单宁酶
气凝胶
转化(遗传学)
焊剂(冶金)
流动化学
化学工程
化学
丹宁
酶
树(集合论)
固定化酶
有机化学
材料科学
纳米技术
催化作用
食品科学
生物化学
工程类
数学
数学分析
基因
抗氧化剂
没食子酸
作者
Jie Li,Ke Xu,Jiabin Cui,Fei Gao,Hongying Guo,Jiyou Yang,Mengren Li,Zhan Ma,Zijun Wang,Liuping Zhang,Weiwei Huan
标识
DOI:10.1021/acssuschemeng.5c04368
摘要
Natural trees with uniquely aligned microchannels and water transportation capability bring inspiration to design high-performance biomimetic materials. Herein, a biomimetic aerogel reactor with vertically aligned channels and customized surface modification is developed and acts as a carrier to covalently immobilize tannase for high-efficiency flow biocatalytic conversion of tannins. Attributing to the interconnected cellular structure, aligned channels, high porosity, and hydrophilic property, the biomimetic biocatalysis reactor exhibits mechanical robustness and high liquid flux (2432 L m–2 h–1). Further intergradation with the rapid mass-transfer capability, comfortable microenvironment, and substrate enrichment effect from zwitterionic polymer modification, the biomimetic biocatalysis reactor shows improved pH and thermal stabilities, enzymatic activity, organic solvent tolerance, storage stability, and reusability compared to free enzyme and other substrate-based biocatalysis reactor. Moreover, the high conversion efficiency (99.6%) is achieved by the biomimetic biocatalysis reactor in flow biocatalytic transformation of tannins solely driven by gravity. These results demonstrate the promising strategy for designing a biomimetic enzyme reactor and validate the potential applications of immobilized tannase in biocatalytic engineering fields.
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