Baud Catherine, Karamanou Spyridoula, Sianidis Giorgos, Vrontou Eleftheria, Politou Anastasia S, Economou Anastassios
Institute of Molecular Biology and Biotechnology, Foundation of Research and Technology-Hellas, Department of Biology, University of Crete, P.O. Box 1527, GR-711 10 Iraklio, Crete, Greece.
J Biol Chem. 2002 Apr 19;277(16):13724-31. doi: 10.1074/jbc.M200047200. Epub 2002 Feb 1.
SecA, the preprotein translocase ATPase is built of an amino-terminal DEAD helicase motor domain bound to a regulatory C-domain. SecA recognizes mature and signal peptide preprotein regions. We now demonstrate that the amino-terminal 263 residues of the ATPase subdomain of the DEAD motor are necessary and sufficient for high affinity signal peptide binding. Binding is abrogated by deletion of residues 219-244 that lie within SSD, a novel substrate specificity element of the ATPase subdomain. SSD is essential for protein translocation, is unique to SecA, and is absent from other DEAD proteins. Signal peptide binding to the DEAD motor is controlled in trans by the C-terminal intramolecular regulator of ATPase (IRA1) switch. IRA1 mutations that activate the DEAD motor ATPase also enhance signal peptide affinity. This mechanism coordinates signal peptide binding with ATPase activation. Signal peptide binding causes widespread conformational changes to the ATPase subdomain and inhibits the DEAD motor ATPase. This involves an allosteric mechanism, since binding occurs at sites that are distinct from the catalytic ATPase determinants. Our data reveal the physical determinants and sophisticated intramolecular regulation that allow signal peptides to act as allosteric effectors of the SecA motor.
前体蛋白转位酶ATP酶SecA由与调节性C结构域结合的氨基末端DEAD解旋酶运动结构域构成。SecA可识别成熟和信号肽前体蛋白区域。我们现在证明,DEAD运动结构域的ATP酶亚结构域的氨基末端263个残基对于高亲和力信号肽结合是必要且充分的。位于SSD(ATP酶亚结构域的一种新型底物特异性元件)内的219 - 244位残基缺失会消除结合。SSD对于蛋白质转位至关重要,是SecA所特有的,在其他DEAD蛋白中不存在。信号肽与DEAD运动结构域的结合由ATP酶(IRA1)开关的C末端分子内调节因子反式控制。激活DEAD运动结构域ATP酶的IRA1突变也会增强信号肽亲和力。这种机制将信号肽结合与ATP酶激活协调起来。信号肽结合会导致ATP酶亚结构域发生广泛的构象变化,并抑制DEAD运动结构域ATP酶。这涉及一种变构机制,因为结合发生在与催化性ATP酶决定因素不同的位点。我们的数据揭示了使信号肽能够作为SecA运动结构域变构效应器的物理决定因素和复杂的分子内调节机制。