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N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE

TrLipE is a thermophilic lipase that has potential commercial applications because of its catalytic ability under extreme conditions. Consistent with most lipases, the lid of TrLipE is located over the catalytic pocket, controls the substrate channel to the active center, and regulates the substrate...

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Autores principales: Fang, Yakun, Liu, Fan, Shi, Yi, Yang, Ting, Xin, Yu, Gu, Zhenghua, Shi, Guiyang, Zhang, Liang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10332459/
https://www.ncbi.nlm.nih.gov/pubmed/37434709
http://dx.doi.org/10.3389/fmicb.2023.1193955
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author Fang, Yakun
Liu, Fan
Shi, Yi
Yang, Ting
Xin, Yu
Gu, Zhenghua
Shi, Guiyang
Zhang, Liang
author_facet Fang, Yakun
Liu, Fan
Shi, Yi
Yang, Ting
Xin, Yu
Gu, Zhenghua
Shi, Guiyang
Zhang, Liang
author_sort Fang, Yakun
collection PubMed
description TrLipE is a thermophilic lipase that has potential commercial applications because of its catalytic ability under extreme conditions. Consistent with most lipases, the lid of TrLipE is located over the catalytic pocket, controls the substrate channel to the active center, and regulates the substrate specificity, activity, and stability of the enzyme through conformational changes. TrLipE from Thermomicrobium roseum has potential industrial applications, which is hindered by its weak enzymatic activity. Here, 18 chimeras (TrL1-TrL18) were reconstructed by N-terminal lid swapping between TrLipE and structurally similar enzymes. The results showed that the chimeras had a similar pH range and optimum pH as wild TrLipE but a narrower temperature range of 40–80°C, and TrL17 and the other chimeras showed lower optimum temperatures of 70°C and 60°C, respectively. In addition, the half-lives of the chimeras were lower than those of TrLipE under optimum temperature conditions. Molecular dynamics simulations indicated that chimeras had high RMSD, RMSF, and B-factor values. When p-nitrophenol esters with different chains were used as substrates, compared with TrLipE, most of the chimeras had a low K(m) and high k(cat) value. The chimeras TrL2, TrL3, TrL17, and TrL18 could specifically catalyze the substrate 4-nitrophenyl benzoate, with TrL17 showing the highest k(cat)/K(m) value of 363.88 ± 15.83 L⋅min(–1)⋅mmol(–1). Mutants were then designed by investigating the binding free energies of TrL17 and 4-nitrophenyl benzoate. The results indicated that single, double, and triple substitution variants (M89W and I206N; E33W/I206M and M89W/I206M; and M89W/I206M/L21I and M89W/I206N/L21I, respectively) presented approximately 2- to 3-fold faster catalysis of 4-nitrophenyl benzoate than the wild TrL17. Our observations will facilitate the development of the properties and industrial applications of TrLipE.
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spelling pubmed-103324592023-07-11 N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE Fang, Yakun Liu, Fan Shi, Yi Yang, Ting Xin, Yu Gu, Zhenghua Shi, Guiyang Zhang, Liang Front Microbiol Microbiology TrLipE is a thermophilic lipase that has potential commercial applications because of its catalytic ability under extreme conditions. Consistent with most lipases, the lid of TrLipE is located over the catalytic pocket, controls the substrate channel to the active center, and regulates the substrate specificity, activity, and stability of the enzyme through conformational changes. TrLipE from Thermomicrobium roseum has potential industrial applications, which is hindered by its weak enzymatic activity. Here, 18 chimeras (TrL1-TrL18) were reconstructed by N-terminal lid swapping between TrLipE and structurally similar enzymes. The results showed that the chimeras had a similar pH range and optimum pH as wild TrLipE but a narrower temperature range of 40–80°C, and TrL17 and the other chimeras showed lower optimum temperatures of 70°C and 60°C, respectively. In addition, the half-lives of the chimeras were lower than those of TrLipE under optimum temperature conditions. Molecular dynamics simulations indicated that chimeras had high RMSD, RMSF, and B-factor values. When p-nitrophenol esters with different chains were used as substrates, compared with TrLipE, most of the chimeras had a low K(m) and high k(cat) value. The chimeras TrL2, TrL3, TrL17, and TrL18 could specifically catalyze the substrate 4-nitrophenyl benzoate, with TrL17 showing the highest k(cat)/K(m) value of 363.88 ± 15.83 L⋅min(–1)⋅mmol(–1). Mutants were then designed by investigating the binding free energies of TrL17 and 4-nitrophenyl benzoate. The results indicated that single, double, and triple substitution variants (M89W and I206N; E33W/I206M and M89W/I206M; and M89W/I206M/L21I and M89W/I206N/L21I, respectively) presented approximately 2- to 3-fold faster catalysis of 4-nitrophenyl benzoate than the wild TrL17. Our observations will facilitate the development of the properties and industrial applications of TrLipE. Frontiers Media S.A. 2023-06-26 /pmc/articles/PMC10332459/ /pubmed/37434709 http://dx.doi.org/10.3389/fmicb.2023.1193955 Text en Copyright © 2023 Fang, Liu, Shi, Yang, Xin, Gu, Shi and Zhang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Fang, Yakun
Liu, Fan
Shi, Yi
Yang, Ting
Xin, Yu
Gu, Zhenghua
Shi, Guiyang
Zhang, Liang
N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title_full N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title_fullStr N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title_full_unstemmed N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title_short N-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase TrLipE
title_sort n-terminal lid swapping contributes to the substrate specificity and activity of thermophilic lipase trlipe
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10332459/
https://www.ncbi.nlm.nih.gov/pubmed/37434709
http://dx.doi.org/10.3389/fmicb.2023.1193955
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