Rankin Joel A, Mauban Robert C, Fellner Matthias, Desguin Benoît, McCracken John, Hu Jian, Varganov Sergey A, Hausinger Robert P
Department of Chemistry , University of Nevada , Reno , Nevada 89557 , United States.
Institute of Life Sciences , Université catholique de Louvain , B-1348 Louvain-La-Neuve , Belgium.
Biochemistry. 2018 Jun 12;57(23):3244-3251. doi: 10.1021/acs.biochem.8b00100. Epub 2018 Mar 9.
Lactate racemase (LarA) of Lactobacillus plantarum contains a novel organometallic cofactor with nickel coordinated to a covalently tethered pincer ligand, pyridinium-3-thioamide-5-thiocarboxylic acid mononucleotide, but its function in the enzyme mechanism has not been elucidated. This study presents direct evidence that the nickel-pincer cofactor facilitates a proton-coupled hydride transfer (PCHT) mechanism during LarA-catalyzed lactate racemization. No signal was detected by electron paramagnetic resonance spectroscopy for LarA in the absence or presence of substrate, consistent with a +2 metal oxidation state and inconsistent with a previously proposed proton-coupled electron transfer mechanism. Pyruvate, the predicted intermediate for a PCHT mechanism, was observed in quenched solutions of LarA. A normal substrate kinetic isotope effect ( k/ k of 3.11 ± 0.17) was established using 2-α-H-lactate, further supporting a PCHT mechanism. UV-visible spectroscopy revealed a lactate-induced perturbation of the cofactor spectrum, notably increasing the absorbance at 340 nm, and demonstrated an interaction of the cofactor with the inhibitor sulfite. A crystal structure of LarA provided greater resolution (2.4 Å) than previously reported and revealed sulfite binding to the pyridinium C4 atom of the reduced pincer cofactor, mimicking hydride reduction during a PCHT catalytic cycle. Finally, computational modeling supports hydride transfer to the cofactor at the C4 position or to the nickel atom, but with formation of a nickel-hydride species requiring dissociation of the His200 metal ligand. In aggregate, these studies provide compelling evidence that the nickel-pincer cofactor acts by a PCHT mechanism.
植物乳杆菌的乳酸消旋酶(LarA)含有一种新型有机金属辅因子,其中镍与一个共价连接的钳形配体吡啶鎓-3-硫代酰胺-5-硫代羧酸单核苷酸配位,但其在酶促机制中的功能尚未阐明。本研究提供了直接证据,表明镍-钳形辅因子在LarA催化的乳酸消旋化过程中促进了质子耦合氢化物转移(PCHT)机制。在不存在或存在底物的情况下,电子顺磁共振光谱均未检测到LarA的信号,这与+2价金属氧化态一致,与先前提出的质子耦合电子转移机制不一致。在LarA的猝灭溶液中观察到了丙酮酸,这是PCHT机制的预测中间体。使用2-α-H-乳酸建立了正常的底物动力学同位素效应(k/k为3.11±0.17),进一步支持了PCHT机制。紫外可见光谱显示乳酸诱导了辅因子光谱的扰动,特别是增加了340nm处的吸光度,并证明了辅因子与抑制剂亚硫酸盐的相互作用。LarA的晶体结构提供了比先前报道更高的分辨率(2.4 Å),并揭示了亚硫酸盐与还原型钳形辅因子的吡啶鎓C4原子结合,模拟了PCHT催化循环中的氢化物还原。最后,计算模型支持氢化物在C4位置转移到辅因子或镍原子,但形成镍-氢化物物种需要His200金属配体解离。总的来说,这些研究提供了令人信服的证据,表明镍-钳形辅因子通过PCHT机制起作用。