv. campestris quorum sensing, whereas trans-BDSF does not seem to be a signaling compound. BDSF is detected by the sensor histidine kinase RpfC. Although BDSF has relatively low physiological activities, it binds to the RpfC sensor with a high affinity and activates RpfC autophosphorylation to a level that is similar to that induced by DSF in vitro. The inconsistency in the physiological and biochemical activities of BDSF is not due to RpfC-RpfG phosphorylation or RpfG hydrolase. Neither BDSF nor DSF controls the phosphotransferase and phosphatase activities of RpfC or the ability of RpfG hydrolase activity to degrade the bacterial second messenger cyclic di-GMP. We demonstrated that BDSF is prone to degradation by RpfB, a critical fatty acyl coenzyme A ligase involved in the turnover of DSF-family signals. rpfB mutations lead to substantial increases in BDSF-induced quorum sensing. Although DSF and BDSF are similarly detected by RpfC, our data suggest that their differential degradation in cells is the major factor responsible for the diversity in their physiological effects. IMPORTANCE The diffusible signal factor (DSF) family consists of quorum-sensing signals employed by Gram-negative bacteria. These signals are a group of cis-2-unsaturated fatty acids, such as DSF, BDSF, IDSF, CDSF, and SDSF. However, the functional divergence of various DSF signals remains unclear. The present study demonstrates that though BDSF is a low active quorum-sensing signal, it binds histidine kinase RpfC with a higher affinity and activates RpfC autophosphorylation to the similar level as DSF. Rather than regulation of enzymatic activities of RpfC and its cognate response regulator RpfG encoding a c-di-GMP hydrolase, BDSF is prone to degradation in bacterial cells by RpfB, which effectively avoided the inhibition of bacterial growth by accumulating high concentrations of BDSF. Therefore, our study sheds new light on the functional differences of quorum-sensing signals and shows that bacteria balance quorum sensing and growth by fine-tuning concentrations of signaling chemicals.
机译:扩散信号因子 (DSF) 家族由革兰氏阴性细菌采用的群体感应信号组成。这些信号是一组顺式-2-不饱和脂肪酸,如DSF、BDSF、IDSF、CDSF和SDSF。扩散信号因子 (DSF) 是诱导细菌群体感应的中链脂肪酸。在这些化合物中,BDSF是DSF的结构类似物,通常在细菌物种中检测到,并且在油菜黄单胞菌的植物群体感应信号中占主导地位。BDSF在黄单胞菌属中是如何感知的,BDSF和DSF之间的功能多样性尚不清楚。在这项研究中,我们产生了遗传学和生化证据,证明BDSF是油菜X. campestris pv的低活性调节因子。campestris 群体感应,而反式 BDSF 似乎不是一种信号化合物。BDSF 由传感器组氨酸激酶 RpfC 检测。虽然BDSF的生理活性相对较低,但它以高亲和力与RpfC传感器结合,并将RpfC自磷酸化激活到与DSF在体外诱导的水平相似的水平。BDSF生理生化活性的不一致不是由于RpfC-RpfG磷酸化或RpfG水解酶引起的。BDSF和DSF均不控制RpfC的磷酸转移酶和磷酸酶活性或RpfG水解酶活性降解细菌第二信使环di-GMP的能力。我们证明了BDSF容易被RpfB降解,RpfB是一种关键的脂肪酰基辅酶A连接酶,参与DSF家族信号的转换。rpfB 突变导致 BDSF 诱导的群体感应显著增加。尽管 RpfC 类似地检测到 DSF 和 BDSF,但我们的数据表明,它们在细胞中的差异降解是导致其生理效应多样性的主要因素。重要性 扩散信号因子 (DSF) 家族由革兰氏阴性菌采用的群体感应信号组成。这些信号是一组顺式-2-不饱和脂肪酸,如DSF、BDSF、IDSF、CDSF和SDSF。然而,各种DSF信号的功能发散仍不清楚。本研究表明,虽然BDSF是一种低活性群体感应信号,但它以更高的亲和力结合组氨酸激酶RpfC,并将RpfC自磷酸化激活至与DSF相似的水平。BDSF不调控RpfC及其编码c-di-GMP水解酶的同源反应调节因子RpfG的酶活性,而是容易在细菌细胞中被RpfB降解,从而有效避免了通过积累高浓度BDSF来抑制细菌生长。因此,我们的研究揭示了群体感应信号的功能差异,并表明细菌通过微调信号化学物质的浓度来平衡群体感应和生长。

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