纤维素酶
白腐真菌
纤维素
解聚
多糖
黄孢菌
化学
溶解循环
单加氧酶
分子动力学
分子
化学工程
生物化学
生物物理学
立体化学
酶
有机化学
生物
计算化学
病毒学
细胞色素P450
病毒
工程类
作者
Taku Uchiyama,Takayuki Uchihashi,Takuya Ishida,Akihiko Nakamura,Josh V. Vermaas,Michael F. Crowley,Masahiro Samejima,Gregg T. Beckham,Kiyohiko Igarashi
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-12-23
卷期号:8 (51)
被引量:35
标识
DOI:10.1126/sciadv.ade5155
摘要
Efficient depolymerization of crystalline cellulose requires cooperation between multiple cellulolytic enzymes. Through biochemical approaches, molecular dynamics (MD) simulation, and single-molecule observations using high-speed atomic force microscopy (HS-AFM), we quantify and track synergistic activity for cellobiohydrolases (CBHs) with a lytic polysaccharide monooxygenase (LPMO) from Phanerochaete chrysosporium. Increasing concentrations of LPMO (AA9D) increased the activity of a glycoside hydrolase family 6 CBH, Cel6A, whereas the activity of a family 7 CBH (Cel7D) was enhanced only at lower concentrations of AA9D. MD simulation suggests that the result of AA9D action to produce chain breaks in crystalline cellulose can oxidatively disturb the crystalline surface by disrupting hydrogen bonds. HS-AFM observations showed that AA9D increased the number of Cel7D molecules moving on the substrate surface and increased the processivity of Cel7D, thereby increasing the depolymerization performance, suggesting that AA9D not only generates chain ends but also amorphizes the crystalline surface, thereby increasing the activity of CBHs.
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