T.C. Jenkins Department of Biophysics, Johns Hopkins University, Baltimore, Maryland, USA.
Protein Sci. 2023 Apr;32(4):e4592. doi: 10.1002/pro.4592.
Outer membrane protein (OMP) biogenesis in gram-negative bacteria is managed by a network of periplasmic chaperones that includes SurA, Skp, and FkpA. These chaperones bind unfolded OMPs (uOMPs) in dynamic conformational ensembles to suppress aggregation, facilitate diffusion across the periplasm, and enhance folding. FkpA primarily responds to heat-shock stress, but its mechanism is comparatively understudied. To determine FkpA chaperone function in the context of OMP folding, we monitored the folding of three OMPs and found that FkpA, unlike other periplasmic chaperones, increases the folded yield but decreases the folding rate of OMPs. The results indicate that FkpA behaves as a chaperone and not as a folding catalyst to influence the OMP folding trajectory. Consistent with the folding assay results, FkpA binds all three uOMPs as determined by sedimentation velocity (SV) and photo-crosslinking experiments. We determine the binding affinity between FkpA and uOmpA by globally fitting SV titrations and find it to be intermediate between the known affinities of Skp and SurA for uOMP clients. Notably, complex formation steeply depends on the urea concentration, suggesting an extensive binding interface. Initial characterizations of the complex using photo-crosslinking indicate that the binding interface spans the entire FkpA molecule. In contrast to prior findings, folding and binding experiments performed using subdomain constructs of FkpA demonstrate that the full-length chaperone is required for full activity. Together these results support that FkpA has a distinct and direct effect on OMP folding that it achieves by utilizing an extensive chaperone-client interface to tightly bind clients.
革兰氏阴性菌外膜蛋白 (OMP) 的生物发生由一系列周质伴侣蛋白管理,其中包括 SurA、Skp 和 FkpA。这些伴侣蛋白结合未折叠的 OMP(uOMP),形成动态构象集合体,以抑制聚集、促进穿过周质的扩散,并增强折叠。FkpA 主要响应热休克应激,但它的机制相对研究较少。为了确定 FkpA 在 OMP 折叠背景下的伴侣蛋白功能,我们监测了三种 OMP 的折叠,发现 FkpA 与其他周质伴侣蛋白不同,它增加了折叠产物的产量,但降低了 OMP 的折叠速度。结果表明,FkpA 作为伴侣蛋白而不是折叠催化剂来影响 OMP 折叠轨迹。与折叠测定结果一致,通过沉降速度(SV)和光交联实验确定 FkpA 结合所有三种 uOMP。我们通过全局拟合 SV 滴定确定 FkpA 与 uOmpA 之间的结合亲和力,并发现其介于 Skp 和 SurA 与 uOMP 客户之间的已知亲和力之间。值得注意的是,复合物的形成强烈依赖于尿素浓度,表明存在广泛的结合界面。使用光交联对复合物进行的初步特性分析表明,结合界面跨越整个 FkpA 分子。与先前的发现相反,使用 FkpA 的亚结构域构建体进行的折叠和结合实验表明,全长伴侣蛋白对于完全活性是必需的。这些结果共同表明,FkpA 对 OMP 折叠具有独特且直接的影响,它通过利用广泛的伴侣蛋白-客户界面紧密结合客户来实现这一影响。