Data-driven enzyme immobilisation: a case study using DNA to immobilise galactose oxidase

Wolfgang Ott, Alessandro Ceccarelli, Jack Manning, Nicholas J. Turner, Robert Oppenheimer
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Abstract

Biocatalysis has the potential to enable green chemistry. New methods of enzyme immobilisation will be required to improve enzyme stability, product purification, and compatibility of different enzymes in the same reaction conditions. Deoxyribonucleic acid (DNA) stands out among supramolecular scaffolds, as simple Watson–Crick base-pairing rules can be used to rationally design a unique nanoscale environment around each individual enzyme in a cascade. Enhancements of enzyme activity and stability on DNA nanostructures have previously been reported, but never in the context of industrially relevant chemical syntheses or reaction conditions. Here, the authors show DNA can enhance the activity and stability of a galactose oxidase mutant, which could be used in a cascade to produce bioplastics from lignin. The enzyme was enhanced in the cell-free extract, which to their knowledge has not been shown before for any enzymes on DNA. This is significant because crude biocatalytic reactions are vastly more cost-effective. This opens the door to further work on multienzyme cascades by tuning the properties of individual enzymes.

Abstract Image

数据驱动的酶固定化:使用DNA固定化半乳糖氧化酶的案例研究
生物催化具有实现绿色化学的潜力。需要新的酶固定化方法来提高酶的稳定性、产物纯化和不同酶在相同反应条件下的相容性。脱氧核糖核酸(DNA)在超分子支架中脱颖而出,因为简单的沃森-克里克碱基配对规则可以用来合理地设计级联中每个酶周围独特的纳米级环境。以前曾报道过DNA纳米结构上酶活性和稳定性的增强,但从未在工业相关的化学合成或反应条件下进行过报道。在这里,作者展示了DNA可以增强半乳糖氧化酶突变体的活性和稳定性,这种突变体可以在级联中使用木质素生产生物塑料。这种酶在无细胞提取物中得到了增强,据他们所知,这在DNA上还没有任何酶的表现。这一点很重要,因为粗生物催化反应的成本效益要高得多。这为通过调整单个酶的特性进一步研究多酶级联打开了大门。
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