St Maurice Martin, Reinhardt Laurie, Surinya Kathy H, Attwood Paul V, Wallace John C, Cleland W Wallace, Rayment Ivan
Department of Biochemistry, University of Wisconsin, Madison, WI 53706, USA.
Science. 2007 Aug 24;317(5841):1076-9. doi: 10.1126/science.1144504.
Biotin-dependent multifunctional enzymes carry out metabolically important carboxyl group transfer reactions and are potential targets for the treatment of obesity and type 2 diabetes. These enzymes use a tethered biotin cofactor to carry an activated carboxyl group between distantly spaced active sites. The mechanism of this transfer has remained poorly understood. Here we report the complete structure of pyruvate carboxylase at 2.0 angstroms resolution, which shows its domain arrangement. The structure, when combined with mutagenic analysis, shows that intermediate transfer occurs between active sites on separate polypeptide chains. In addition, domain rearrangements associated with activator binding decrease the distance between active-site pairs, providing a mechanism for allosteric activation. This description provides insight into the function of biotin-dependent enzymes and presents a new paradigm for multifunctional enzyme catalysis.
生物素依赖性多功能酶催化具有重要代谢意义的羧基转移反应,是治疗肥胖症和2型糖尿病的潜在靶点。这些酶利用一个连接的生物素辅因子在相距较远的活性位点之间携带活化的羧基。这种转移机制一直未得到充分理解。在此,我们报告了丙酮酸羧化酶在2.0埃分辨率下的完整结构,该结构展示了其结构域排列。该结构与诱变分析相结合表明,中间转移发生在不同多肽链上的活性位点之间。此外,与激活剂结合相关的结构域重排缩短了活性位点对之间的距离,为别构激活提供了一种机制。这一描述为生物素依赖性酶的功能提供了深入了解,并为多功能酶催化提出了一种新范式。