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首页> 外文期刊>ACS Omega >Polymer-Assisted Biocatalysis: Effects of Macromolecular Architectures on the Stability and Catalytic Activity of Immobilized Enzymes toward Water-Soluble and Water-Insoluble Substrates
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Polymer-Assisted Biocatalysis: Effects of Macromolecular Architectures on the Stability and Catalytic Activity of Immobilized Enzymes toward Water-Soluble and Water-Insoluble Substrates

机译:聚合物辅助的生物催化:高分子结构对固定酶对水溶性和水不溶性底物的稳定性和催化活性的影响

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The aim of this study is to develop efficient enzyme immobilization media that will enable the reuse of the biocatalysts over multiple cycles, increase their thermal stability, and attenuate their activity toward hydrophobic substrates for “green” transformations in aqueous media. For this purpose, amphiphilic AB and ABA block copolymers were synthesized and tested with laccase (a multicopper oxidase). In all cases, the hydrophilic B block consisted of poly(ethylene glycol), PEG, with molecular masses of 3, 5, 13, 20, or 13 kDa poly(ethylene oxide). The hydrophobic A blocks were made of linear poly(styrene), PS; hyperbranched poly(p -chloromethyl styrene); or dendritic poly(benzyl ether)s of generations 2, 3, and 4 (G2, G3, and G4) with molecular masses ranging from 1 to 24 kDa. A total of 23 different copolymers (self-assembling into micelles or physical networks) were evaluated. Notable activity enhancements were achieved with both micelles (up to 253%) and hydrogels (up to 408%). The highest enzymatic activity and thermal stability were observed with laccase immobilized in hydrogels consisting of the linear ABA block copolymer PS2.7k–PEG3k–PS2.7k (13?290 μkat/L, 65 °C, ABTS test). This represents a 1245% improvement over native laccase at the same conditions. At 25 °C, the same complex showed a 1236% higher activity than the enzyme. The highest polymerization yield for a water-insoluble monomer was achieved with laccase immobilized in hydrogels composed of linear–dendritic ABA copolymer G3–PEG5k–G3 (85.5%, 45 °C, tyrosine monomer). The broad substrate specificity and reusability of the immobilized laccase were also demonstrated by the successful discoloration of bromophenol blue, methyl orange, and rhodamine B over eight repetitive cycles.
机译:这项研究的目的是开发有效的酶固定介质,该介质将使生物催化剂能够在多个循环中重复使用,提高其热稳定性,并减弱其对疏水性底物在水性介质中“绿色”转化的活性。为此,合成了两亲性AB和ABA嵌段共聚物,并用漆酶(一种多铜氧化酶)进行了测试。在所有情况下,亲水性B嵌段均由分子量为3、5、13、20,或13 kDa聚环氧乙烷的聚乙二醇,PEG组成。疏水性A嵌段由线性聚(苯乙烯)PS制成;超支化聚(对氯甲基苯乙烯);或第2代,第3代和第4代的树状聚(苄基醚)(G2,G3和G4),分子量为1至24 kDa。总共评估了23种不同的共聚物(自组装成胶束或物理网络)。胶束(高达253%)和水凝胶(高达408%)均实现了显着的活性增强。将漆酶固定在由线性ABA嵌段共聚物PS2.7k–PEG3k–PS2.7k组成的水凝胶中时,观察到了最高的酶活性和热稳定性(13?290μkat/ L,65°C,ABTS测试)。在相同条件下,这比天然漆酶提高了1245%。在25°C下,相同的复合物显示出比该酶高1236%的活性。将漆酶固定在由线性-树枝状ABA共聚物G3-PEG5k-G3(85.5%,45°C,酪氨酸单体)组成的水凝胶中,可实现水不溶性单体的最高聚合收率。溴酚蓝,甲基橙和若丹明B在八个重复循环中成功脱色也证明了固定化漆酶具有广泛的底物特异性和可重复使用性。

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