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Mateos, E.

Publications and source records attributed to Mateos, E..

3 recordsLinked to original sources

Pseudomonas putida JM37 as a novel bacterial chassis for ethylene glycol upcycling

Ethylene glycol (EG), one of the main monomers of polyethylene terephthalate (PET), is an attractive target for microbial upcycling. Despite this interest, there is a limited number of described organisms that can efficiently metabolise EG. Here, we report the metabolic and biotechnological potential of Pseudomonas putida JM37 as a novel bacterial chassis for EG valorization. We show that JM37 efficiently grows on EG as the sole carbon and energy source, outperforming other Pseudomonas strains. Genome sequencing and directed mutagenesis revealed that genetic redundancies in the glyoxylate assimilation pathways underlie its robust EG metabolism. Beyond biomass generation, we demonstrated the biotechnological potential of JM37. This strain was able to accumulate medium-chain polyhydroxyalkanoates (mcl-PHAs), dominated by C10 monomers, directly from EG. Moreover, JM37 successfully expressed heterologous biosynthetic pathways, including a violacein biosynthetic operon and a PET-hydrolase which has been secreted actively into the extracellular medium. Together, our results support the use of P. putida JM37 as a versatile synthetic biology chassis for sustainable EG upcycling and as a promising platform for circular bioproduction.

synthetic biology↗

Genomic exaptation and regulatory landscape shifts as key mechanisms enabling flatworm terrestrialization

Understanding the genomic toolkit that facilitated animal terrestrialization--the transition from aquatic to terrestrial environments--is crucial for unravelling the evolutionary processes behind the origin and diversification of terrestrial biodiversity. Despite its significance, the genomic foundations driving the physiological and metabolic adaptations required for life on land remain largely unexplored across most terrestrial animal phyla. Planarians (phylum Platyhelminthes) represent an ideal model for studying terrestrialization, as only one terrestrial lineage, the family Geoplanidae (order Tricladida) is known to exist. Here, we used an integrative approach combining genomics, transcriptomics, and proteomics to investigate the genetic underpinnings potentially facilitating adaptation to terrestrial environments. Our analysis revealed a significant burst of gene gain preceding the diversification of terrestrial planarians and their split from freshwater relatives, in the branch leading to Tricladida. Upon exposure to abiotic stress, terrestrial and freshwater planarians exhibited distinct genetic toolkits: most differentially expressed genes emerged in orthologous groups gained specifically in the branch leading to Tricladida, over half of which showed signs of strong directional selection in terrestrial flatworms, indicating their adaptive importance for land colonization. Transcriptomic analyses further revealed contrasting stress responses: terrestrial planarians upregulated ancient genes whose origin predates the Geoplanidae lineage to cope with abiotic stress, while freshwater planarians downregulated a separate set of ancestral genes. Our genomic, transcriptomic, and proteomic data consistently show that the genetic toolkit for abiotic stress response in terrestrial planarians is highly differentiated from that of their freshwater counterparts, with significant regulatory shifts as well. Overall, our findings suggest a burst of gene gain in the Tricladida lineage, with co-option of these genes, rather than clade-specific innovations, playing a critical role in the origin and diversification of terrestrial flatworms. This underscores genomic exaptation and regulatory landscape shifts as key mechanisms enabling terrestrialization within Platyhelminthes. This study offers the first genome-wide insight into the genetic toolkit underlying flatworm terrestrialization and contributes broadly to understanding the genomic basis of animal terrestrialization.

evolutionary biology↗

Disentangling the evolutionary history of terrestrial planarians through phylogenomics

Triclads (Platyhelminthes, Tricladida) are found in marine, freshwater, and terrestrial habitats worldwide except Antarctica. Terrestrial planarians are grouped into the family Geoplanidae, which is subdivided into the subfamilies Geoplaninae, Bipaliinae, Rhynchodeminae, and Microplaninae. Some of these subfamilies result from taxonomic rearrangements based on molecular phylogenies inferred from a few molecular markers. However, the diagnosis of Rhynchodeminae was not aligned with the morphology of all its representatives. While the subfamilies are recovered as monophyletic in recent molecular phylogenies, robust hypotheses regarding the relationships between them remain unknown. In this study, we employ for the first time a phylogenomic framework to investigate the evolutionary relationships among the subfamilies, starting by obtaining the first transcriptomes for 15 species of terrestrial planarians. A total of 16 different datasets, comprising nearly two thousand single-copy genes inferred from transcriptomic data, were analyzed using various phylogenetic inference methods. We recovered, for the first time, a well-supported topology of phylogenetic relationships among Geoplanidae subfamilies, positioning Bipaliinae and Microplaninae as a clade sister to Rhynchodeminae + Geoplaninae. Internal relationships within the genus Microplana were not supported in our analyses. The subfamily Rhynchodeminae, represented in our phylogeny by species from the tribes Rhynchodemini and Caenoplanini, is re-diagnosed to align with previous taxonomic rearrangements. This study not only represents a significant step forward in the phylogenetic resolution of Geoplanidae but also provides important insights into the broader evolutionary dynamics shaping land planarian diversity. HighlightsO_LIFirst transcriptomes of multiple terrestrial planarians sequenced. C_LIO_LIFirst molecular phylogeny of terrestrial planarians at subfamily level based on transcriptomic data. C_LIO_LIHighly supported topology for phylogenetic interrelationship among terrestrial planarians subfamilies. C_LIO_LIUnclear interrelationships between species from the genus Microplana. C_LIO_LIThe subfamily Rhynchodeminae is re-diagnosed at the morphological level. C_LI

evolutionary biology↗