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Biomedical subjects

Linquan Bai

Publications and source records attributed to Linquan Bai.

2 recordsLinked to original sources

An efficient endogenous type I-E CRISPR-Cas genome-editing platform for producing transglutaminase in Streptomyces mobaraensis.

Streptomyces mobaraensis is an industrially important actinomycete capable of producing transglutaminase (TGase), a valuable crosslinking enzyme that is widely used in the food, pharmaceutical, and textile industries. However, its genetic manipulation remains challenging owing to the lack of efficient genome-editing tools. Here, we characterized an endogenous type I-E CRISPR-Cas system in S. mobaraensis IPIO2 through bioinformatics analysis and plasmid interference assays, identifying the protospacer adjacent motif as 5'-AAC-3'. We engineered an artificial editing plasmid, pCRISPR, by inserting a mini-CRISPR array (repeat-spacer-repeat) and homologous recombination repair templates into the replicative plasmid pJTU1278. This system exhibited high editing efficiencies, achieving 70% for single-gene deletions and 75-80% for large DNA fragment deletions ranging from 10 to 40 kb. Based on this system, deletion of four genes consistently downregulated during TGase production, identified through comparative proteomics, enhanced TGase production by 8.5-18.5%. Furthermore, deleting the pseudouridimycin and piericidin A1 biosynthetic gene clusters using this system significantly improved the safety profile of TGase production, resulting in a 17% increase in TGase yield. This study established a robust and efficient endogenous CRISPR-Cas-based genome-editing platform in S. mobaraensis, providing a powerful tool for strain engineering and industrial optimization of TGase production.

Comparative proteomics

Biosynthesis and Glycosylation of Antarlides, the Polyene Macrolides Possessing Androgen Receptor Antagonistic Activity.

Antarlides (ATLs) are tetraene macrolides discovered from Streptomyces spp. They demonstrated excellent antagonist activities toward mutated androgen receptors (ARs) related to the drug resistances in AR-targeted prostate cancer treatment. Herein, a biosynthetic gene cluster (BGC) of type I modular polyketide synthases (PKSs) from S. conglobatus ATCC 31005 was verified to be responsible for the biosynthesis of ATLs in the heterologous host S. lividans SBT5. The atl BGC was also activated in situ in S. conglobatus by equipping a strong promoter for the PKS genes operon. Unexpectedly, a new glycosylated product, ATL D1, was produced in the heterologous expression. ATL D1 was also generated in the S. conglobatus mutant bearing activated atl BGC through the introduction of a GT1 family glycosyltransferase gene mgt from S. lividans. Enzymatic analysis showed that the protein MGT catalyzed the glycosylation of ATL D to yield ATL D1 by attaching a β-d-glucose to the C11-hydroxyl position. Moreover, site-directed mutation of MGT resulted in an iterative glycosylation to yield ATL D2 bearing a disaccharide at the C11-hydroxyl. These results offer a platform for constructing efficient biosynthetic pathway of ATLs, and the O-glycosylation could be applied to improve the pharmaceutical properties of ATLs.

Glycosylation