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Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation

Thermostability remains one of the most desirable traits in many lipases. Numerous studies have revealed promising strategies to improve thermostability and random mutagenesis often leads to unexpected yet interesting findings in engineering stability. Previously, the thermostability of C-terminal t...

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Autores principales: Veno, Jiivittha, Rahman, Raja Noor Zaliha Raja Abd, Masomian, Malihe, Ali, Mohd Shukuri Mohamad, Kamarudin, Nor Hafizah Ahmad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6749283/
https://www.ncbi.nlm.nih.gov/pubmed/31480403
http://dx.doi.org/10.3390/molecules24173169
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author Veno, Jiivittha
Rahman, Raja Noor Zaliha Raja Abd
Masomian, Malihe
Ali, Mohd Shukuri Mohamad
Kamarudin, Nor Hafizah Ahmad
author_facet Veno, Jiivittha
Rahman, Raja Noor Zaliha Raja Abd
Masomian, Malihe
Ali, Mohd Shukuri Mohamad
Kamarudin, Nor Hafizah Ahmad
author_sort Veno, Jiivittha
collection PubMed
description Thermostability remains one of the most desirable traits in many lipases. Numerous studies have revealed promising strategies to improve thermostability and random mutagenesis often leads to unexpected yet interesting findings in engineering stability. Previously, the thermostability of C-terminal truncated cold-adapted lipase from Staphylococcus epidermidis AT2 (rT-M386) was markedly enhanced by directed evolution. The newly evolved mutant, G210C, demonstrated an optimal temperature shift from 25 to 45 °C and stability up to 50 °C. Interestingly, a cysteine residue was randomly introduced on the loop connecting the two lids and accounted for the only cysteine found in the lipase. We further investigated the structural and mechanistic insights that could possibly cause the significant temperature shift. Both rT-M386 and G210C were modeled and simulated at 25 °C and 50 °C. The results clearly portrayed the effect of cysteine substitution primarily on the lid stability. Comparative molecular dynamics simulation analysis revealed that G210C exhibited greater stability than the wild-type at high temperature simulation. The compactness of the G210C lipase structure increased at 50 °C and resulted in enhanced rigidity hence stability. This observation is supported by the improved and stronger non-covalent interactions formed in the protein structure. Our findings suggest that the introduction of a single cysteine residue at the lid region of cold-adapted lipase may result in unexpected increased in thermostability, thus this approach could serve as one of the thermostabilization strategies in engineering lipase stability.
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spelling pubmed-67492832019-09-27 Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation Veno, Jiivittha Rahman, Raja Noor Zaliha Raja Abd Masomian, Malihe Ali, Mohd Shukuri Mohamad Kamarudin, Nor Hafizah Ahmad Molecules Article Thermostability remains one of the most desirable traits in many lipases. Numerous studies have revealed promising strategies to improve thermostability and random mutagenesis often leads to unexpected yet interesting findings in engineering stability. Previously, the thermostability of C-terminal truncated cold-adapted lipase from Staphylococcus epidermidis AT2 (rT-M386) was markedly enhanced by directed evolution. The newly evolved mutant, G210C, demonstrated an optimal temperature shift from 25 to 45 °C and stability up to 50 °C. Interestingly, a cysteine residue was randomly introduced on the loop connecting the two lids and accounted for the only cysteine found in the lipase. We further investigated the structural and mechanistic insights that could possibly cause the significant temperature shift. Both rT-M386 and G210C were modeled and simulated at 25 °C and 50 °C. The results clearly portrayed the effect of cysteine substitution primarily on the lid stability. Comparative molecular dynamics simulation analysis revealed that G210C exhibited greater stability than the wild-type at high temperature simulation. The compactness of the G210C lipase structure increased at 50 °C and resulted in enhanced rigidity hence stability. This observation is supported by the improved and stronger non-covalent interactions formed in the protein structure. Our findings suggest that the introduction of a single cysteine residue at the lid region of cold-adapted lipase may result in unexpected increased in thermostability, thus this approach could serve as one of the thermostabilization strategies in engineering lipase stability. MDPI 2019-08-30 /pmc/articles/PMC6749283/ /pubmed/31480403 http://dx.doi.org/10.3390/molecules24173169 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Veno, Jiivittha
Rahman, Raja Noor Zaliha Raja Abd
Masomian, Malihe
Ali, Mohd Shukuri Mohamad
Kamarudin, Nor Hafizah Ahmad
Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title_full Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title_fullStr Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title_full_unstemmed Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title_short Insight into Improved Thermostability of Cold-Adapted Staphylococcal Lipase by Glycine to Cysteine Mutation
title_sort insight into improved thermostability of cold-adapted staphylococcal lipase by glycine to cysteine mutation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6749283/
https://www.ncbi.nlm.nih.gov/pubmed/31480403
http://dx.doi.org/10.3390/molecules24173169
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