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Lipase-catalyzed ring-opening polymerizations of 4-substituted epsilon-caprolactones: Mechanistic considerations

机译:脂肪酶催化的4-取代的ε-己内酯的开环聚合反应:机理上的考虑

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Lipase-catalyzed ring-opening polymerizations of 4-substituted epsilon-caprolactones employing Novozym 435 as the biocatalyst demonstrate dramatic differences in polymerization rates and selectivity depending on the size of the substituent. Quantification of the reaction rates shows that the polymerization rate decreases by a factor of 2 upon the introduction of a Me substituent at the 4-position. Moreover, 4-EtCL polymerizes 5 times slower than 4-MeCl and 4-PrCL is even 70 times slower. The decrease in polymerization rate is accompanied by a strong decrease in enantioselectivity: while the E-ratio of 4-MeCL polymerization is 16.9, the E-ratios of 4-EtCL and 4-PrCL are 7.1 and 2.0, respectively. Interestingly, Novozym 435 displays S-selectivity for 4-MeCL and 4-EtCL in the polymerization reaction, but the enantioselectivity is changed to the (R)-enantiomer in the case of the 4-PrCL. The nature of these differences was investigated by hydrolyzing all monomers in water/diisopropyl ether mixtures employing Novozym 435 as the catalyst. In the hydrolysis reactions, the rates are only moderately affected upon increasing the substituent size, and the enantioselectivity is S in all cases, also for 4-PrCL. Again, a steady decrease of the E-ratio was observed upon increasing the substituent size, but this was less pronounced than in the polymerization reactions: the E-ratios were 17.6, 12.4, and 4.6, going from 4-MeCL to 4-PrCL. For 4-substituted epsilon-caprolactones, the results obtained are a clear indication that the chirality of the propagating alcohol chain end is important in the catalytic cycle and that-in contrast to unsubstituted lactones-the rate-determining step is not necessarily the formation of the acyl-enzyme intermediate but more likely the deacylation of the acyl-enzyme intermediate by the propagating alcohol chain end.
机译:使用Novozym 435作为生物催化剂的4-取代的ε-己内酯的脂肪酶催化的开环聚合反应显示出聚合速度和选择性的显着差异,这取决于取代基的大小。反应速率的定量表明,在4-位引入Me取代基后,聚合速率降低了2倍。此外,4-EtCL的聚合速度比4-MeCl慢5倍,而4-PrCL的聚合速度甚至慢70倍。聚合速率的降低伴随着对映选择性的强烈降低:4-MeCL聚合的E-比为16.9,而4-EtCL和4-PrCL的E-比分别为7.1和2.0。有趣的是,Novozym 435在聚合反应中显示了对4-MeCL和4-EtCL的S选择性,但是在4-PrCL的情况下,对映选择性变为(R)-对映异构体。通过使用Novozym 435作为催化剂,通过水解水/二异丙醚混合物中的所有单体,研究了这些差异的性质。在水解反应中,速率仅在增加取代基尺寸时受到中等程度的影响,并且在所有情况下,对4-PrCL,对映选择性均为S。同样,随着取代基尺寸的增加,E比率也逐渐下降,但这并不像聚合反应中那样明显:E比率为17.6、12.4和4.6,从4-MeCL变为4-PrCL 。对于4-取代的ε-己内酯,获得的结果清楚地表明,正在传播的醇链末端的手性在催化循环中很重要,并且与未取代的内酯相比,速率确定步骤不一定形成酰基-酶中间体,但更可能是通过传播的醇链末端使酰基-酶中间体脱酰基。

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