Department of Pharmaceutical Sciences, University of Connecticut, Storrs, Connecticut, USA.
J Bacteriol. 2013 Jun;195(12):2817-25. doi: 10.1128/JB.02269-12. Epub 2013 Apr 12.
The motor protein SecA is a core component of the bacterial general secretory (Sec) pathway and is essential for cell viability. Despite evidence showing that SecA exists in a dynamic monomer-dimer equilibrium favoring the dimeric form in solution and in the cytoplasm, there is considerable debate as to the quaternary structural organization of the SecA dimer. Here, a site-directed photo-cross-linking technique was utilized to identify residues on the Escherichia coli SecA (ecSecA) dimer interface in the cytosol of intact cells. The feasibility of this method was demonstrated with residue Leu6, which is essential for ecSecA dimerization based on our analytical ultracentrifugation studies of SecA L6A and shown to form the cross-linked SecA dimer in vivo with p-benzoyl-phenylalanine (pBpa) substituted at position 6. Subsequently, the amino terminus (residues 2 to 11) in the nucleotide binding domain (NBD), Phe263 in the preprotein binding domain (PBD), and Tyr794 and Arg805 in the intramolecular regulator of the ATPase 1 domain (IRA1) were identified to be involved in ecSecA dimerization. Furthermore, the incorporation of pBpa at position 805 did not form a cross-linked dimer in the SecA Δ2-11 context, indicating the possibility that the amino terminus may directly contact Arg805 or that the deletion of residues 2 to 11 alters the topology of the naturally occurring ecSecA dimer.
马达蛋白 SecA 是细菌一般分泌(Sec)途径的核心组成部分,对细胞活力至关重要。尽管有证据表明 SecA 存在于有利于溶液和细胞质中二聚体形式的动态单体-二聚体平衡中,但关于 SecA 二聚体的四级结构组织仍存在相当大的争议。在这里,利用一种定点光交联技术来鉴定完整细胞细胞质中大肠杆菌 SecA(ecSecA)二聚体界面上的残基。该方法的可行性通过残基 Leu6 得到了证明,根据我们对 SecA L6A 的分析超速离心研究,该残基对于 ecSecA 二聚化是必需的,并且在体内与取代位置 6 的对苯甲酰苯丙氨酸(pBpa)形成交联的 SecA 二聚体。随后,核苷酸结合域(NBD)的氨基末端(残基 2 至 11)、前蛋白结合域(PBD)中的 Phe263 以及 ATP 酶 1 域(IRA1)中的内部调节剂 Tyr794 和 Arg805 被鉴定为参与 ecSecA 二聚化。此外,在 SecA Δ2-11 背景下,位置 805 处的 pBpa 未形成交联二聚体,这表明氨基末端可能直接与 Arg805 接触,或者残基 2 至 11 的缺失改变了天然存在的 ecSecA 二聚体的拓扑结构。