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Biology subjects

Rios, L.

Publications and source records attributed to Rios, L..

3 recordsLinked to original sources

A blastema in sea star larvae integrates wound signaling to drive regeneration-specific and developmental gene expression patterns.

Whether regeneration depends on the reactivation of developmental programs, regeneration-specific regulatory mechanisms, or both remains a central question in regeneration biology. Here, we investigate these processes in regenerating larvae of the sea star Patiria miniata, a deuterostome with robust regenerative capacity. By integrating single-nucleus transcriptomics with chromatin accessibility profiling across development and regeneration, we identify a regeneration-induced blastema cell state that is molecularly distinct from pre-existing larval populations and serves as the source of regenerated tissues. We show that regeneration is associated with distinct classes of regeneration-responsive enhancers, including regeneration-specific elements and enhancers reused from development, which link wounding signals to gene regulatory network (GRN) activation. These enhancer classes converge on regulatory programs associated with the transcription factor Runx, positioning Runx as a central node within the inferred regeneration GRN. Notably, we identify a Runx-associated regulatory framework that provides a mechanistic explanation for the de novo emergence of sox4 cells during regeneration through novel deployment of developmentally shared enhancers. Together, our results provide a framework for how wound-induced signals specify regenerative cell states and how regeneration-specific and developmental gene regulatory networks may be coordinated to rebuild lost tissues.

developmental biology↗

A habenula-enriched GPCR, GPR151, regulates behavioral sensitivity to inflammation

BackgroundInflammation-associated depression is a subtype of major depressive disorder that is often resistant to conventional pharmacotherapies, which act in a regionally non-specific manner and therefore also produce unwanted side effects. Here we test GPR151, an orphan GPCR associated with inflammation and highly expressed in the habenula--a region linked to negative valence and depression--as a therapeutic target for inflammation-associated depression. MethodsWe integrated mouse and human habenular expression analyses with genetic loss-of-function and adult habenular re-expression approaches in mice. Gpr151 knockout mice and littermate controls were exposed to lipopolysaccharide (LPS) inflammatory challenge and assessed for stress coping and motivated behavior, body weight loss, and peripheral immune activation. To test whether adult habenular GPR151 expression is sufficient to restore inflammation-associated behavioral vulnerability, GPR151 was re-expressed in the habenula of knockout mice. ResultsGPR151 was exceptionally enriched in the habenula and showed conserved topographic organization and similar expression relationships with habenular marker genes in mice and humans. Following LPS challenge, male Gpr151 knockout mice showed reduced passive coping despite body weight loss and immune activation comparable to littermate controls. Adult habenular GPR151 re-expression increased LPS-induced amotivation in male knockout mice without increasing LPS-induced weight loss or immune activation. Female Gpr151 knockout mice also showed reduced passive coping after LPS challenge; however, habenular GPR151 re-expression was insufficient to increase LPS-induced amotivation in females. ConclusionsThese findings identify GPR151 as a conserved, regionally enriched regulator of behavioral sensitivity to inflammatory challenge and support GPR151 as a candidate therapeutic target for inflammation-associated depression.

neuroscience↗

Evolutionary rise of a synaptic mechanism for creating and diversifying key reinforcement signals

Most neurons release either excitatory or inhibitory neurotransmitters. However, multiple inputs to the lateral habenula (LHb) co-transmit glutamate and GABA, transmitters with opposing effects on LHb output. Although the LHb has an established role in reinforcement learning, the adaptive significance of glutamate/GABA co-release remains unclear. Using experimentally informed simulations, we show that GABA co-release is sufficient to produce temporal difference (TD)-like transformations of input activity, computations commonly used for reinforcement learning and behavioral optimization. Heterogeneous GABA-to-glutamate ratios, like those found among LHb neurons ex vivo, produce diverse TD-like computations linked to higher-order decision-making. Single-cell RNA-sequencing analysis and machine-learning image analysis further indicate that glutamate/GABA co-release expanded across vertebrate evolution, from fish to mice, rats, and monkeys. Evolutionary expansion of glutamate/GABA co-release may have supported increasingly sophisticated learning and decision-making that contribute to intelligent behavior.

neuroscience↗