Duan H Diessel, Jain Bhawik K, Li Hua, Graham Todd R, Li Huilin
Department of Structural Biology, Van Andel Institute, Grand Rapids, MI, USA.
Department of Biological Sciences, Vanderbilt University, Nashville, TN, USA.
Nat Commun. 2024 Mar 2;15(1):1942. doi: 10.1038/s41467-024-46304-w.
Arl1 is an Arf-like (Arl) GTP-binding protein that interacts with the guanine nucleotide exchange factor Gea2 to recruit the golgin Imh1 to the Golgi. The Arl1-Gea2 complex also binds and activates the phosphatidylserine flippase Drs2 and these functions may be related, although the underlying molecular mechanism is unclear. Here we report high-resolution cryo-EM structures of the full-length Gea2 and the Arl1-Gea2 complex. Gea2 is a large protein with 1459 residues and is composed of six domains (DCB, HUS, SEC7, HDS1-3). We show that Gea2 assembles a stable dimer via an extensive interface involving hydrophobic and electrostatic interactions in the DCB and HUS region. Contrary to the previous report on a Gea2 homolog in which Arl1 binds to the dimerization surface of the DCB domain, implying a disrupted dimer upon Arl1 binding, we find that Arl1 binds to the outside surface of the Gea2 DCB domain, leaving the Gea2 dimer intact. The interaction between Arl1 and Gea2 involves the classic FWY aromatic residue triad as well as two Arl1-specific residues. We show that key mutations that disrupt the Arl1-Gea2 interaction abrogate Imh1 Golgi association. This work clarifies the Arl1-Gea2 interaction and improves our understanding of molecular events in the membrane trafficking.
Arl1是一种类Arf(Arl)GTP结合蛋白,它与鸟嘌呤核苷酸交换因子Gea2相互作用,将高尔基体蛋白Imh1招募至高尔基体。Arl1 - Gea2复合物还能结合并激活磷脂酰丝氨酸翻转酶Drs2,尽管其潜在分子机制尚不清楚,但这些功能可能存在关联。在此,我们报告了全长Gea2以及Arl1 - Gea2复合物的高分辨率冷冻电镜结构。Gea2是一个含有1459个残基的大蛋白,由六个结构域(DCB、HUS、SEC7、HDS1 - 3)组成。我们发现,Gea2通过DCB和HUS区域中广泛的疏水和静电相互作用形成稳定的二聚体。与之前关于Gea2同源物的报道相反,之前的报道称Arl1与DCB结构域的二聚化表面结合,这意味着Arl1结合后二聚体被破坏,而我们发现Arl1与Gea2的DCB结构域的外表面结合,Gea2二聚体保持完整。Arl1与Gea2之间的相互作用涉及经典的FWY芳香族残基三联体以及两个Arl1特有的残基。我们发现,破坏Arl1 - Gea2相互作用的关键突变会消除Imh1与高尔基体的结合。这项工作阐明了Arl1 - Gea2的相互作用,增进了我们对膜运输中分子事件的理解。