首页> 外文OA文献 >The AppA and PpsR Proteins from Rhodobacter sphaeroides Can Establish a Redox-Dependent Signal Chain but Fail To Transmit Blue-Light Signals in Other Bacteria▿
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The AppA and PpsR Proteins from Rhodobacter sphaeroides Can Establish a Redox-Dependent Signal Chain but Fail To Transmit Blue-Light Signals in Other Bacteria▿

机译:球形球形红细菌的AppA和PpsR蛋白可以建立氧化还原依赖性信号链,但无法在其他细菌中传输蓝光信号。

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摘要

The AppA protein of Rhodobacter sphaeroides has the unique ability to sense and transmit redox and light signals. In response to decreasing oxygen tension, AppA antagonizes the transcriptional regulator PpsR, which represses the expression of photosynthesis genes, including the puc operon. This mechanism, which is based on direct protein-protein interaction, is prevented by blue-light absorption of the BLUF domain located in the N-terminal part of AppA. In order to test whether AppA and PpsR are sufficient to transmit redox and light signals, we expressed these proteins in three different bacterial species and monitored oxygen- and blue-light-dependent puc expression either directly or by using a luciferase-based reporter construct. The AppA/PpsR system could mediate redox-dependent gene expression in the alphaproteobacteria Rhodobacter capsulatus and Paracoccus denitrificans but not in the gammaproteobacterium Escherichia coli. Analysis of a prrA mutant strain of R. sphaeroides strongly suggests that light-dependent gene expression requires a balanced interplay of the AppA/PpsR system with the PrrA response regulator. Therefore, the AppA/PpsR system was unable to establish light signaling in other bacteria. Based on our data, we present a model for the interdependence of AppA/PpsR signaling and the PrrA transcriptional activator.
机译:球形球形红细菌的AppA蛋白具有独特的感测和传输氧化还原和光信号的能力。响应于降低的氧气张力,AppA拮抗转录调节因子PpsR,后者抑制光合作用基因(包括puc操纵子)的表达。此机制基于直接的蛋白质-蛋白质相互作用,可通过位于AppA N末端部分的BLUF结构域的蓝光吸收来阻止。为了测试AppA和PpsR是否足以传递氧化还原和光信号,我们在三种不同的细菌物种中表达了这些蛋白质,并直接或通过使用基于荧光素酶的报告基因构建体监测了氧和蓝光依赖性的puc表达。 AppA / PpsR系统可以介导氧化还原依赖性基因表达在荚膜红细菌和荚膜副球菌中,而在γ-变形杆菌大肠杆菌中不介导。对球形红球菌的prrA突变株的分析强烈表明,光依赖性基因表达需要AppA / PpsR系统与PrrA反应调节剂之间的平衡相互作用。因此,AppA / PpsR系统无法在其他细菌中建立光信号。根据我们的数据,我们提出了AppA / PpsR信号传导和PrrA转录激活因子相互依赖的模型。

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