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Biology subjects

Nadal-Molero, F.

Publications and source records attributed to Nadal-Molero, F..

3 recordsLinked to original sources

Eco-evolutionary dynamics of active virus-host interactions in a freshwater lake: revealed through metaHi-C

Detecting active phage-bacteria interactions in natural microbial communities remains a major limitation for understanding their ecological dynamics and associated co-evolutionary processes. Here, we applied metaHi-C, a chromosome conformation capture method, to resolve active virus-host associations in a freshwater microbial community. From >900 microbial and >33,000 viral Hi-C-assembled genomes, we identified 100 high-confidence phage-host linkages spanning major freshwater bacterial lineages, including Limnohabitans, Acidimicrobium, Synechococcus, Candidatus Nanopelagicus, Candidatus Planktophila, Candidatus Methylopumilus and Polynucleobacter. The inferred networks revealed diverse infection patterns, including broad-host-range phages, cellular-level co-infection, kill-the-winner dynamics and one-to-one interactions. These ecological patterns were associated with signatures of diversifying selection in host-interaction genes, consistent with host-range expansion, alongside conserved genomic regions in broad-host-range and co-infecting phages, indicating functional constraints on essential infection modules. Together, these results demonstrate that metaHi-C enables direct linking of community-level infection dynamics to underlying evolutionary processes, revealing how these forces shape bacterial population dynamics of freshwater bacteria.

microbiology↗

Integrative mobilizable elements are pervasive throughout Pseudomonadota

Integrative mobilizable elements (IMEs) are mobile genetic elements that reside stably integrated into chromosomes and rely on helper conjugative elements for horizontal transfer. Here, we identify and characterize a widespread family of IMEs, named Pseudomonadota Integrative Mobilizable Elements (PIMEs), which are distributed exclusively in the Pseudomonadota phylum. Genome and phylogenomic analyses reveal [~]1,000 putative PIMEs, comprising at least four distinct PIME subfamilies defined by distinctive genomic organizations and conserved hallmark features. Characterized PIMEs depend on helper conjugative plasmids of the incompatibility group P (IncP) and, upon induction, PIMEs excise, replicate and mobilize intra- and inter-species. Remarkably, the representative PIME and its helper conjugative plasmid engages in cross-complementation, revealing an unrecognized level of functional interplay between hijacker and helper element. We also demonstrate that PIMEs act as reservoirs of known and novel prokaryotic immune systems. Overall, our findings uncover an overlooked and disseminated family of IMEs, which likely plays an important role in bacterial ecology and evolution.

microbiology↗

Bridging Viruses and Prokaryotic Host through Miniature Inverted-repeat Transposable Elements (MITEs)

Transposable elements (TEs) have a pivotal role in the evolution of genomes across all life domains. "Miniature Inverted-repeat Transposable-Elements" (MITEs) are non-autonomous TEs mainly located in intergenic regions, relying on external transposases for mobilization. The boundaries of MITEs mobilome were explored across nearly 1700 prokaryotic genera, 183232 genomes, revealing a widespread distribution. MITEs were identified in 56.5% of genomes, totaling over 1.4 million cMITEs (cellular). Cluster analysis revealed that a significant 97.4% of cMITEs were conserved within genera boundaries, with up to 23% being species-specific. Subsequently, this genus-specificity was evaluated as a tool to link microbial host to their viruses. A total of 51655 cMITEs had counterparts in viral sequences, termed vMITE (viral), resulting in the identification of 2798 viral sequences with vMITEs. Among these, 1501 sequences were positively assigned to a previously known host (41.8% were isolated virus, and 12.3% were assigned through CRISPR data), while 379 new host-virus associations were predicted. Deeper analysis in Neisseria and Bacteroidetes groups allowed the association of 242 and 530 new additional viral sequences, respectively. Given the abundance of non-culturable virus sequences accumulated in databases lacking affiliations with their microbial targets, MITEs are proposed as a novel approach to establishing valid virus-host relationships. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=126 SRC="FIGDIR/small/576219v1_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@f30826org.highwire.dtl.DTLVardef@19bff7borg.highwire.dtl.DTLVardef@a206eaorg.highwire.dtl.DTLVardef@17408ab_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗