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Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes

The enzyme 4‐oxalocrotonate tautomerase (4‐OT) from Pseudomonas putida mt‐2 takes part in a catabolic pathway for aromatic hydrocarbons, where it catalyzes the conversion of 2hydroxyhexa‐2,4‐dienedioate into 2‐oxohexa‐3‐enedioate. This tautomerase can also promiscuously catalyze carbon–carbon bond‐f...

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Autores principales: Rahimi, Mehran, van der Meer, Jan‐Ytzen, Geertsema, Edzard M., Poelarends, Gerrit J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5575498/
https://www.ncbi.nlm.nih.gov/pubmed/28426139
http://dx.doi.org/10.1002/cbic.201700121
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author Rahimi, Mehran
van der Meer, Jan‐Ytzen
Geertsema, Edzard M.
Poelarends, Gerrit J.
author_facet Rahimi, Mehran
van der Meer, Jan‐Ytzen
Geertsema, Edzard M.
Poelarends, Gerrit J.
author_sort Rahimi, Mehran
collection PubMed
description The enzyme 4‐oxalocrotonate tautomerase (4‐OT) from Pseudomonas putida mt‐2 takes part in a catabolic pathway for aromatic hydrocarbons, where it catalyzes the conversion of 2hydroxyhexa‐2,4‐dienedioate into 2‐oxohexa‐3‐enedioate. This tautomerase can also promiscuously catalyze carbon–carbon bond‐forming reactions, including various types of aldol reactions, by using its amino‐terminal proline as a key catalytic residue. Here, we used systematic mutagenesis to identify two hotspots in 4‐OT (Met45 and Phe50) at which single mutations give marked improvements in aldolase activity for the self‐condensation of propanal. Activity screening of a focused library in which these two hotspots were varied led to the discovery of a 4‐OT variant (M45Y/F50V) with strongly enhanced aldolase activity in the self‐condensation of linear aliphatic aldehydes, such as acetaldehyde, propanal, and butanal, to yield α,β‐unsaturated aldehydes. With both propanal and benzaldehyde, this double mutant, unlike the previously constructed single mutant F50A, mainly catalyzes the self‐condensation of propanal rather than the cross‐condensation of propanal and benzaldehyde, thus indicating that it indeed has altered substrate specificity. This variant could serve as a template to create new biocatalysts that lack dehydration activity and possess further enhanced aldolase activity, thus enabling the efficient enzymatic self‐coupling of aliphatic aldehydes.
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spelling pubmed-55754982017-09-18 Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes Rahimi, Mehran van der Meer, Jan‐Ytzen Geertsema, Edzard M. Poelarends, Gerrit J. Chembiochem Full Papers The enzyme 4‐oxalocrotonate tautomerase (4‐OT) from Pseudomonas putida mt‐2 takes part in a catabolic pathway for aromatic hydrocarbons, where it catalyzes the conversion of 2hydroxyhexa‐2,4‐dienedioate into 2‐oxohexa‐3‐enedioate. This tautomerase can also promiscuously catalyze carbon–carbon bond‐forming reactions, including various types of aldol reactions, by using its amino‐terminal proline as a key catalytic residue. Here, we used systematic mutagenesis to identify two hotspots in 4‐OT (Met45 and Phe50) at which single mutations give marked improvements in aldolase activity for the self‐condensation of propanal. Activity screening of a focused library in which these two hotspots were varied led to the discovery of a 4‐OT variant (M45Y/F50V) with strongly enhanced aldolase activity in the self‐condensation of linear aliphatic aldehydes, such as acetaldehyde, propanal, and butanal, to yield α,β‐unsaturated aldehydes. With both propanal and benzaldehyde, this double mutant, unlike the previously constructed single mutant F50A, mainly catalyzes the self‐condensation of propanal rather than the cross‐condensation of propanal and benzaldehyde, thus indicating that it indeed has altered substrate specificity. This variant could serve as a template to create new biocatalysts that lack dehydration activity and possess further enhanced aldolase activity, thus enabling the efficient enzymatic self‐coupling of aliphatic aldehydes. John Wiley and Sons Inc. 2017-05-30 2017-07-18 /pmc/articles/PMC5575498/ /pubmed/28426139 http://dx.doi.org/10.1002/cbic.201700121 Text en © 2017 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial‐NoDerivs (http://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full Papers
Rahimi, Mehran
van der Meer, Jan‐Ytzen
Geertsema, Edzard M.
Poelarends, Gerrit J.
Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title_full Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title_fullStr Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title_full_unstemmed Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title_short Engineering a Promiscuous Tautomerase into a More Efficient Aldolase for Self‐Condensations of Linear Aliphatic Aldehydes
title_sort engineering a promiscuous tautomerase into a more efficient aldolase for self‐condensations of linear aliphatic aldehydes
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5575498/
https://www.ncbi.nlm.nih.gov/pubmed/28426139
http://dx.doi.org/10.1002/cbic.201700121
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