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‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile

Norcoclaurine synthase (NCS) (EC 4.2.1.78) catalyzes the Pictet–Spengler condensation of dopamine and an aldehyde, forming a substituted (S)-tetrahydroisoquinoline, a pharmaceutically important moiety. This unique activity has led to NCS being used for both in vitro biocatalysis and in vivo recombin...

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Autores principales: Lichman, Benjamin R, Gershater, Markus C, Lamming, Eleanor D, Pesnot, Thomas, Sula, Altin, Keep, Nicholas H, Hailes, Helen C, Ward, John M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4413047/
https://www.ncbi.nlm.nih.gov/pubmed/25620686
http://dx.doi.org/10.1111/febs.13208
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author Lichman, Benjamin R
Gershater, Markus C
Lamming, Eleanor D
Pesnot, Thomas
Sula, Altin
Keep, Nicholas H
Hailes, Helen C
Ward, John M
author_facet Lichman, Benjamin R
Gershater, Markus C
Lamming, Eleanor D
Pesnot, Thomas
Sula, Altin
Keep, Nicholas H
Hailes, Helen C
Ward, John M
author_sort Lichman, Benjamin R
collection PubMed
description Norcoclaurine synthase (NCS) (EC 4.2.1.78) catalyzes the Pictet–Spengler condensation of dopamine and an aldehyde, forming a substituted (S)-tetrahydroisoquinoline, a pharmaceutically important moiety. This unique activity has led to NCS being used for both in vitro biocatalysis and in vivo recombinant metabolism. Future engineering of NCS activity to enable the synthesis of diverse tetrahydroisoquinolines is dependent on an understanding of the NCS mechanism and kinetics. We assess two proposed mechanisms for NCS activity: (a) one based on the holo X-ray crystal structure and (b) the ‘dopamine-first’ mechanism based on computational docking. Thalictrum flavum NCS variant activities support the dopamine-first mechanism. Suppression of the non-enzymatic background reaction reveals novel kinetic parameters for NCS, showing it to act with low catalytic efficiency. This kinetic behaviour can account for the ineffectiveness of recombinant NCS in in vivo systems, and also suggests NCS may have an in planta role as a metabolic gatekeeper. The amino acid substitution L76A, situated in the proposed aldehyde binding site, results in the alteration of the enzyme's aldehyde activity profile. This both verifies the dopamine-first mechanism and demonstrates the potential for the rational engineering of NCS activity.
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spelling pubmed-44130472015-04-29 ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile Lichman, Benjamin R Gershater, Markus C Lamming, Eleanor D Pesnot, Thomas Sula, Altin Keep, Nicholas H Hailes, Helen C Ward, John M FEBS J Original Articles Norcoclaurine synthase (NCS) (EC 4.2.1.78) catalyzes the Pictet–Spengler condensation of dopamine and an aldehyde, forming a substituted (S)-tetrahydroisoquinoline, a pharmaceutically important moiety. This unique activity has led to NCS being used for both in vitro biocatalysis and in vivo recombinant metabolism. Future engineering of NCS activity to enable the synthesis of diverse tetrahydroisoquinolines is dependent on an understanding of the NCS mechanism and kinetics. We assess two proposed mechanisms for NCS activity: (a) one based on the holo X-ray crystal structure and (b) the ‘dopamine-first’ mechanism based on computational docking. Thalictrum flavum NCS variant activities support the dopamine-first mechanism. Suppression of the non-enzymatic background reaction reveals novel kinetic parameters for NCS, showing it to act with low catalytic efficiency. This kinetic behaviour can account for the ineffectiveness of recombinant NCS in in vivo systems, and also suggests NCS may have an in planta role as a metabolic gatekeeper. The amino acid substitution L76A, situated in the proposed aldehyde binding site, results in the alteration of the enzyme's aldehyde activity profile. This both verifies the dopamine-first mechanism and demonstrates the potential for the rational engineering of NCS activity. Blackwell Publishing Ltd 2015-03 2015-02-09 /pmc/articles/PMC4413047/ /pubmed/25620686 http://dx.doi.org/10.1111/febs.13208 Text en © 2015 The Authors. FEBS Journal published by John Wiley & Sons Ltd on behalf of FEBS. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Lichman, Benjamin R
Gershater, Markus C
Lamming, Eleanor D
Pesnot, Thomas
Sula, Altin
Keep, Nicholas H
Hailes, Helen C
Ward, John M
‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title_full ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title_fullStr ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title_full_unstemmed ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title_short ‘Dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
title_sort ‘dopamine-first’ mechanism enables the rational engineering of the norcoclaurine synthase aldehyde activity profile
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4413047/
https://www.ncbi.nlm.nih.gov/pubmed/25620686
http://dx.doi.org/10.1111/febs.13208
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