Bolon Daniel N, Grant Robert A, Baker Tania A, Sauer Robert T
Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139 USA.
Mol Cell. 2004 Nov 5;16(3):343-50. doi: 10.1016/j.molcel.2004.10.001.
The SspB adaptor enhances ClpXP degradation by binding the ssrA degradation tag of substrates and the AAA+ ClpX unfoldase. To probe the mechanism of substrate delivery, we engineered a disulfide bond between the ssrA tag and SspB and demonstrated otherwise normal interactions by solving the crystal structure. Although the covalent link prevents adaptor.substrate dissociation, ClpXP degraded GFP-ssrA that was disulfide bonded to the adaptor. Thus, crosslinked substrate must be handed directly from SspB to ClpX. The ssrA tag in the covalent adaptor complex interacted with ClpX.ATPgammaS but not ClpX.ADP, suggesting that handoff occurs in the ATP bound enzyme. By contrast, SspB alone bound ClpX in both nucleotide states. Similar handoff mechanisms will undoubtedly be used by many AAA+ adaptors and enzymes, allowing assembly of delivery complexes in either nucleotide state, engagement of the recognition tag in the ATP state, and application of an unfolding force to the attached protein following hydrolysis.
SspB衔接蛋白通过结合底物的ssrA降解标签和AAA+ ClpX解折叠酶来增强ClpXP的降解作用。为了探究底物传递的机制,我们在ssrA标签和SspB之间构建了一个二硫键,并通过解析晶体结构证明了其他正常的相互作用。尽管共价连接阻止了衔接蛋白-底物的解离,但ClpXP仍能降解与衔接蛋白形成二硫键的GFP-ssrA。因此,交联的底物必须直接从SspB传递给ClpX。共价衔接蛋白复合物中的ssrA标签与ClpX.ATPγS相互作用,但不与ClpX.ADP相互作用,这表明传递发生在结合ATP的酶中。相比之下,单独的SspB在两种核苷酸状态下都能与ClpX结合。许多AAA+衔接蛋白和酶无疑会采用类似的传递机制,允许在任何一种核苷酸状态下组装传递复合物,在ATP状态下识别标签,以及在水解后对附着的蛋白质施加解折叠力。