Huang Yehong, Wang Yuxuan, Pan Matthew, Wan Danny, Wang Lingling, Fondell Joseph D, Wu Xiang, Zhong Guangming, Fan Huizhou
Department of Pediatrics, Xiangya Hospital, Central South University, Changsha, Hunan 410008, China.
Department of Pharmacology, Robert Wood Johnson Medical School, Rutgers University, Piscataway, NJ 08854, USA.
bioRxiv. 2025 May 30:2025.05.30.657042. doi: 10.1101/2025.05.30.657042.
Bacterial stress responses rely on transcriptional regulation by sigma factors and repressors. In , which lacks a dedicated heat shock sigma factor, repressor HrcA limits chaperone gene expression under non-stressed conditions. While HrcA function may be enhanced by the chaperone GroESL in a positive feedback loop, here we identify a heat-induced negative feedback loop mediated by HagF, a protein unique to Chlamydiota and conserved across species. We show that HrcA represses , but heat shock induces expression, leading to HagF accumulation and binding to HrcA. Structural modeling and pulldown assays indicate that HagF blocks HrcA dimerization, impairing DNA binding. This relieves repression of the operon and promotes secondary differentiation in the developmental cycle, enabling infectious elementary bodies to form under heat stress. Our findings reveal dual feedback regulation that tunes chaperone gene expression and illustrate how transcriptional repression can be modulated in a minimal-genome pathogen.
细菌应激反应依赖于由σ因子和阻遏物进行的转录调控。在缺乏专门的热休克σ因子的[具体物种未提及]中,阻遏物HrcA在非应激条件下限制伴侣蛋白基因的表达。虽然伴侣蛋白GroESL可能通过正反馈回路增强HrcA的功能,但在这里我们发现了一个由HagF介导的热诱导负反馈回路,HagF是衣原体特有的一种蛋白质,在[具体物种未提及]物种中保守。我们表明,HrcA抑制[具体基因未提及],但热休克诱导[具体基因未提及]表达,导致HagF积累并与HrcA结合。结构建模和下拉实验表明,HagF阻止HrcA二聚化,损害DNA结合。这解除了对[具体操纵子未提及]操纵子的抑制,并促进发育周期中的二次分化,使感染性原体在热应激下形成。我们的发现揭示了调节伴侣蛋白基因表达的双重反馈调节,并说明了在最小基因组病原体中如何调节转录抑制。