volume 13 issue 2 pages 767-777

Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase

Publication typeJournal Article
Publication date2025-01-09
scimago Q1
wos Q1
SJR1.623
CiteScore12.5
Impact factor7.3
ISSN21680485
Abstract
4-Acetoxy-azacyclobutanone (4AA) is a highly demanded chemical compound used in the production of Penem and Carbapenem antibiotics. However, its synthesis is constrained by the preparation of methyl (2S,3R)-2-[(benzoylamino)methyl]-3-hydroxybutanoate [(2S,3R)-BHME]. In light of stringent environmental regulations, there is an urgent need to develop an effective enzymatic method using 2-benzoylaminomethyl-3-oxy-butyrate methyl ester (BOME) as the substrate. This study mined a carbonyl reductase AxSDR from Algoriella xinjiangensis, which asymmetrically reduces BOME to (2S,3R)-BHME using isopropanol (IPA) as a cosubstrate. The mechanisms underlying the high stereoselectivity, substrate selectivity, and limited activity of AxSDR toward BOME were analyzed using computer-aided technology. Based on these analyses, AxSDR was rationally designed, leading to the identification of a triple-point variant, G94T/H145Y/Y188L (Mu3), which exhibited a 2-fold increase in catalytic efficiency. After condition optimization, Mu3 cells were able to convert 300 mM BOME, achieving a space-time yield of 15.1 g/L/h. The sustainability of the (2S,3R)-BHME biosynthesis method was further enhanced by immobilizing Mu3 on IPA-tolerant amino resin. The space-time yield of the immobilized enzyme Mu3-imm increased to 75.3 g/(L·h) and was maintained at 50.2 g/(L·h) after 100 uses. These results demonstrate the significant industrial application potential of Mu3-imm in reducing the costs and environmental risks associated with the preparation of (2S,3R)-BHME and its downstream products such as 4-AA, Penem, and Carbapenem antibiotics.
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Meng F. et al. Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase // ACS Sustainable Chemistry and Engineering. 2025. Vol. 13. No. 2. pp. 767-777.
GOST all authors (up to 50) Copy
Meng F., Meng F., Su B., Su B. M., Lin J. Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase // ACS Sustainable Chemistry and Engineering. 2025. Vol. 13. No. 2. pp. 767-777.
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TY - JOUR
DO - 10.1021/acssuschemeng.4c05795
UR - https://pubs.acs.org/doi/10.1021/acssuschemeng.4c05795
TI - Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase
T2 - ACS Sustainable Chemistry and Engineering
AU - Meng, Fengwei
AU - Meng, Fanrui
AU - Su, Bingmei
AU - Su, Bing Mei
AU - Lin, Juan
PY - 2025
DA - 2025/01/09
PB - American Chemical Society (ACS)
SP - 767-777
IS - 2
VL - 13
SN - 2168-0485
ER -
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@article{2025_Meng,
author = {Fengwei Meng and Fanrui Meng and Bingmei Su and Bing Mei Su and Juan Lin},
title = {Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase},
journal = {ACS Sustainable Chemistry and Engineering},
year = {2025},
volume = {13},
publisher = {American Chemical Society (ACS)},
month = {jan},
url = {https://pubs.acs.org/doi/10.1021/acssuschemeng.4c05795},
number = {2},
pages = {767--777},
doi = {10.1021/acssuschemeng.4c05795}
}
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Meng, Fengwei, et al. “Biosynthesis of Methyl (2S,3R)-2-[(Benzoylamino)methyl]-3-hydroxybutanoate in High Space-Time Yield with Immobilized Engineered Carbonyl Reductase.” ACS Sustainable Chemistry and Engineering, vol. 13, no. 2, Jan. 2025, pp. 767-777. https://pubs.acs.org/doi/10.1021/acssuschemeng.4c05795.