Kim Hyunkeun, Lee Hwiseop, Shin Dongwoo
Department of Molecular Cell Biology, Samsung Biomedical Research Institute, Sungkyunkwan University School of Medicine, Suwon, South Korea.
Department of Molecular Cell Biology, Samsung Biomedical Research Institute, Sungkyunkwan University School of Medicine, Suwon, South Korea
J Bacteriol. 2015 Jan 1;197(1):92-8. doi: 10.1128/JB.01826-14. Epub 2014 Oct 13.
The Salmonella Feo system consists of the FeoA, FeoB, and FeoC proteins and mediates ferrous iron [Fe(II)] import. FeoB is an inner membrane protein that, along with contributions from two small hydrophilic proteins, FeoA and FeoC, transports Fe(II). We previously reported that FeoC binds to and protects the FeoB transporter from FtsH-mediated proteolysis. In the present study, we report proteolytic regulation of FeoC that occurs in an oxygen-dependent fashion. While relatively stable under low-oxygen conditions, FeoC was rapidly degraded by the Lon protease under high-oxygen conditions. The putative Fe-S cluster of FeoC seemed to function as an oxygen sensor to control FeoC stability, as evidenced by the finding that mutation of the putative Fe-S cluster-binding site greatly increased FeoC stability under high-oxygen conditions. Salmonella ectopically expressing the feoB and feoC genes was able to accumulate FeoB and FeoC only under low-oxygen conditions, suggesting that FeoC proteolysis prevents Salmonella from accumulating the FeoB transporter under high-oxygen conditions. Finally, we propose that Lon-mediated FeoC proteolysis followed by FtsH-mediated FeoB proteolysis helps Salmonella to avoid uncontrolled Fe(II) uptake during the radical environmental changes encountered when shifting from low-iron anaerobic conditions to high-iron aerobic conditions.
沙门氏菌的Feo系统由FeoA、FeoB和FeoC蛋白组成,介导亚铁离子[Fe(II)]的导入。FeoB是一种内膜蛋白,它与两种小的亲水性蛋白FeoA和FeoC共同作用,运输Fe(II)。我们之前报道过FeoC与FeoB转运蛋白结合,并保护其免受FtsH介导的蛋白水解作用。在本研究中,我们报道了FeoC以氧依赖的方式发生蛋白水解调控。FeoC在低氧条件下相对稳定,但在高氧条件下会被Lon蛋白酶迅速降解。FeoC假定的铁硫簇似乎作为氧传感器来控制FeoC的稳定性,这一发现表明,假定的铁硫簇结合位点发生突变会在高氧条件下大大增加FeoC的稳定性。异位表达feoB和feoC基因的沙门氏菌仅在低氧条件下能够积累FeoB和FeoC,这表明FeoC的蛋白水解作用可防止沙门氏菌在高氧条件下积累FeoB转运蛋白。最后,我们提出,Lon介导的FeoC蛋白水解作用以及随后FtsH介导的FeoB蛋白水解作用,有助于沙门氏菌在从低铁厌氧条件转变为高铁需氧条件时遇到的剧烈环境变化期间,避免不受控制地摄取Fe(II)。