磷酸酶
枯草芽孢杆菌
生物
转录因子
西格玛因子
细胞生物学
信号转导
响应调节器
丝氨酸
磷酸化
生物化学
调节器
抄写(语言学)
遗传学
细菌
发起人
基因表达
基因
语言学
突变体
哲学
作者
Kamni Vijay,Margaret S. Brody,Elisabeth Fredlund,Chester W. Price
标识
DOI:10.1046/j.1365-2958.2000.01697.x
摘要
The sigmaB transcription factor of the bacterium Bacillus subtilis is activated by growth-limiting energy or environmental challenge to direct the synthesis of more than 100 general stress proteins. Although the signal transduction pathway that conveys these stress signals to sigmaB is becoming increasingly well understood, how environmental or energy stress signals enter this pathway remains unknown. We show here that two PP2C serine phosphatases - RsbP, which is required for response to energy stress, and RsbU, which is required for response to environmental stress - each converge on the RsbV regulator of sigmaB. According to the current understanding of sigmaB regulation, in unstressed cells the phosphorylated RsbV anti-anti-sigma is unable to complex the RsbW anti-sigma, which is then free to bind and inactivate sigmaB. We can now advance the model that either PP2C phosphatase, when triggered by its particular class of stress, can remove the phosphate from RsbV and thereby activate sigmaB. The action of the previously described RsbU is known to be controlled by dedicated upstream signalling components that are activated by environmental stress. The action of the RsbP phosphatase described here requires an energy stress, which we suggest is sensed, at least in part, by the PAS domain in the amino-terminal region of the RsbP phosphatase. In other bacterial signalling proteins, similar PAS domains and their associated chromophores directly sense changes in intracellular redox potential to control the activity of a linked output domain.
科研通智能强力驱动
Strongly Powered by AbleSci AI