Jogl Gerwald, Rozovsky Sharon, McDermott Ann E, Tong Liang
Department of Biological Sciences, Columbia University, New York, NY 10027, USA.
Proc Natl Acad Sci U S A. 2003 Jan 7;100(1):50-5. doi: 10.1073/pnas.0233793100. Epub 2002 Dec 30.
In enzyme catalysis, where exquisitely positioned functionality is the sine qua non, atomic coordinates for a Michaelis complex can provide powerful insights into activation of the substrate. We focus here on the initial proton transfer of the isomerization reaction catalyzed by triosephosphate isomerase and present the crystal structure of its Michaelis complex with the substrate dihydroxyacetone phosphate at near-atomic resolution. The active site is highly compact, with unusually short and bifurcated hydrogen bonds for both catalytic Glu-165 and His-95 residues. The carboxylate oxygen of the catalytic base Glu-165 is positioned in an unprecedented close interaction with the ketone and the alpha-hydroxy carbons of the substrate (C em leader O approximately 3.0 A), which is optimal for the proton transfer involving these centers. The electrophile that polarizes the substrate, His-95, has close contacts to the substrate's O1 and O2 (N em leader O < or = 3.0 and 2.6 A, respectively). The substrate is conformationally relaxed in the Michaelis complex: the phosphate group is out of the plane of the ketone group, and the hydroxy and ketone oxygen atoms are not in the cisoid configuration. The epsilon ammonium group of the electrophilic Lys-12 is within hydrogen-bonding distance of the substrate's ketone oxygen, the bridging oxygen, and a terminal phosphate's oxygen, suggesting a role for this residue in both catalysis and in controlling the flexibility of active-site loop.
在酶催化过程中,精确排列的官能团是必不可少的条件,米氏复合物的原子坐标能够为底物的活化提供有力的见解。我们在此聚焦于磷酸丙糖异构酶催化的异构化反应的初始质子转移,并以近原子分辨率呈现其与底物磷酸二羟丙酮的米氏复合物的晶体结构。活性位点高度紧凑,催化性谷氨酸-165和组氨酸-95残基都具有异常短且分叉的氢键。催化碱谷氨酸-165的羧基氧与底物的酮基和α-羟基碳形成了前所未有的紧密相互作用(C到O约为3.0 Å),这对于涉及这些中心的质子转移是最佳的。使底物极化的亲电试剂组氨酸-95与底物的O1和O2有紧密接触(N到O分别小于或等于3.0 Å和2.6 Å)。底物在米氏复合物中构象松弛:磷酸基团不在酮基团的平面内,羟基和酮基氧原子不处于顺式构型。亲电赖氨酸-12的ε-铵基团与底物的酮基氧、桥连氧和末端磷酸的氧处于氢键距离内,表明该残基在催化和控制活性位点环的灵活性方面都发挥作用。