Department of Chemistry and Biochemistry, University of Maryland, Baltimore County, Baltimore, MD, 21250, USA.
Department of Chemistry and Biochemistry, University of Maryland, Baltimore County, Baltimore, MD, 21250, USA.
Biochim Biophys Acta Biomembr. 2022 Sep 1;1864(9):183973. doi: 10.1016/j.bbamem.2022.183973. Epub 2022 May 27.
Ferrous iron (Fe) transport is an essential process that supports the growth, intracellular survival, and virulence of several drug-resistant pathogens, and the ferrous iron transport (Feo) system is the most important and widespread protein complex that mediates Fe transport in these organisms. The Feo system canonically comprises three proteins (FeoA/B/C). FeoA and FeoC are both small, accessory proteins localized to the cytoplasm, and their roles in the Fe transport process have been of great debate. FeoB is the only wholly-conserved component of the Feo system and serves as the inner membrane-embedded Fe transporter with a soluble G-protein-like N-terminal domain. In vivo studies have underscored the importance of Feo during infection, emphasizing the need to better understand Feo-mediated Fe uptake, although a paucity of research exists on intact FeoB. To surmount this problem, we designed an overproduction and purification system that can be applied generally to a suite of intact FeoBs from several organisms. Importantly, we noted that FeoB is extremely sensitive to excess salt while in the membrane of a recombinant host, and we designed a workflow to circumvent this issue. We also demonstrated effective protein extraction from the lipid bilayer through small-scale solubilization studies. We then applied this approach to the large-scale purifications of Escherichia coli and Pseudomonas aeruginosa FeoBs to high purity and homogeneity. Lastly, we show that our protocol can be generally applied to various FeoB proteins. Thus, this workflow allows for isolation of suitable quantities of FeoB for future biochemical and biophysical characterization.
亚铁铁(Fe)转运是支持几种耐药病原体生长、细胞内存活和毒力的必需过程,而亚铁铁转运(Feo)系统是介导这些生物体中铁转运的最重要和最广泛的蛋白质复合物。Feo 系统通常由三种蛋白(FeoA/B/C)组成。FeoA 和 FeoC 都是小的辅助蛋白,位于细胞质中,它们在铁转运过程中的作用一直存在很大争议。FeoB 是 Feo 系统中唯一完全保守的成分,是作为具有可溶性 G 蛋白样 N 端结构域的内膜嵌入铁转运体。体内研究强调了 Feo 在感染过程中的重要性,需要更好地理解 Feo 介导的铁摄取,尽管关于完整的 FeoB 研究很少。为了解决这个问题,我们设计了一种过度表达和纯化系统,可以普遍应用于来自几种生物体的一系列完整的 FeoB。重要的是,我们注意到 FeoB 在重组宿主的膜中对过量盐非常敏感,我们设计了一种工作流程来解决这个问题。我们还通过小规模的溶解研究证明了从脂质双层中有效提取蛋白质。然后,我们将这种方法应用于大肠杆菌和铜绿假单胞菌 FeoB 的大规模纯化,以获得高纯度和均一性。最后,我们表明我们的方案可以普遍应用于各种 FeoB 蛋白。因此,该工作流程允许分离出适量的 FeoB,用于未来的生化和生物物理特性分析。