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Chemical Elicitors Induce Rare Bioactive Secondary Metabolites in Deep-Sea Bacteria under Laboratory Conditions

Bacterial genome sequencing has revealed a vast number of novel biosynthetic gene clusters (BGC) with potential to produce bioactive natural products. However, the biosynthesis of secondary metabolites by bacteria is often silenced under laboratory conditions, limiting the controlled expression of n...

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Detalles Bibliográficos
Autores principales: de Felício, Rafael, Ballone, Patricia, Bazzano, Cristina Freitas, Alves, Luiz F. G., Sigrist, Renata, Infante, Gina Polo, Niero, Henrique, Rodrigues-Costa, Fernanda, Fernandes, Arthur Zanetti Nunes, Tonon, Luciane A. C., Paradela, Luciana S., Costa, Renna Karoline Eloi, Dias, Sandra Martha Gomes, Dessen, Andréa, Telles, Guilherme P., da Silva, Marcus Adonai Castro, Lima, Andre Oliveira de Souza, Trivella, Daniela Barretto Barbosa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918856/
https://www.ncbi.nlm.nih.gov/pubmed/33673148
http://dx.doi.org/10.3390/metabo11020107
Descripción
Sumario:Bacterial genome sequencing has revealed a vast number of novel biosynthetic gene clusters (BGC) with potential to produce bioactive natural products. However, the biosynthesis of secondary metabolites by bacteria is often silenced under laboratory conditions, limiting the controlled expression of natural products. Here we describe an integrated methodology for the construction and screening of an elicited and pre-fractionated library of marine bacteria. In this pilot study, chemical elicitors were evaluated to mimic the natural environment and to induce the expression of cryptic BGCs in deep-sea bacteria. By integrating high-resolution untargeted metabolomics with cheminformatics analyses, it was possible to visualize, mine, identify and map the chemical and biological space of the elicited bacterial metabolites. The results show that elicited bacterial metabolites correspond to ~45% of the compounds produced under laboratory conditions. In addition, the elicited chemical space is novel (~70% of the elicited compounds) or concentrated in the chemical space of drugs. Fractionation of the crude extracts further evidenced minor compounds (~90% of the collection) and the detection of biological activity. This pilot work pinpoints strategies for constructing and evaluating chemically diverse bacterial natural product libraries towards the identification of novel bacterial metabolites in natural product-based drug discovery pipelines.