Ghanbarpour Alireza, Telusma Bertina, Powell Barrett M, Zhang Jia Jia, Bolstad Isabella, Vargas Carolyn, Keller Sandro, Baker Tania, Sauer Robert T, Davis Joseph H
Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139.
Department of Biochemistry and Molecular Biophysics, Washington University in St. Louis, St. Louis, MO 63110.
bioRxiv. 2024 Aug 10:2024.08.09.604662. doi: 10.1101/2024.08.09.604662.
FtsH, a AAA protease, associates with HflK/C subunits to form a megadalton complex that spans the inner membrane and extends into the periplasm of . How this complex and homologous assemblies in eukaryotic organelles recruit, extract, and degrade membrane-embedded substrates is unclear. Following overproduction of protein components, recent cryo-EM structures reveal symmetric HflK/C cages surrounding FtsH in a manner proposed to inhibit degradation of membrane-embedded substrates. Here, we present structures of native complexes in which HflK/C instead forms an asymmetric nautilus-like assembly with an entryway for membrane-embedded substrates to reach and be engaged by FtsH. Consistent with this nautilus-like structure, proteomic assays suggest that HflK/C enhances FtsH degradation of certain membrane-embedded substrates. The membrane curvature in our FtsH•HflK/C complexes is opposite that of surrounding membrane regions, a property that correlates with lipid-scramblase activity and possibly with FtsH's function in the degradation of membrane-embedded proteins.
FtsH是一种AAA蛋白酶,它与HflK/C亚基结合形成一个百万道尔顿的复合物,该复合物跨越内膜并延伸到周质空间。目前尚不清楚这种复合物以及真核细胞器中的同源组件是如何招募、提取和降解膜嵌入底物的。在蛋白质成分过量表达后,最近的冷冻电镜结构显示,HflK/C以一种被认为可抑制膜嵌入底物降解的方式,围绕FtsH形成对称的笼子。在此,我们展示了天然复合物的结构,其中HflK/C形成了一个不对称的鹦鹉螺状组件,有一个入口通道,使膜嵌入底物能够到达FtsH并被其作用。与这种鹦鹉螺状结构一致,蛋白质组学分析表明,HflK/C增强了FtsH对某些膜嵌入底物的降解作用。我们的FtsH•HflK/C复合物中的膜曲率与周围膜区域相反,这一特性与脂质翻转酶活性相关,可能也与FtsH在膜嵌入蛋白降解中的功能相关。