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首页> 外文期刊>ChemCatChem >Rational Co-Immobilization of Bi-Enzyme Cascades on Porous Supports and their Applications in Bio-Redox Reactions with In Situ Recycling of Soluble Cofactors
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Rational Co-Immobilization of Bi-Enzyme Cascades on Porous Supports and their Applications in Bio-Redox Reactions with In Situ Recycling of Soluble Cofactors

机译:对多孔载体的双酶级联的理性共同化及其在生物氧化还原反应中的溶于辅助型胶囊的原位再循环

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In bio-redox cascade reactions that are immobilized on porous supports, mass-transfer limitations may impede the effective concentration of the cofactor around the corresponding dehydrogenases. This main drawback has been addressed by the co-immobilization of both the main and recycling dehydrogenases. Herein, we report tailor-made co-immobilization procedures to assemble three different bio-redox orthogonal cascades in vitro (two selective reductions and one selective oxidation) with in situ cofactor-regeneration. However, the co-immobilization itself does not guarantee the success of the biotransformation because the same co-immobilization chemistry may not be suitable for the two enzymes that are involved in the bio-redox cascade. Therefore, our co-immobilization system was optimized for each bi-enzymatic cascade. In all cases, the optimized co-immobilization procedure was more efficient in the biocatalytic cascade than if the two dehydrogenases were immobilized on two different carriers. In one specific case (one thermophilic cascade), the co-immobilization of an optimal ratio of main/recycling dehydrogenases (1:5) on the same carrier resulted in a biocatalyst that was able to recycle NADH up to 9000 times per equivalent of substrate in 1 hour at 55?degrees C. Moreover, uniform distributions of both dehydrogenases across the porous surface also enhanced the recycling efficiency of the cofactor 1.5-fold versus cascades in which the enzymes were not uniformly distributed across the same porous surface, presumably because of vicinal cooperation effects. Hence, this system for the co-immobilization of bi-enzymatic systems may be extended to other biocatalytic cascades, thereby opening a window for the optimization of other multi-enzyme biotransformations in which cofactor-recycling is necessary.
机译:在固定在多孔载体上的生物氧化还原级联反应中,质量转移限制可能妨碍辅因子围绕相应的脱氢酶的有效浓度。该主要缺点是通过对主要和再循环脱氢酶的共同固定来解决的。在此,我们报告了定制的共同固定程序,以组装三种不同的生物氧化还原正交级联,体外(两种选择性降低和一种选择性氧化)与原位辅因子再生。然而,共固化本身不能保证生物转化的成功,因为相同的共固化化学可能不适合于参与生物氧化还原级联的两种酶。因此,我们的共固化系统针对每种双酶级联进行了优化。在所有情况下,优化的共固化程序在生物催化级联中更有效,而不是如果将两种脱氢酶固定在两种不同的载体上。在一种特定情况(一种嗜热级联)中,同一载体上的主/回收脱氢酶(1:5)的最佳比率的共固化是生物催化剂,能够将NADH再循环至9000次,每相同的基材此外,在1小时的55℃下,两种脱氢酶横跨多孔表面的均匀分布也增强了辅因子1.5倍与级联的再循环效率,其中酶不均匀地分布在相同的多孔表面上,可能是因为张建国合作效应。因此,该系统可以延伸到双酶系统的共固化,可以延伸到其他生物催化级联,从而打开用于优化其他多酶生物转换的窗口,其中辅因子再循环是必要的。

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