Smar M, Short S A, Wolfenden R
Department of Biochemistry and Biophysics, University of North Carolina, Chapel Hill 27599.
Biochemistry. 1991 Aug 13;30(32):7908-12. doi: 10.1021/bi00246a006.
In the absence of acceptors nucleoside 2-deoxyribosyltransferase catalyzes the slow hydrolysis of 2'-deoxynucleosides. During this hydrolytic reaction, D-ribal (1,4-anhydro-2-deoxy-D-erythro-pent-1-enitol), a glycal of ribose hitherto encountered only as a reagent in organic synthesis, is generated spontaneously, disappearing later as 2'-deoxynucleoside hydrolysis approaches completion. Nucleoside 2-deoxyribosyltransferase is found to catalyze the hydration of D-ribal in the absence of nucleic acid bases and the synthesis of deoxyribonucleosides from ribal in their presence, affording a new method for the preparation of 2'-deoxyribonucleosides. The stereochemistry of nucleoside formation from ribal supports the intervention of deoxyribosyl-enzyme intermediate. The equilibrium constant for the covalent hydration of ribal is found to be approximately 65.
在没有受体的情况下,核苷2-脱氧核糖基转移酶催化2'-脱氧核苷的缓慢水解。在这个水解反应过程中,D-核糖醛(1,4-脱水-2-脱氧-D-赤藓糖-1-烯醇),一种迄今仅在有机合成中作为试剂遇到的核糖糖醇,会自发产生,随后随着2'-脱氧核苷水解接近完成而消失。发现核苷2-脱氧核糖基转移酶在没有核酸碱基的情况下催化D-核糖醛的水合反应,并在有核酸碱基存在时由核糖醛合成脱氧核苷,从而提供了一种制备2'-脱氧核苷的新方法。由核糖醛形成核苷的立体化学支持脱氧核糖基-酶中间体的介入。发现核糖醛共价水合的平衡常数约为65。