抑制因子
半胱氨酸
化学
转录调控
生物化学
转录因子
DNA
抄写(语言学)
细胞生物学
计算生物学
生物
基因
酶
语言学
哲学
作者
Daiana A. Capdevila,Brenna J. C. Walsh,Yifan Zhang,Christopher Dietrich,Giovanni González-Gutiérrez,David P. Giedroc
标识
DOI:10.1038/s41589-020-00671-9
摘要
Cysteine thiol-based transcriptional regulators orchestrate the coordinated regulation of redox homeostasis and other cellular processes by 'sensing' or detecting a specific redox-active molecule, which in turn activates the transcription of a specific detoxification pathway. The extent to which these sensors are truly specific in cells for a singular class of reactive small-molecule stressors, for example, reactive oxygen or sulfur species, is largely unknown. Here, we report structural and mechanistic insights into the thiol-based transcriptional repressor SqrR, which reacts exclusively with oxidized sulfur species such as persulfides, to yield a tetrasulfide bridge that inhibits DNA operator-promoter binding. Evaluation of crystallographic structures of SqrR in various derivatized states, coupled with the results of a mass spectrometry-based kinetic profiling strategy, suggest that persulfide selectivity is determined by structural frustration of the disulfide form. These findings led to the identification of an uncharacterized repressor from the bacterial pathogen Acinetobacter baumannii as a persulfide sensor.
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