1. In this project, we address significant gaps in our understanding of trans-acyltransferase polyketide synthases (trans-AT PKSs), complex multimodular biosynthetic enzymes that generate bioactive polyketide natural products in bacteria. These gaps include their natural evolution, biochemical features (substrate specificity), structural features, protein-protein interactions/recognition, and protein dynamics. Such understanding is crucial to realizing the overarching aim of the project, namely constructing functional artificial PKSs. The design of new trans-AT PKSs is a challenging task, requiring experimentation to determine whether the inherent catalytic flexibility is sufficient for generating hybrid “mosaic” enzyme systems and their corresponding products.
2. The project provides a discovery- and a bacterial production platform for novel bioactive substances for which no economic chemical syntheses are available due to their complex molecular structures. Access to such molecules is crucial for their further development as drug candidates to fight the imminent drug resistance crisis (antibiotics/anti-cancer therapeutics). As trans-AT PKSs incorporate unparalleled diversity in chemical space and naturally evolve by forming hybrid enzymes, harnessing their combinatorial potential presents an unprecedented opportunity for the discovery and engineering of new pharmaceutically-relevant chemical space.
3. In the framework of this project, methods for renewable production of complex bioactive natural products (both known and novel) will be developed. The SynPlex project aims to understand the principles of how modular enzyme reorganization during natural evolution resulted in metabolic complexity. These evolutionary principles will be applied to the development of general synthetic biology modules to enable future access to complex, synthetically challenging metabolites. Therefore, we aim to gain fundamental insights into the function of multi-domain enzymes and biosynthetic modules and to harness the mechanisms giving rise to their metabolic complexity. By utilizing the versatility of evolution-based enzyme design for large multifunctional proteins, one could generate an efficient, predictive, and adaptable engineering strategy for modular enzymes. To realize this goal, the project aims to (i) identify global patterns of PKS evolution across bacteria, (ii) identify PKS enzymes and modules with new functions to create a synthetic biology toolbox, (iii) develop a bacterial production host for hybrid PKSs, and (iv) to characterize the recombinant polyketides.