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Tytuł pozycji:

Improvement of thermostability and catalytic efficiency of glucoamylase from Talaromyces leycettanus JCM12802 via site-directed mutagenesis to enhance industrial saccharification applications

Tytuł:
Improvement of thermostability and catalytic efficiency of glucoamylase from Talaromyces leycettanus JCM12802 via site-directed mutagenesis to enhance industrial saccharification applications
Autorzy:
Lige Tong
Jie Zheng
Xiao Wang
Xiaolu Wang
Huoqing Huang
Haomeng Yang
Tao Tu
Yuan Wang
Yingguo Bai
Bin Yao
Huiying Luo
Xing Qin
Temat:
Glucoamylase
Thermostability
Catalytic efficiency
Site-directed mutagenesis
Industrial application
Fuel
TP315-360
Biotechnology
TP248.13-248.65
Źródło:
Biotechnology for Biofuels, Vol 14, Iss 1, Pp 1-9 (2021)
Wydawca:
BMC, 2021.
Rok publikacji:
2021
Kolekcja:
LCC:Fuel
LCC:Biotechnology
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
English
ISSN:
1754-6834
Relacje:
https://doaj.org/toc/1754-6834
DOI:
10.1186/s13068-021-02052-3
Dostęp URL:
https://doaj.org/article/d1c19701ab994d9cb63d580fe2a85cc6  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.1c19701ab994d9cb63d580fe2a85cc6
Czasopismo naukowe
Abstract Background Glucoamylase is an important industrial enzyme in the saccharification of starch into glucose. However, its poor thermostability and low catalytic efficiency limit its industrial saccharification applications. Therefore, improving these properties of glucoamylase is of great significance for saccharification in the starch industry. Results In this study, a novel glucoamylase-encoding gene TlGa15B from the thermophilic fungus Talaromyces leycettanus JCM12802 was cloned and expressed in Pichia pastoris. The optimal temperature and pH of recombinant TlGa15B were 65 ℃ and 4.5, respectively. TlGa15B exhibited excellent thermostability at 60 ℃. To further improve thermostability without losing catalytic efficiency, TlGa15B-GA1 and TlGa15B-GA2 were designed by introducing disulfide bonds and optimizing residual charge–charge interactions in a region distant from the catalytic center. Compared with TlGa15B, mutants showed improved optimal temperature, melting temperature, specific activity, and catalytic efficiency. The mechanism underlying these improvements was elucidated through molecular dynamics simulation and dynamics cross-correlation matrices analysis. Besides, the performance of TlGa15B-GA2 was the same as that of the commercial glucoamylase during saccharification. Conclusions We provide an effective strategy to simultaneously improve both thermostability and catalytic efficiency of glucoamylase. The excellent thermostability and high catalytic efficiency of TlGa15B-GA2 make it a good candidate for industrial saccharification applications.
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