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Enabling microbial syringol conversion through structure-guided protein engineering

delete2019-06-24
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OA
AI
M
Melodie M. Machovina
S
S.J.B. Mallinson
B
Brandon C. Knott
A
Alexander Meyers
M
Marc Garcia‐Borràs
L
Lintao Bu
J
Japheth E. Gado
A
April Oliver
G
Graham P. Schmidt
D
D.J. Hinchen
M
Michael F. Crowley
C
Christopher W. Johnson
E
Ellen L. Neidle
C
Christina M. Payne
K
K. N. Houk *
G
Gregg T. Beckham *
J
J.E. McGeehan *
J
Jennifer L. DuBois *
DOI:10.1073/pnas.1820001116delete
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Abstract

Abstract

En 中文
Microbial conversion of aromatic compounds is an emerging and promising strategy for valorization of the plant biopolymer lignin. A critical and often rate-limiting reaction in aromatic catabolism is O-aryl-demethylation of the abundant aromatic methoxy groups in lignin to form diols, which enables subsequent oxidative aromatic ring-opening. Recently, a cytochrome P450 system, GcoAB, was discovered to demethylate guaiacol (2-methoxyphenol), which can be produced from coniferyl alcohol-derived lignin, to form catechol. However, native GcoAB has minimal ability to demethylate syringol (2,6-dimethoxyphenol), the analogous compound that can be produced from sinapyl alcohol-derived lignin. Despite the abundance of sinapyl alcohol-based lignin in plants, no pathway for syringol catabolism has been reported to date. Here we used structure-guided protein engineering to enable microbial syringol utilization with GcoAB. Specifically, a phenylalanine residue (GcoA-F169) interferes with the binding of syringol in the active site, and on mutation to smaller amino acids, efficient syringol O-demethylation is achieved. Crystallography indicates that syringol adopts a productive binding pose in the variant, which molecular dynamics simulations trace to the elimination of steric clash between the highly flexible side chain of GcoA-F169 and the additional methoxy group of syringol. Finally, we demonstrate in vivo syringol turnover in Pseudomonas putida KT2440 with the GcoA-F169A variant. Taken together, our findings highlight the significant potential and plasticity of cytochrome P450 aromatic O-demethylases in the biological conversion of lignin-derived aromatic compounds.
Keywords:
demethylase
P450
lignin
biorefinery
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P
Proceedings of the National Academy of Sciences of the United States of America
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9.1
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10.8W
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73.5W

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