Williamson Jessica A, Cho Seung-Hyun, Ye Jiqing, Collet Jean-Francois, Beckwith Jonathan R, Chou James J
Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts, USA.
WELBIO, Brussels, Belgium.
Nat Struct Mol Biol. 2015 Oct;22(10):809-14. doi: 10.1038/nsmb.3099. Epub 2015 Sep 21.
The mechanism by which transmembrane reductases use a single pair of cysteine residues to relay electrons between protein substrates across biological membranes is a long-standing mystery in thiol-redox biochemistry. Here we show the NMR structure of a reduced-state mimic of archaeal CcdA, a protein that transfers electrons across the inner membrane, by using a redox-active NMR sample. The two cysteine positions in CcdA are separated by 20 Å. Whereas one is accessible to the cytoplasm, the other resides in the protein core, thus implying that conformational exchange is required for periplasmic accessibility. In vivo mixed disulfide-trapping experiments validated the functional positioning of the cysteines, and in vitro accessibility results confirmed conformational exchange. Our NMR and functional data together show the existence of multiple conformational states and suggest a four-state model for relaying electrons from cytosolic to periplasmic redox substrates.
跨膜还原酶利用一对半胱氨酸残基在生物膜上的蛋白质底物之间传递电子的机制,在硫醇-氧化还原生物化学领域一直是个长期未解之谜。在此,我们通过使用具有氧化还原活性的核磁共振(NMR)样品,展示了古菌CcdA(一种跨内膜传递电子的蛋白质)还原态模拟物的NMR结构。CcdA中的两个半胱氨酸位置相隔20 Å。其中一个可接近细胞质,另一个位于蛋白质核心区域,这意味着周质可及性需要构象交换。体内混合二硫键捕获实验验证了半胱氨酸的功能定位,体外可及性结果证实了构象交换。我们的NMR和功能数据共同表明存在多种构象状态,并提出了一个从胞质氧化还原底物向周质氧化还原底物传递电子的四态模型。