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<title>Unveiling the genomic potential of Pseudomonas type strains for discovering new natural products</title>
<creator>Saati Santamaría, Zaki</creator>
<creator>Selem-Mojica, Nelly</creator>
<creator>Peral Aranega, Ezequiel</creator>
<creator>Rivas González, Raúl</creator>
<creator>García Fraile, Paula</creator>
<subject>BGCs</subject>
<subject>BiG-SCAPE / CORASON</subject>
<subject>Comparative genomics</subject>
<subject>EvoMining</subject>
<subject>Pan-genome</subject>
<subject>Secondary metabolites</subject>
<description>[EN]Microbes host a huge variety of biosynthetic gene clusters that produce an immeasurable array of secondary metabolites&#xd;
with many different biological activities such as antimicrobial, anticarcinogenic and antiviral. Despite the complex task of isolating&#xd;
and characterizing novel natural products, microbial genomic strategies can be useful for carrying out these types of&#xd;
studies. However, although genomic-based&#xd;
research on secondary metabolism is on the increase, there is still a lack of reports&#xd;
focusing specifically on the genus Pseudomonas. In this work, we aimed (i) to unveil the main biosynthetic systems related to&#xd;
secondary metabolism in Pseudomonas type strains, (ii) to study the evolutionary processes that drive the diversification of&#xd;
their coding regions and (iii) to select Pseudomonas strains showing promising results in the search for useful natural products.&#xd;
We performed a comparative genomic study on 194 Pseudomonas species, paying special attention to the evolution and&#xd;
distribution of different classes of biosynthetic gene clusters and the coding features of antimicrobial peptides. Using EvoMining,&#xd;
a bioinformatic approach for studying evolutionary processes related to secondary metabolism, we sought to decipher&#xd;
the protein expansion of enzymes related to the lipid metabolism, which may have evolved toward the biosynthesis of novel&#xd;
secondary metabolites in Pseudomonas. The types of metabolites encoded in Pseudomonas type strains were predominantly&#xd;
non-ribosomal&#xd;
peptide synthetases, bacteriocins, N-acetylglutaminylglutamine&#xd;
amides and ß-lactones. Also, the evolution of&#xd;
genes related to secondary metabolites was found to coincide with Pseudomonas species diversification. Interestingly, only a&#xd;
few Pseudomonas species encode polyketide synthases, which are related to the lipid metabolism broadly distributed among&#xd;
bacteria. Thus, our EvoMining-based&#xd;
search may help to discover new types of secondary metabolite gene clusters in which&#xd;
lipid-related&#xd;
enzymes are involved. This work provides information about uncharacterized metabolites produced by Pseudomonas&#xd;
type strains, whose gene clusters have evolved in a species-specific&#xd;
way. Our results provide novel insight into the&#xd;
secondary metabolism of Pseudomonas and will serve as a basis for the prioritization of the isolated strains. This article contains&#xd;
data hosted by Microreact.</description>
<date>2024-01-15</date>
<date>2024-01-15</date>
<date>2022-02-23</date>
<type>info:eu-repo/semantics/article</type>
<identifier>Saati-Santamaría, Z., Selem-Mojica, N., Peral-Aranega, E., Rivas, R., &amp; García-Fraile, P. (2022). Unveiling the genomic potential of Pseudomonas type strains for discovering new natural products. Microbial genomics, 8(2). https://doi.org/10.1099/mgen.0.000758</identifier>
<identifier>http://hdl.handle.net/10366/154259</identifier>
<identifier>10.1099/mgen.0.000758</identifier>
<identifier>2057-5858</identifier>
<language>eng</language>
<relation>https://doi.org/10.1099/mgen.0.000758</relation>
<relation>Escalera de Excelencia CLU-2018- 04</relation>
<rights>http://creativecommons.org/licenses/by-nc-nd/4.0/</rights>
<rights>info:eu-repo/semantics/openAccess</rights>
<rights>Attribution-NonCommercial-NoDerivatives 4.0 Internacional</rights>
<publisher>Microbiology Society</publisher>
</thesis></metadata></record></GetRecord></OAI-PMH>