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Redondo, A.

Publications and source records attributed to Redondo, A..

2 recordsLinked to original sources

Sex-dependent hypothalamic microinflammation and microglial polarization: The role of JNK in high-fat diet-induced insulin resistance

Obesity and its associated metabolic disorders, including insulin resistance and type 2 diabetes, are major global health challenges. Early hypothalamic microinflammation is emerging as a key contributor to the onset of metabolic dysfunction, but its temporal dynamics, underlying mechanisms, and sex-specific differences remain unclear. Here, we examined the effects of short-term high-fat diet (HFD) exposure on hypothalamic microinflammation, glial activation, and insulin signaling in male and female mice. Males rapidly developed hypothalamic microinflammation, characterized by increased pro-inflammatory cytokines, reactive gliosis, and impaired insulin signaling, whereas females did not show these alterations. Interestingly, we also observed a sex-specific pattern in microglial M2 polarization: females maintained a sustained M2 response throughout the experimental period, while males exhibited only a transient peak that declined in the following days. These sex-specific differences in microglial dynamics and polarization may be linked to the c-Jun N-terminal kinase pathway, a classical mediator of inflammatory signaling. To further explore this, we analyzed mice lacking JNK3, the CNS-enriched isoform of JNK. Loss of JNK3 disrupted early microglial polarization, abolished the transient M2 response, and predisposed males to enhanced gliosis and partial hypothalamic insulin resistance, while females retained partial resilience. These findings indicate that JNK3 contributes to the regulation of microglial dynamics and polarization in response to metabolic stress. Overall, our study highlights a sex-dependent role of microglia and JNK in shaping early hypothalamic microinflammation and central insulin sensitivity, providing potential targets for intervention in obesity-associated metabolic disease.

neuroscience↗

In-situ metagenomics: A platform for rapid sequencing and analysis of metagenomes in less than one day

We present here a complete system for metagenomic analysis that allows performing the sequencing and analysis of a medium-size metagenome in less than one day. This unprecedented development was possible due to the conjunction of state-of-the art experimental and computational advances: a portable laboratory suitable for DNA extraction and sequencing with nanopore technology; the powerful metagenomic analysis pipeline SqueezeMeta, capable to provide a complete analysis in a few hours and using scarce computational resources; and tools for the automatic inspection of the results via a graphical user interface, that can be coupled to a web server to allow remote visualization of data (SQMtools and SQMxplore). We have tested the feasibility of our approach in the sequencing of the microbiota associated to volcanic rocks in La Palma, Canary Islands. Also, we did a two-day sampling campaign of marine waters in which the results obtained the first day guided the experimental design of the second day. This system offers the possibility of prospecting any habitat in a quick way, obtaining both taxonomic and functional information about the target microbiome.

genomics↗