Search bioRxiv⌕ Search

Biology subjects

Meslier, L.

Publications and source records attributed to Meslier, L..

2 recordsLinked to original sources

Extracellular vesicles carrying surface-anchored adiponectin prevent obesity-related metabolic complications by enhancing insulin sensitivity

Adiponectin (Adpn) is a potent insulin-sensitizing adipokine with therapeutic promise for type 2 diabetes (T2D) and metabolic dysfunction-associated steatohepatitis (MASH). Its clinical use is limited by challenges in producing stable, bioactive high-molecular weight forms. Adipocyte-derived extracellular vesicles (EVs) naturally carry oligomeric Adpn on their surface, enhancing hormone stability and activity. Here, we engineered EVs displaying membrane-anchored Adpn (EVPP-Adpn) and control EVs lacking Adpn (EVCTL), and evaluated their metabolic effects in high fat diet (HFD)-induced obesity mice. EVPP-Adpn were purified from HEK293T cells stably transfected with a chimeric Adpn fused to a transmembrane domain and a pilot peptide (PP) directing it to EVs; EVCTL were produced from non-transfected cells. HFD-fed male and female mice received intraperitoneal EV injections for six weeks. EVPP-Adpn improved glucose tolerance and insulin sensitivity, promoted adipocyte lipid storage through insulin-regulated lipogenesis and alleviated MASH features (liver steatosis, inflammation and fibrosis). EVPP-Adpn lowered circulating ceramides and reduced FGF21, indicating improved hepatic metabolism, and activated AKT and AMPK pathways in liver and skeletal muscle, consistent with increased adiponectin signaling. These results demonstrate that surface-anchored Adpn EVs restore tissue-specific insulin signaling and improve obesity-related metabolic dysfunctions, highlighting their potential as a novel biotherapeutic strategy for T2D and MASH.

bioengineering↗

Fast, safe and high-throughput Real-Time PCR protocol for molecular sex identification in Salmo salar, applicable to historic scale collections

Conservation and management of wild species needs a detailed understanding of their population structure and dynamics. For instance, there are increasing evidence for sex-specific life history trajectories, even in species with limited morphological sexual dimorphism. In these species, identifying the sex of individuals in some or all life stages is a methodological challenge, which requires the development of new tools. Building on recent findings in molecular biology, we developed a new protocol for sex identification in Atlantic salmon (Salmo salar), aiming at the following criteria: accurate sex identification, fast diagnostic, applicable to large sample size, applicable to degraded DNA extracted from e.g. fish scales, and safe for the operator by limiting health and safety hazard. The protocol relies on multiplex Real-Time PCR using a set of specific primers. We tested its accuracy on a test set of 90 DNA samples from individuals of known morphological sex, and demonstrated its applicability on a large DNA sample from 384 individuals of unknown sex.

molecular biology↗