Tianjin Key Laboratory for Modern Drug Delivery & High-Efficiency, Collaborative Innovation Center of Chemical Science and Engineering, School of Pharmaceutical Science and Technology, Tianjin University, Tianjin 300072, China.
Frontiers Science Center for Synthetic Biology (Ministry of Education), Tianjin University, Tianjin 300072, China.
Biosci Rep. 2022 Jun 30;42(6). doi: 10.1042/BSR20212665.
Saccharomyces cerevisiae Grx3 and Grx4 are multidomain monothiol glutaredoxins that are redundant with each other. They can be efficiently complemented by heterologous expression of their mammalian ortholog, PICOT, which has been linked to tumor development and embryogenesis. PICOT is now believed to act as a chaperone distributing Fe-S clusters, although the first link to iron metabolism was observed with its yeast counterparts. Like PICOT, yeast Grx3 and Grx4 reside in the cytosol and nucleus where they form unusual Fe-S clusters coordinated by two glutaredoxins with CGFS motifs and two molecules of glutathione. Depletion or deletion of Grx3/Grx4 leads to functional impairment of virtually all cellular iron-dependent processes and loss of cell viability, thus making these genes the most upstream components of the iron utilization system. Nevertheless, the Δgrx3/4 double mutant in the BY4741 genetic background is viable and exhibits slow but stable growth under hypoxic conditions. Upon exposure to air, growth of the double deletion strain ceases, and suppressor mutants appear. Adopting a high copy-number library screen approach, we discovered novel genetic interactions: overexpression of ESL1, ESL2, SOK1, SFP1 or BDF2 partially rescues growth and iron utilization defects of Δgrx3/4. This genetic escape from the requirement for Grx3/Grx4 has not been previously described. Our study shows that even a far-upstream component of the iron regulatory machinery (Grx3/4) can be bypassed, and cellular networks involving RIM101 pH sensing, cAMP signaling, mTOR nutritional signaling, or bromodomain acetylation, may confer the bypassing activities.
酿酒酵母 Grx3 和 Grx4 是具有多个结构域的单硫醇谷氧还蛋白,彼此冗余。它们可以通过异源表达其哺乳动物同源物 PICOT 得到有效互补,PICOT 与肿瘤发生和胚胎发生有关。PICOT 现在被认为作为一种伴侣蛋白分配 Fe-S 簇,尽管最初与铁代谢的联系是在其酵母对应物中观察到的。与 PICOT 一样,酵母 Grx3 和 Grx4 存在于细胞质和细胞核中,在那里它们形成由具有 CGFS 基序的两个谷氧还蛋白和两个谷胱甘肽分子协调的异常 Fe-S 簇。Grx3/Grx4 的耗尽或缺失导致几乎所有细胞铁依赖性过程的功能障碍和细胞活力丧失,因此使这些基因成为铁利用系统的最上游成分。然而,在 BY4741 遗传背景下的 Δgrx3/4 双缺失突变体是可行的,并在低氧条件下表现出缓慢但稳定的生长。暴露于空气中时,双缺失菌株的生长停止,并且出现抑制突变体。采用高拷贝数文库筛选方法,我们发现了新的遗传相互作用:ESL1、ESL2、SOK1、SFP1 或 BDF2 的过表达部分挽救了 Δgrx3/4 的生长和铁利用缺陷。这种从 Grx3/4 需求中逃脱的遗传逃逸以前没有被描述过。我们的研究表明,即使是铁调节机制的远上游成分(Grx3/4)也可以被绕过,并且涉及 RIM101 pH 感应、cAMP 信号、mTOR 营养信号或溴结构域乙酰化的细胞网络可能赋予绕过活性。