The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities
Abstract Background New semi-synthetic aminoglycoside antibiotics generally use chemical modifications to avoid inactivity from pathogens. One of the most used modifications is 3′,4′-di-deoxygenation, which imitates the structure of gentamicin. However, the mechanism of di-deoxygenation has not been...
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doaj-79eadff337824893a106ad2b8f8af26a2020-11-25T01:48:40ZengBMCMicrobial Cell Factories1475-28592020-03-0119111210.1186/s12934-020-01317-0The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activitiesXiaotang Chen0Hui Zhang1Shaotong Zhou2Mingjun Bi3Shizhou Qi4Huiyuan Gao5Xianpu Ni6Huanzhang Xia7School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversitySchool of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversitySchool of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversitySchool of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversitySchool of Traditional Chinese Medicine, Shenyang Pharmaceutical UniversitySchool of Traditional Chinese Medicine, Shenyang Pharmaceutical UniversitySchool of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversitySchool of Life Science and Biopharmaceutics, Shenyang Pharmaceutical UniversityAbstract Background New semi-synthetic aminoglycoside antibiotics generally use chemical modifications to avoid inactivity from pathogens. One of the most used modifications is 3′,4′-di-deoxygenation, which imitates the structure of gentamicin. However, the mechanism of di-deoxygenation has not been clearly elucidated. Results Here, we report that the bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities. Following disruption of genB4 in wild-type M. echinospora, its products accumulated in 6′-deamino-6′-oxoverdamicin (1), verdamicin C2a (2), and its epimer, verdamicin C2 (3). Following disruption of genB4 in M. echinospora ΔgenK, its products accumulated in sisomicin (4) and 6′-N-methylsisomicin (5, G-52). Following in vitro catalytic reactions, GenB4 transformed sisomicin (4) to gentamicin C1a (9) and transformed verdamicin C2a (2) and its epimer, verdamicin C2 (3), to gentamicin C2a (11) and gentamicin C2 (12), respectively. Conclusion This finding indicated that in addition to its transamination activity, GenB4 exhibits specific 4′,5′ double-bond reducing activity and is responsible for the last step of gentamicin 3′,4′-di-deoxygenation. Taken together, we propose three new intermediates that may refine and supplement the specific biosynthetic pathway of gentamicin C components and lay the foundation for the complete elucidation of di-deoxygenation mechanisms.http://link.springer.com/article/10.1186/s12934-020-01317-0GentamicinDi-deoxygenationGenB4Reduction activityTransamination activity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiaotang Chen Hui Zhang Shaotong Zhou Mingjun Bi Shizhou Qi Huiyuan Gao Xianpu Ni Huanzhang Xia |
spellingShingle |
Xiaotang Chen Hui Zhang Shaotong Zhou Mingjun Bi Shizhou Qi Huiyuan Gao Xianpu Ni Huanzhang Xia The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities Microbial Cell Factories Gentamicin Di-deoxygenation GenB4 Reduction activity Transamination activity |
author_facet |
Xiaotang Chen Hui Zhang Shaotong Zhou Mingjun Bi Shizhou Qi Huiyuan Gao Xianpu Ni Huanzhang Xia |
author_sort |
Xiaotang Chen |
title |
The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
title_short |
The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
title_full |
The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
title_fullStr |
The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
title_full_unstemmed |
The bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
title_sort |
bifunctional enzyme, genb4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities |
publisher |
BMC |
series |
Microbial Cell Factories |
issn |
1475-2859 |
publishDate |
2020-03-01 |
description |
Abstract Background New semi-synthetic aminoglycoside antibiotics generally use chemical modifications to avoid inactivity from pathogens. One of the most used modifications is 3′,4′-di-deoxygenation, which imitates the structure of gentamicin. However, the mechanism of di-deoxygenation has not been clearly elucidated. Results Here, we report that the bifunctional enzyme, GenB4, catalyzes the last step of gentamicin 3′,4′-di-deoxygenation via reduction and transamination activities. Following disruption of genB4 in wild-type M. echinospora, its products accumulated in 6′-deamino-6′-oxoverdamicin (1), verdamicin C2a (2), and its epimer, verdamicin C2 (3). Following disruption of genB4 in M. echinospora ΔgenK, its products accumulated in sisomicin (4) and 6′-N-methylsisomicin (5, G-52). Following in vitro catalytic reactions, GenB4 transformed sisomicin (4) to gentamicin C1a (9) and transformed verdamicin C2a (2) and its epimer, verdamicin C2 (3), to gentamicin C2a (11) and gentamicin C2 (12), respectively. Conclusion This finding indicated that in addition to its transamination activity, GenB4 exhibits specific 4′,5′ double-bond reducing activity and is responsible for the last step of gentamicin 3′,4′-di-deoxygenation. Taken together, we propose three new intermediates that may refine and supplement the specific biosynthetic pathway of gentamicin C components and lay the foundation for the complete elucidation of di-deoxygenation mechanisms. |
topic |
Gentamicin Di-deoxygenation GenB4 Reduction activity Transamination activity |
url |
http://link.springer.com/article/10.1186/s12934-020-01317-0 |
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