疏水蛋白
生物降解
结晶度
降级(电信)
乙烯
材料科学
吸附
化学工程
化学
催化作用
生物化学
有机化学
复合材料
电信
计算机科学
工程类
基因
作者
Zhuozhi Chen,Rongdi Duan,Yunjie Xiao,Yi Wei,Hanxiao Zhang,Xinzhao Sun,Shen Wang,Yingying Cheng,Xue Wang,Shanwei Tong,Yunxiao Yao,Cheng Zhu,Haitao Yang,Yanyan Wang,Zefang Wang
标识
DOI:10.1038/s41467-022-34908-z
摘要
The process of recycling poly(ethylene terephthalate) (PET) remains a major challenge due to the enzymatic degradation of high-crystallinity PET (hcPET). Recently, a bacterial PET-degrading enzyme, PETase, was found to have the ability to degrade the hcPET, but with low enzymatic activity. Here we present an engineered whole-cell biocatalyst to simulate both the adsorption and degradation steps in the enzymatic degradation process of PETase to achieve the efficient degradation of hcPET. Our data shows that the adhesive unit hydrophobin and degradation unit PETase are functionally displayed on the surface of yeast cells. The turnover rate of the whole-cell biocatalyst toward hcPET (crystallinity of 45%) dramatically increases approximately 328.8-fold compared with that of purified PETase at 30 °C. In addition, molecular dynamics simulations explain how the enhanced adhesion can promote the enzymatic degradation of PET. This study demonstrates engineering the whole-cell catalyst is an efficient strategy for biodegradation of PET.
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