Hitomi Masafumi, Nishimura Hiroshi, Tsujimoto Yoshiyuki, Matsui Hiroshi, Watanabe Kunihiko
Department of Applied Biochemistry, Kyoto Prefectural University, Shimogamo, Sakyo, Kyoto 606-8522, Japan.
J Bacteriol. 2003 Jan;185(1):381-5. doi: 10.1128/JB.185.1.381-385.2003.
In the heat shock response of bacillary cells, HrcA repressor proteins negatively control the expression of the major heat shock genes, the groE and dnaK operons, by binding the CIRCE (controlling inverted repeat of chaperone expression) element. Studies on two critical but yet unresolved issues related to the structure and function of HrcA were performed using mainly the HrcA from the obligate thermophile Bacillus thermoglucosidasius KP1006. These two critical issues are (i) identifying the region at which HrcA binds to the CIRCE element and (ii) determining whether HrcA can play the role of a thermosensor. We identified the position of a helix-turn-helix (HTH) motif in B. thermoglucosidasius HrcA, which is typical of DNA-binding proteins, and indicated that two residues in the HTH motif are crucial for the binding of HrcA to the CIRCE element. Furthermore, we compared the thermostabilities of the HrcA-CIRCE complexes derived from Bacillus subtilis and B. thermoglucosidasius, which grow at vastly different ranges of temperature. The thermostability profiles of their HrcA-CIRCE complexes were quite consistent with the difference in the growth temperatures of B. thermoglucosidasius and B. subtilis and, thus, suggested that HrcA can function as a thermosensor to detect temperature changes in cells.
在芽孢杆菌细胞的热休克反应中,HrcA阻遏蛋白通过结合伴侣蛋白表达控制反向重复序列(CIRCE)元件,对主要热休克基因groE和dnaK操纵子的表达进行负调控。主要利用嗜热芽孢杆菌Bacillus thermoglucosidasius KP1006的HrcA,对与HrcA结构和功能相关的两个关键但尚未解决的问题进行了研究。这两个关键问题是:(i)确定HrcA与CIRCE元件结合的区域;(ii)确定HrcA是否能发挥热传感器的作用。我们确定了嗜热栖热放线菌HrcA中螺旋-转角-螺旋(HTH)基序的位置,这是DNA结合蛋白的典型特征,并表明HTH基序中的两个残基对于HrcA与CIRCE元件的结合至关重要。此外,我们比较了枯草芽孢杆菌和嗜热栖热放线菌来源的HrcA-CIRCE复合物的热稳定性,这两种菌在截然不同的温度范围内生长。它们的HrcA-CIRCE复合物的热稳定性谱与嗜热栖热放线菌和枯草芽孢杆菌生长温度的差异相当一致,因此表明HrcA可以作为一种热传感器来检测细胞内的温度变化。