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Montoya, J.

Publications and source records attributed to Montoya, J..

3 recordsLinked to original sources

Metagenome-based vertical profiling of the Gulf of Mexico highlights its uniqueness and far-reaching effects of freshwater input

Genomic and metagenomic explorations of the oceans have identified well-structured microbial assemblages showing endemic genomic adaptations with increasing depth. However, deep water column surveys have been limited, especially of the Gulf of Mexico (GoM) basin, despite its importance for human activities. To fill this gap, we report on 19 deeply sequenced [[~]5 Gbp/sample] shotgun metagenomes collected along a vertical gradient, from the surface to about 2,000m deep, at three GoM stations. Beta diversity analysis revealed strong clustering by depth, and not by station, even when including previously determined samples from other ocean basins. However, a community level pangenome style gene content analysis revealed [~]54% of predicted gene sequences to be station specific within our GoM samples. Of the 154 high-quality MAGs recovered, 145 represent novel species compared to NCBI genomes and TARA MAGs databases. Two of these MAGs were relatively abundant at both surface and deep samples, revealing remarkable versatility across the water column. A few MAGs of freshwater origin ([~]6% of total detected) were relatively abundant at 600m deep and 270 miles from the coast at one station, revealing that the effects of freshwater input in the GoM can sometimes be far-reaching and long-lasting. Notably, 1,447/16,068 of the total COGs detected were positively (Pearsons r [≥] 0.5) or negatively (Pearsons r [≤] -0.5) correlated with depth including beta-lactamases, dehydrogenase, and CoA-associated oxidoreductases. Taken together our results reveal substantial novel genome and gene diversity across the GoMs water column, and testable hypotheses for some of the diversity patterns observed. IMPORTANCETo what extent microbial communities are similar between different ocean basins at similar depths and what the impact of freshwater input by major rivers may be on these communities remain poorly understood issues with potentially important implications for modeling and managing marine biodiversity. In this study, we performed metagenomic sequencing and recovered 154 high-quality metagenome-assembled genomes (MAGs) from three stations in the Gulf of Mexico (GoM) and from various depths up to about 2000m. Comparison to similar data from other ocean basins highlight the unique diversity harbored by the GoM, which could be driven by more substantial input by the Mississippi River and by human activities, including offshore oil drilling. The data and results provided by this study should be useful for future comparative analysis of marine biodiversity and contribute toward its more complete characterization.

microbiology↗

A secreted fatty acid- and retinol- binding protein from Heligmosomoides polygyrus suppresses host macrophage polarization

Parasitic nematodes are major pathogens of humans, animals, and plants, contributing to global health challenges and substantial agricultural losses. Fatty acid- and retinol-binding proteins (FARs), secreted by parasitic nematodes, are believed to play key roles in host-pathogen interactions, including immune modulation and nutrient acquisition. In this study, we characterize a FAR protein from the gastrointestinal nematode Heligmosomoides polygyrus, Hp-FAR-2. Unlike FARs from Caenorhabditis elegans, Steinernema carpocapsae, and Ancylostoma ceylanicum, Hp-FAR-2 did not influence immunity or survival in a Drosophila melanogaster infection model, suggesting functional divergence within the FAR family. Competitive lipid-binding assays revealed a preference for omega-3 and omega-6 polyunsaturated fatty acids, indicating selective binding to bioactive lipids that may modulate immunity. Using RAW 264.7 macrophages, we found that Hp-FAR-2 suppresses the expression of both M1-associated (TNF-, IL-6) and M2-associated (Chil3) markers during polarization, implicating it as a broad immunomodulator that may inhibit inflammatory responses and tissue repair mechanisms to promote chronic infection. Our findings support a model in which Hp-FAR-2 disrupts host lipid signaling and immune function to favor parasite persistence, suggesting its potential role in the excretory/secretory products of H. polygyrus. Together, these data enhance our understanding of FAR-mediated host manipulation and may inform the development of novel anthelmintic or immunoregulatory therapies.

biochemistry↗

Behavioral risk models explain locomotor and balance changes when walking at virtual heights

Walking in daily life requires humans to adapt to environments that can influence ones fear of falling and anxiety about a potential fall. In such environments, individuals may adopt compensatory locomotor and balance changes to maintain a constant expected risk function equal to the product of the probability of some event (e.g., a fall) and the cost of that event (e.g., injury or death). Here, we tested whether locomotor behaviors broadly align with this risk model in two experiments with height-related threats in immersive virtual reality. In Experiment 1, we examined how individuals change their locomotor trajectory while walking along a straight high-elevation walkway. In Experiment 2, we examined how individuals change trajectory and balance control during curved walking where the location of high elevation threat varied. Participants adopted two behaviors that decreased their probability of falling off the edge and aligned with the risk-based model: participants altered their proximity to perceived threats that pose high costs (e.g., a high-elevation ledge), and decreased mediolateral center of mass velocity when that was not possible. Taken together, our results suggest that individuals alter locomotor behavior to change the probability of falling based on the perceived cost of that fall.

neuroscience↗