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Femenia, T.

Publications and source records attributed to Femenia, T..

2 recordsLinked to original sources

Local recurrent circuits modulate visual center and surround interactions in the mouse superior colliculus

Center-surround interactions are fundamental to visual saliency computation, but debate continues over whether and how subcortical visual circuits actively contribute. To address this, we developed an optogenetic approach to delineate the visual center and surround zones of individual neurons in the superficial layer of the superior colliculus (SCs) using only retinal ganglion cell input. Using whole-cell recordings, we demonstrate that surround network activation suppresses center excitability, indicating that SCs circuitry is self-sufficient in driving center-surround dynamics. Through cell-type-specific trans-synaptic tracing and large-scale modeling, we identified an SCs-based circuit with two key motifs driving surround modulation: recurrent excitation and feedback inhibition. We propose that subcortical visual circuits in the SCs have evolved to perform surround suppression alongside retinal and cortical suppression, facilitating the distribution of parallel saliency computations across different levels. Significance statementThis study questions the notion that the superior colliculus (SC) merely acts as a passive recipient of saliency information from upstream circuits. We demonstrate that the SC can independently generate center-surround interactions that could contribute to visual saliency through local circuits without top-down input. This ability represents a computation that has been conserved since the dawn of vertebrate evolution. By mapping these interactions, we reveal that the mouse SC actively induces visual surround suppression. These findings suggest that phylogenetically older circuits in the SC may play a more independent role in active vision than previously acknowledged, prompting a reevaluation of visual saliency processing across subcortical brain regions.

neuroscience↗

Metabolic resilience is encoded in genome plasticity

Metabolism plays a central role in evolution, as resource conservation is a selective pressure for fitness and survival. Resource-driven adaptations offer a good model to study evolutionary innovation more broadly. It remains unknown how resource-driven optimization of genome function integrates chromatin architecture with transcriptional phase transitions. Here we show that tuning of genome architecture and heterotypic transcriptional condensates mediate resilience to nutrient limitation. Network genomic integration of phenotypic, structural, and functional relationships reveals that fat tissue promotes organismal adaptations through metabolic acceleration chromatin domains and heterotypic PGC1A condensates. We find evolutionary adaptations in several dimensions; low conservation of amino acid residues within protein disorder regions, nonrandom chromatin location of metabolic acceleration domains, condensate-chromatin stability through cis-regulatory anchoring and encoding of genome plasticity in radial chromatin organization. We show that environmental tuning of these adaptations leads to fasting endurance, through efficient nuclear compartmentalization of lipid metabolic regions, and, locally, human-specific burst kinetics of lipid cycling genes. This process reduces oxidative stress, and fatty-acid mediated cellular acidification, enabling endurance of condensate chromatin conformations. Comparative genomics of genetic and diet perturbations reveal mammalian convergence of phenotype and structural relationships, along with loss of transcriptional control by diet-induced obesity. Further, we find that radial transcriptional organization is encoded in functional divergence of metabolic disease variant-hubs, heterotypic condensate composition, and protein residues sensing metabolic variation. During fuel restriction, these features license the formation of large heterotypic condensates that buffer proton excess, and shift viscoelasticity for condensate endurance. This mechanism maintains physiological pH, reduces pH-resilient inflammatory gene programs, and enables genome plasticity through transcriptionally driven cell-specific chromatin contacts. In vivo manipulation of this circuit promotes fasting-like adaptations with heterotypic nuclear compartments, metabolic and cell-specific homeostasis. In sum, we uncover here a general principle by which transcription uses environmental fluctuations for genome function, and demonstrate how resource conservation optimizes transcriptional self-organization through robust feedback integrators, highlighting obesity as an inhibitor of genome plasticity relevant for many diseases.

systems biology↗