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Biology subjects

Natua, S.

Publications and source records attributed to Natua, S..

2 recordsLinked to original sources

Reducing Cofilin dosage makes embryos resilient to heat stress

In addition to regulating actin dynamics, Cofilin also senses and responds to physiological stress and can determine cell survival outcomes. Yet, the full picture of Cofilin's role in stress response is lacking. Here, we used imaging and RNA-seq methods to show that exposing early Drosophila melanogaster embryos to either acute or chronic heat stress (32{degrees}C) induces a Cofilin-mediated Actin Stress Response (ASR) and leads to upregulation of genes associated with both heat shock and Endoplasmic Reticulum (ER) unfolded protein responses. Reducing cofilin gene dosage (cofilin+/-) in heat-stressed embryos modulates all observed stress responses and partially rescues embryo survival. Unexpectedly we find that heat shock- and ER- stress response modulation arises because non-stressed cofilin+/- embryos already show upregulation of heat shock- and ER- stress response genes, prior to heat exposure. Our data support a model whereby cofilin heterozygosity activates specific stress responses associated with reduced protein homeostasis, thus priming embryos to be more resilient when they encounter subsequent heat stress. We conclude that Cofilin dosage serves as a determinant of stress outcomes, impacting both the actin cytoskeleton and inducible stress response pathways. In the embryo, we identify Cofilin as a novel link between inducible stress response and thermotolerance.

developmental biology↗

Dysregulated RNA splicing induces regeneration failure in alcohol-associated liver disease

Individuals with progressive liver failure are at a high risk of mortality without liver transplantation. However, our understanding of derailed regenerative responses in failing livers is limited. Here, we performed comprehensive multi-omic profiling of healthy and diseased human livers using bulk and single-nucleus RNA-plus ATAC-seq. We report that hepatic immune milieu alterations in alcohol-associated liver disease (ALD) prevent hepatocytes from transitioning to a proliferative progenitor-like state, trapping them into an unproductive intermediate state. We discovered striking changes in RNA binding protein (RBP) expression, particularly ESRP, PTBP, and SR families, that cause misregulation of developmentally controlled RNA splicing in ALD. Our data pinpoint ESRP2 as a pivotal disease-sensitive RBP and support a causal role of its deficiency in ALD pathogenesis. Notably, splicing defects in ESRP2-targets Tcf4 and Slk, amongst others, directly alter their nuclear localization and activities, disrupting WNT and Hippo signaling pathways, which are critical for normal liver regeneration. We demonstrate that changes in stromal cell populations enrich failing ALD livers with TGF-{beta}, which suppresses ESRP2-driven epithelial splicing program and replaces functional parenchyma with quasi-progenitor-like cells lacking liver-specific functions. This unprecedented account of transcriptional and post-transcriptional dysregulation in ALD suggests that targeting misspliced RNAs could improve recovery and serve as biomarkers for poor ALD outcomes.

molecular biology↗