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Published on: January 7, 2022
Midecamycin Is Inactivated by Several Different Sugar Moieties at Its Inactivation Site
Ru Lin1, Li-Li Hong2, Zhong-Ke Jiang1
1NHC Key Laboratory of Biotechnology of Antibiotics, Institute of Medicinal Biotechnology, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100050, China.
Abstract:
Glycosylation inactivation is one of the important macrolide resistance mechanisms. The accumulated evidences attributed glycosylation inactivation to a glucosylation modification at the inactivation sites of macrolides. Whether other glycosylation modifications lead to macrolides inactivation is unclear. Herein, we demonstrated that varied glycosylation modifications could cause inactivation of midecamycin, a 16-membered macrolide antibiotic used clinically and agriculturally. Specifically, an actinomycetic glycosyltransferase (GT) OleD was selected for its glycodiversification capacity towards midecamycin. OleD was demonstrated to recognize UDP-D-glucose, UDP-D-xylose, UDP-galactose, UDP-rhamnose and UDP-N-acetylglucosamine to yield corresponding midecamycin 2'-O-glycosides, most of which displayed low yields. Protein engineering of OleD was thus performed to improve its conversions towards sugar donors. Q327F was the most favorable variant with seven times the conversion enhancement towards UDP-N-acetylglucosamine. Likewise, Q327A exhibited 30% conversion enhancement towards UDP-D-xylose. Potent biocatalysts for midecamycin glycosylation were thus obtained through protein engineering. Wild OleD, Q327F and Q327A were used as biocatalysts for scale-up preparation of midecamycin 2'-O-glucopyranoside, midecamycin 2'-O-GlcNAc and midecamycin 2'-O-xylopyranoside. In contrast to midecamycin, these midecamycin 2'-O-glycosides displayed no antimicrobial activities. These evidences suggested that besides glucosylation, other glycosylation patterns also could inactivate midecamycin, providing a new inactivation mechanism for midecamycin resistance. Cumulatively, glycosylation inactivation of midecamycin was independent of the type of attached sugar moieties at its inactivation site.
Insights
Varied glycosylation modifications, not just glucosylation, can inactivate the macrolide antibiotic midecamycin. This discovery reveals a new mechanism for midecamycin resistance, independent of the specific sugar attached.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Glycosylation inactivation is a known macrolide resistance mechanism, typically involving glucosylation.
- The role of other glycosylation modifications in macrolide inactivation remains unclear.
Purpose of the Study:
- To investigate if varied glycosylation modifications can inactivate the macrolide antibiotic midecamycin.
- To explore protein engineering of glycosyltransferase OleD for improved midecamycin glycosylation.
Main Methods:
- Utilized actinomycetic glycosyltransferase (GT) OleD for glycodiversification of midecamycin.
- Performed protein engineering on OleD to enhance its conversion rates for various sugar donors.
- Employed engineered OleD variants (Q327F, Q327A) for scale-up preparation of midecamycin glycosides.
Main Results:
- OleD recognized multiple sugar donors, producing various midecamycin 2'-O-glycosides with low initial yields.
- Protein engineering significantly enhanced OleD's conversion efficiency, particularly for UDP-N-acetylglucosamine (Q327F) and UDP-D-xylose (Q327A).
- Prepared midecamycin 2'-O-glucopyranoside, midecamycin 2'-O-GlcNAc, and midecamycin 2'-O-xylopyranoside, which lacked antimicrobial activity.
Conclusions:
- Diverse glycosylation patterns, beyond glucosylation, can inactivate midecamycin.
- This provides a novel inactivation mechanism contributing to midecamycin resistance.
- Glycosylation inactivation of midecamycin is independent of the specific sugar moiety attached.
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