Department of Biochemistry, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461, USA.
J Am Chem Soc. 2010 May 19;132(19):6626-7. doi: 10.1021/ja101231a.
Glycosyltransferase enzymes play important roles in numerous cellular pathways. Despite their participation in many therapeutically relevant pathways, there is a paucity of information on how to effectively inhibit this class of enzymes. Here we report that UDP-(5F)-GlcNAc acts as a slow-binding, competitive inhibitor of the retaining glycosyltransferase MshA from Corynebacterium glutamicum (K(i) approximately 1.6 muM). The kinetic data are consistent with a single-step inhibition mechanism whose equilibration is slow relative to catalysis. We believe that this is the first slow-onset inhibitor to be reported for the glycosyltransferase family of enzymes. The potent inhibition of the enzyme by the fluoro-substituted substrate is consistent with the involvement of an oxocarbenium transition-state structure, which has been previously proposed for this family of enzymes. Additionally, although several members of the GT-B enzyme family, including MshA, have been shown to undergo a conformational change upon UDP-GlcNAc binding, the kinetic data are inconsistent with a two-step inhibition mechanism. This suggests that there may be other conformations of the enzyme that are useful for the design of inhibitors against the large family of GT-B glycosyltransferase enzymes.
糖基转移酶在许多细胞途径中发挥着重要作用。尽管它们参与了许多治疗相关的途径,但关于如何有效地抑制这类酶的信息却很少。在这里,我们报告 UDP-(5F)-GlcNAc 是一种缓慢结合的竞争性抑制剂,可抑制谷氨酸棒杆菌(Corynebacterium glutamicum)的保留型糖基转移酶 MshA(K(i)约为 1.6 μM)。动力学数据与单步抑制机制一致,其平衡相对于催化过程较慢。我们相信这是第一个报道的糖基转移酶家族的缓慢起始抑制剂。氟取代底物对酶的强烈抑制与涉及氧杂碳正离子过渡态结构一致,该结构先前已被提出用于该酶家族。此外,尽管包括 MshA 在内的 GT-B 酶家族的几个成员已被证明在 UDP-GlcNAc 结合时会发生构象变化,但动力学数据与两步抑制机制不一致。这表明可能存在其他有用的酶构象,可用于设计针对大型 GT-B 糖基转移酶酶家族的抑制剂。