蓝藻类趋光性系统通过磷酸化两个拮抗反应调节因子来控制趋光性定向。

microLife Pub Date : 2024-05-27 eCollection Date: 2024-01-01 DOI:10.1093/femsml/uqae012
Yu Han, Jonas Hammerl, Felicitas E Flemming, Nils Schuergers, Annegret Wilde
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引用次数: 0

摘要

光合蓝藻具有趋光性,利用 IV 型纤毛虫(T4P)朝向或远离光源。Tax1 系统是一种类似于趋光性的信号转导途径,可控制细胞极性的转换,这对 Synechocystis sp.该系统由控制组氨酸激酶 PixL 的蓝/绿光传感器 PixJ 以及两个类似于 CheY 的反应调节器 PixG 和 PixH 组成。然而,人们对 Tax1 调节 T4P 活性和极性的分子机制知之甚少。在此,我们在体外研究了 PixL 与其同源反应调节因子之间的磷酸转移,并分析了野生型和磷酸化缺陷型 PixG 和 PixH 在趋光过程中的定位和功能。我们发现,PixG 和 PixH 都被 PixL 磷酸化,但在趋光性调控中的作用不同。只有磷酸化的 PixG 能与 T4P 马达蛋白 PilB1 相互作用,并在定向光下定位到前导细胞极,从而促进正光向性。相反,PixH 是 PixG 磷酸化的负调控因子,抑制正光向性。我们还证明了 PixL 的 C 端接收结构域对正光向性至关重要,并能调节 PixL 的激酶活性。我们的研究结果揭示了 Tax1 系统调控正趋光性的分子基础,并深入揭示了蓝藻趋光性类系统中 PatA 型和 CheY 型响应调控因子的分工。此外,这些发现还突显了趋光细菌和趋化细菌在抽动运动过程中运动方向调控的相似性。
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A cyanobacterial chemotaxis-like system controls phototactic orientation via phosphorylation of two antagonistic response regulators.

Photosynthetic cyanobacteria exhibit phototaxis, utilizing type IV pili (T4P) to navigate either toward or away from a light source. The Tax1 system is a chemotaxis-like signal transduction pathway that controls the switch in cell polarity, which is crucial for positive phototaxis in Synechocystis sp. PCC 6803. The system consists of the blue/green light sensor PixJ, which controls the histidine kinase PixL and two CheY-like response regulators, PixG and PixH. However, the molecular mechanism by which Tax1 regulates T4P activity and polarity is poorly understood. Here, we investigated the phosphotransfer between PixL and its cognate response regulators in vitro and analyzed the localization and function of wild-type and phosphorylation-deficient PixG and PixH during phototaxis. We found that both PixG and PixH are phosphorylated by PixL but have different roles in phototaxis regulation. Only phosphorylated PixG interacts with the T4P motor protein PilB1 and localizes to the leading cell pole under directional light, thereby promoting positive phototaxis. In contrast, PixH is a negative regulator of PixG phosphorylation and inhibits positive phototaxis. We also demonstrated that the C-terminal receiver domain of PixL is essential for positive phototaxis, and modulates the kinase activity of PixL. Our findings reveal the molecular basis of positive phototaxis regulation by the Tax1 system and provide insights into the division of labor between PatA-type and CheY-like response regulators in cyanobacterial chemotaxis-like systems. Furthermore, these findings highlight similarities in the regulation of movement direction during twitching motility in phototactic and chemotactic bacteria.

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