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Biology subjects

Lapenta, K.

Publications and source records attributed to Lapenta, K..

2 recordsLinked to original sources

Ca2+ influx through ER-plasma membrane contacts is required for brown fat thermogenesis and metabolic health

Brown adipose tissue (BAT) exhibits exceptional metabolic plasticity, rapidly increasing energy expenditure to sustain thermogenesis during cold exposure. This high metabolic activity imposes substantial demands on cellular systems, requiring robust adaptive mechanisms to maintain homeostasis and prevent cellular stress. Yet, the pathways that support and coordinate these adaptive responses in brown adipocytes remain incompletely understood. Here, we identify a cold-induced adaptive program in BAT characterized by the formation of endoplasmic reticulum-plasma membrane (ER-PM) contact sites and the activation of store-operated calcium entry (SOCE), which is essential for maintaining brown adipocyte health during thermogenic activation. Cold exposure enhances ER-PM contacts and upregulates the expression of STIM and Orai proteins, key mediators of SOCE. Loss of STIM in brown adipocytes disrupts intracellular Ca{superscript 2} homeostasis and induces aberrant aggregation of ER membranes. STIM deficiency also impairs cold-induced mitochondrial fission resulting in hyperfused mitochondria with reduced oxidative capacity, independently of UCP1 abundance. Importantly, mice lacking STIM in BAT exhibit impaired lipid oxidation, are cold intolerant and develop exacerbated peripheral insulin resistance when challenged with a high-fat diet. Together, these findings identify ER-PM remodeling and STIM-mediated SOCE as a central regulator that links organelle architecture to brown adipocyte function and contributes to whole-body metabolic homeostasis.

cell biology↗

MicroRNA profiling identifies novel regulators of stem cell function in the adult Drosophila intestine.

Precise control of stem cell activity is critical to maintain homeostasis and regenerative capacity of adult tissues and limit proliferative syndromes. Hence, stem cell-specific complex regulatory networks exist to exquisitely maintain gene expression and adapt it to tissue demand, controlling self-renewal, fate commitment and differentiation of developing and adults cell lineages. One of the essential and conserved regulatory components that fine-tune gene expression are microRNAs, which post-transcriptionally regulate stability and translation of messengers. microRNAs have been identified as critical stem cell regulators across stem cell populations and organisms. Here, we report the profiling of microRNAs expressed in stem cells and their immediate daughter cells in the Drosophila adult intestine. Our analysis identifies over 60 miRs that can be reliably detected in these sorted progenitor cells; a few of these have been reported to control fly intestinal stem cells, but most have yet to be investigated in the adult intestinal lineage. To validate the relevance of our unbiased analysis, we chose to characterize the phenotypes associated with genetic manipulations of two of these microRNAs, miR-31a and miR-34, which are conserved in other organisms, but whose function has not been investigated in the Drosophila midgut. We found that miR-31a acts as anti-proliferation factor and is important for the re-entry of ISC into quiescence after tissue damage. Additionally, we demonstrate that miR-34 is essential for ISC proliferation, but its over-expression also prevents proliferation, highlighting the complexity of miR-mediated control of stem cell function. Altogether, our work establishes a new critical resource to investigate the detailed mechanisms that control stem cell proliferation and intestinal differentiation under homeostatic conditions, in response to tissue damage, or during epithelial transformation and aging.

genetics↗