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Brandenburger, M.

Publications and source records attributed to Brandenburger, M..

2 recordsLinked to original sources

In Vivo Mutagenesis of a Ketosynthase Domain Uncovers Productivity and Specificity Control in Modular Polyketide Synthases

Ketosynthase domains govern chain transfer and substrate selectivity in modular polyketide synthases (PKS), yet their functional tunability in native contexts remains poorly understood. We performed phylogenetically guided mutagenesis of the KS5 domain from the Streptomyces cinnamonensis monensin PKS and evaluated 72 variants in vivo across wild-type and reductive-loop-null backgrounds. This revealed discrete active-site motifs that control productivity, redox-state specificity, and extender-unit selection, functions traditionally ascribed to other PKS domains. AlphaFold3 structural mapping linked these motifs to substrate-tunnel and catalytic-core features, providing a mechanistic basis for the observed phenotypes. Our findings demonstrate that KS domains can be rationally re-tuned to overcome productivity bottlenecks and alter specificity in intact PKSs, offering a route to improved yields and expanded chemical diversity in engineered polyketides.

biochemistry↗

Overcoming Biosynthetic Limitations to Enhance Bacterial Polyketide Production

The objective of this study was to enhance the production of monensin and its derivatives in Streptomyces sp. ATCC 15413. To this end the contributions of medium composition and enzyme engineering on polyketide biosynthesis were assessed. Enzyme engineering was implemented through a single-point mutation in KS5 of the polyketide synthase (PKS). This mutation increased premonensin productivity up to 29-fold, revealing and alleviating a rate-limiting step in the multi-enzyme biosynthetic pathway. Medium optimization proved comparably effective, raising titers by at least an order of magnitude across strains. Moreover, medium optimization and ketosynthase mutagenesis acted additively in the premonensin strain, further boosting its production. Overall, our findings show that medium optimization is the dominant factor in maximizing monensin yields, while enzyme engineering can deliver targeted benefits in specific contexts.

biochemistry↗