Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.

Enrichment of omega-3 fatty acids (ɷ-3 FAs) in natural oils is important to realize their health benefits. Lipases are promising catalysts to perform this enrichment, however, fatty acid specificity of lipases is poor. We attempted to improve the fatty acid selectivity of a lipase from Geobacillus t...

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Main Authors: Tushar Ranjan Moharana, Nalam Madhusudhana Rao
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0231177
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spelling doaj-ffcb18a05eaa454786335843bb92395b2021-03-03T21:39:20ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01154e023117710.1371/journal.pone.0231177Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.Tushar Ranjan MoharanaNalam Madhusudhana RaoEnrichment of omega-3 fatty acids (ɷ-3 FAs) in natural oils is important to realize their health benefits. Lipases are promising catalysts to perform this enrichment, however, fatty acid specificity of lipases is poor. We attempted to improve the fatty acid selectivity of a lipase from Geobacillus thermoleovorans (GTL) by two approaches. In a semi-rational approach, amino acid positions critical for binding were identified by docking the substrate to the GTL and best substitutes at these positions were identified by site saturation mutagenesis followed by screening to obtain a variant of GTL (CM-GTL). In the second approach based on rational design, a variant of GTL was designed (DM-GTL) wherein the active site was narrowed by incorporating two heavier amino acids in the lining of acyl-binding pocket to hinder access to bulky ɷ-3 FAs. The affinities DM-GTL with designed substrates were evaluated in silico. Both, CM-GTL and DM-GTL have shown excellent ability to discriminate against the ɷ-3 FAs during hydrolysis of oils. Engineering the binding pocket of an enzyme of a complex substrate, such as a triglyceride, by incorporating the information on substrate structure and computationally derived binding modes, has resulted in designing two efficient lipase variants with improved substrate selectivity.https://doi.org/10.1371/journal.pone.0231177
collection DOAJ
language English
format Article
sources DOAJ
author Tushar Ranjan Moharana
Nalam Madhusudhana Rao
spellingShingle Tushar Ranjan Moharana
Nalam Madhusudhana Rao
Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
PLoS ONE
author_facet Tushar Ranjan Moharana
Nalam Madhusudhana Rao
author_sort Tushar Ranjan Moharana
title Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
title_short Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
title_full Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
title_fullStr Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
title_full_unstemmed Substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
title_sort substrate structure and computation guided engineering of a lipase for omega-3 fatty acid selectivity.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description Enrichment of omega-3 fatty acids (ɷ-3 FAs) in natural oils is important to realize their health benefits. Lipases are promising catalysts to perform this enrichment, however, fatty acid specificity of lipases is poor. We attempted to improve the fatty acid selectivity of a lipase from Geobacillus thermoleovorans (GTL) by two approaches. In a semi-rational approach, amino acid positions critical for binding were identified by docking the substrate to the GTL and best substitutes at these positions were identified by site saturation mutagenesis followed by screening to obtain a variant of GTL (CM-GTL). In the second approach based on rational design, a variant of GTL was designed (DM-GTL) wherein the active site was narrowed by incorporating two heavier amino acids in the lining of acyl-binding pocket to hinder access to bulky ɷ-3 FAs. The affinities DM-GTL with designed substrates were evaluated in silico. Both, CM-GTL and DM-GTL have shown excellent ability to discriminate against the ɷ-3 FAs during hydrolysis of oils. Engineering the binding pocket of an enzyme of a complex substrate, such as a triglyceride, by incorporating the information on substrate structure and computationally derived binding modes, has resulted in designing two efficient lipase variants with improved substrate selectivity.
url https://doi.org/10.1371/journal.pone.0231177
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