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On the mechanism of action of ribonuclease A: relevance of enzymatic studies with a p-nitrophenylphosphate ester and a thiophosphate ester.

机译:关于核糖核酸酶A的作用机理:与对硝基苯基磷酸酯和硫代磷酸酯进行酶学研究的相关性。

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摘要

It has been reported that His-119 of ribonuclease A plays a major role as an imidazolium ion acid catalyst in the cyclization/cleavage of normal dinucleotides but that it is not needed for the cyclization/cleavage of 3'-uridyl p-nitrophenyl phosphate. We see that this is also true for simple buffer catalysis, where imidazole (as in His-12 of the enzyme), but not imidazolium ion, plays a significant catalytic role with the nitrophenyl substrate, but both are catalytic for normal dinucleotides such as uridyluridine. Rate studies show that the enzyme catalyzes the cyclization of the nitrophenylphosphate derivative 47,000,000 times less effectively (kcat/kuncat) than it does uridyladenosine, indicating that approximately 50% of the catalytic free energy change is lost with this substrate. This suggests that the nitrophenyl substrate is not correctly bound to take full advantage of the catalytic groups of the enzyme and is thus not a good guide to the mechanism used by normal nucleotides. The published data on kinetic effects with ribonuclease A of substituting thiophosphate groups for the phosphate groups of normal substrates has been discussed elsewhere, and it was argued that these effects are suggestive of the classical mechanism for ribonuclease action, not the novel mechanism we have recently proposed. The details of these rate effects, including stereochemical preferences in the thiophosphate series, can be invoked as support for our newer mechanism.
机译:据报道,核糖核酸酶A的His-119在正常二核苷酸的环化/切割中作为咪唑鎓离子酸催化剂起主要作用,但是对于3'-尿苷基对硝基苯基磷酸酯的环化/切割则不需要。我们发现,对于简单的缓冲液催化也是如此,其中咪唑(如酶的His-12中一样),而不是咪唑鎓离子,对硝基苯基底物起着重要的催化作用,但两者都对正常的二核苷酸(如尿嘧啶。速率研究表明,该酶催化硝基苯基磷酸酯衍生物的环化效率比尿嘧啶腺苷低47,000,000倍(kcat / kuncat),表明该底物损失了约50%的催化自由能变化。这表明硝基苯基底物未正确结合以充分利用酶的催化基团,因此不是正常核苷酸所用机理的良好指南。用核糖核酸酶A取代硫代磷酸酯基团取代正常底物磷酸基团的动力学效应的已公开数据已在其他地方进行了讨论,有人认为这些效应暗示了核糖核酸酶作用的经典机制,而不是我们最近提出的新机制。这些速率效应的细节,包括硫代磷酸盐系列中的立体化学偏爱,可以作为我们更新机制的支持。

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