bioRxiv Science⌕ Search

Biology subjects

Aguado, B.

Publications and source records attributed to Aguado, B..

4 recordsLinked to original sources

Dispersal, adaptation and persistence of H5N1 in the sub-Antarctic and Antarctica

High pathogenicity avian influenza virus (HPAIV) H5N1 reached the sub-Antarctic and Antarctica in 2023, subsequently spreading to remote locations within this region where it had devastating impacts on seal, penguin and albatross populations. The threat to marine wildlife over this broad area exemplifies the need to understand H5N1 long-distance dispersal and evolution. We obtained 104 novel viral genomic sequences from samples that we collected at South Georgia, Kerguelen, Crozet, Prince Edward, Falklands/Malvinas Islands and the Antarctic Peninsula in a region spanning 8,000 kilometers. Using recent phylogeographic modeling advances we show that H5N1 spread encompassed numerous transmission events between distant locations, accumulating mammalian-adaptive mutations in the process. Seals are the most affected species, but we reveal that the long-distance eastward virus dispersal better aligns with the long-distance movements of large petrels and albatrosses. The risk of H5N1 endemisation, dispersal to other locations and ongoing evolution are highly concerning.

microbiology↗

The expanding avian influenza panzootic: skua die-off in Antarctica

High pathogenicity avian influenza virus of subtype H5 (H5 HPAIV), clade 2.3.4.4b, invaded Antarctica in 2023. Here we show that H5 HPAIV caused high mortality in a breeding colony of skuas at one of ten sites we visited in March 2024. By combined virological and pathological analyses, we found that H5 HPAIV caused multi-organ necrosis and rapid death in skuas. Taken together with recent data, skuas in Antarctica are at risk of continued mortality from H5 HPAIV infection, threatening their already small populations. Conversely, because of their wide distribution and ecological relevance, skuas may play a substantial role in spread of the virus across Antarctica. Transdisciplinary surveillance is needed in coming years to monitor the impact of this poultry-origin disease on Antarcticas unique wildlife.

microbiology↗

The predictive outfielder: a critical test across gravities

Intercepting moving targets, like fly balls, is a common challenge faced by several species. Historically, models attempting to explain this behavior in humans have relied on optical variables alone. Such models, while insightful, fall short in several respects, particularly in their lack of predictive capabilities. This absence of prediction limits the ability to plan movements or compensate for inherent sensorimotor delays. Moreover, these traditional models often imply that an outfielder must maintain a constant gaze on the target throughout to achieve successful interception. In this study, we present a new model that continuously updates its predictions, not just on the immediate trajectory of the ball, but also on its eventual landing position in the 3D scene and remaining flight time based on the outfielders real time movements. A distinct feature is the models adaptability to different gravitational scenarios, making its predictions inherently tailored to specific environmental conditions. By actively integrating gravity, our model produces trajectory predictions that can be validated against actual paths, providing a significant departure from previous models. To compare our model to the traditional ones, we conducted experiments within a virtual reality setting, strategically varying simulated gravity among other parameters. This gravity variation yielded qualitatively distinct predictions between error-nulling optical-based heuristics and our model. The trajectories, kinematic patterns and timing responses produced by participants were in good agreement with the predictions of our proposed model, suggesting a paradigm shift in our understanding of interceptive actions. Significance statementCatching a moving target, a challenge consistently faced across various species, exemplifies the complex interplay between perception, prediction, and motor action in dynamic environments. Prevailing models have been largely rooted in optical cues, often overlooking the predictive capacities essential for understanding real-world human behaviors and sidestepping crucial physical variables such as gravity. Our research introduces a novel model that emphasizes both the predictive component and the broader gravitational dynamics allowing for a more holistic understanding of interception tasks. This innovative approach not only holds implications for refining existing models of interception but also carries broader significance for training platforms, ensuring relevance across diverse settings, from Earth to altered gravity environments.

neuroscience↗

LOSS OF CLDN5 -AND INCREASE IN IRF7- IN THE HIPPOCAMPUS AND CEREBRAL CORTEX OF DIABETIC MICE AT THE EARLY SYMPTOMATIC STAGE.

Analyzing changes in gene expression within specific brain regions of individuals with Type 2 Diabetes (T2DM) who do not exhibit significant cognitive deficits can yield valuable insights into the mechanisms that may underlie the progression toward a more severe phenotype, for example as when individuals age. Here, we present evidence that adult mice with long-term type 2 diabetes mellitus (T2DM) and minor cognitive deficits display alterations in the expression of 27 genes in the cerebral cortex and 16 genes in the hippocampus compared to non-T2DM mice. Only six of these genes undergo the same type of change both in the cortex and hippocampus: Interferon regulatory factor 7 (Irf7), Hypoxia-inducible factor 3 alpha (Hif-3), period circadian clock 2 (Per2), xanthine dehydrogenase (Xdh), and Transforming growth factor {beta}-stimulated clone 22/TSC22 (Tscd3) are all upregulated, while Claudin-5 (Cldn5) is downregulated. At the protein level, Claudin5 and IRF7 showed equivalente changes: downregulation of CLDN5 and upregulation of IRF7. These results suggest that cognitive deficits linked to chronic T2DM may stem from compromised blood-brain barrier integrity and an abnormal inflammatory response in the early stages of the disease. This underscores the potential for therapeutic interventions targeting CLDN5 and IRF7.

neuroscience↗