Wang Weixue, Iacob Roxana E, Luoh Rebecca P, Engen John R, Lippard Stephen J
Departments of †Chemistry and §Biological Engineering, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139, United States.
J Am Chem Soc. 2014 Jul 9;136(27):9754-62. doi: 10.1021/ja504688z. Epub 2014 Jun 24.
The hydroxylation or epoxidation of hydrocarbons by bacterial multicomponent monooxygenases (BMMs) requires the interplay of three or four protein components. How component protein interactions control catalysis, however, is not well understood. In particular, the binding sites of the reductase components on the surface of their cognate hydroxylases and the role(s) that the regulatory proteins play during intermolecular electron transfer leading to the hydroxylase reduction have been enigmatic. Here we determine the reductase binding site on the hydroxylase of a BMM enzyme, soluble methane monooxygenase (sMMO) from Methylococcus capsulatus (Bath). We present evidence that the ferredoxin domain of the reductase binds to the canyon region of the hydroxylase, previously determined to be the regulatory protein binding site as well. The latter thus inhibits reductase binding to the hydroxylase and, consequently, intermolecular electron transfer from the reductase to the hydroxylase diiron active site. The binding competition between the regulatory protein and the reductase may serve as a control mechanism for regulating electron transfer, and other BMM enzymes are likely to adopt the same mechanism.
细菌多组分单加氧酶(BMMs)催化的烃类羟化或环氧化反应需要三种或四种蛋白质组分协同作用。然而,组分蛋白之间的相互作用如何控制催化过程,目前尚不清楚。特别是,还原酶组分在其同源羟化酶表面的结合位点,以及调节蛋白在导致羟化酶还原的分子间电子转移过程中所起的作用一直是个谜。在此,我们确定了一种BMM酶——来自荚膜甲基球菌(巴斯)的可溶性甲烷单加氧酶(sMMO)——的羟化酶上的还原酶结合位点。我们提供的证据表明,还原酶的铁氧化还原蛋白结构域与羟化酶的峡谷区域结合,该区域先前也被确定为调节蛋白的结合位点。因此,调节蛋白会抑制还原酶与羟化酶的结合,进而抑制从还原酶到羟化酶双铁活性位点的分子间电子转移。调节蛋白与还原酶之间的结合竞争可能是调节电子转移的一种控制机制,其他BMM酶可能也采用相同的机制。