bioRxiv Science⌕ Search

Biology subjects

Boufersaoui, A.

Publications and source records attributed to Boufersaoui, A..

2 recordsLinked to original sources

Pyruvate from bone marrow mesenchymal stem cells supports myeloma redox homeostasis and anabolism

Multiple myeloma is an incurable cancer of plasma cells that depends on the bone marrow for its survival. Despite its prevalence, the molecular mechanisms underlying this malignancy remain poorly understood. In this study, we aim to bridge this knowledge gap by elucidating the metabolic interplay between myeloma cells and bone marrow mesenchymal stem cells (BMMSCs). BMMSCs are crucial in supporting myeloma cell metabolism, contributing to their proliferation, survival, and resistance to chemotherapy. Through a combination of mathematical modelling and experimental co-cultures, we demonstrate that pyruvate - the end product of glycolysis - plays a key role in myeloma cell metabolism. Our findings reveal that myeloma cells predominantly rely on the uptake of pyruvate produced by neighbouring BMM-SCs via the plasma membrane proton-linked monocarboxylate transporters MCT-1 and MCT-2 encoded by the Slc16a1 and a2 genes, respectively. Furthermore, we show that pharmacological inhibition of the MCT-1/2, with AZD3965, triggers a cascade of compensatory metabolic responses, disrupting redox balance and significantly reducing the proliferation capacity of co-cultured myeloma cells.

cancer biology↗

A new paradigm of intracrine free fatty acid receptor 4 signaling at lipid droplets

G protein-coupled receptors (GPCRs), once thought to be active exclusively at the plasma membrane, have been shown to signal from multiple intracellular membrane compartments, including endosomes and the Golgi. However, the potential occurrence and functional relevance of intracellular signaling for the emerging family of metabolite-sensing GPCRs is largely unknown. Here, we used live-cell imaging, bioluminescence resonance energy transfer (BRET) measurements, and functional readouts to investigate signal compartmentalization of the free fatty acid receptor 4 (FFA4), a prototypical metabolite-sensing GPCR that is activated by medium- and long-chain free fatty acids (FFAs). Unexpectedly, we show that FFA4 largely resides on intracellular membranes that are intimately associated with lipid droplets in adipocytes. Upon lipolysis induction, the released FFAs rapidly bind to and activate this intracellular pool of FFA4, leading to local Gi/o coupling and inhibition of cAMP production in the vicinity of lipid droplets. This provides a spatiotemporally confined negative feedback mechanism allowing individual lipid droplets to rapidly adjust their lipolysis rate. Our results reveal a novel intracrine signaling modality by a prototypical metabolite-sensing GPCR and identify a new lipid-droplet-associated signaling hub implicated in the rapid regulation of lipid metabolism, with important implications for adipocyte physiology and pharmacology.

pharmacology and toxicology↗