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Madji Hounoum, B.

Publications and source records attributed to Madji Hounoum, B..

2 recordsLinked to original sources

Zoospore-derived extracellular vesicles in the flagellated stramenopile Phytophthora parasitica

Zoospores are unicellular, wall-less and flagellated cells produced by a number of eukaryotic microorganisms. They allow microbial dispersion, enable the search and location for new sources of nutrients where they aggregate, initiate pathogen-host interactions and communication within microbiota. Little is known about their ability to release bioactive extracellular vesicles (EVs) supporting these adaptations. Here we used electron microscopy to establish that in the biflagellate zoospores of the heterokont and phytopathogenic species Phytophthora parasitica, EV biogenesis occurs from vesicles budding either at cell body plasma membrane or at the front flagellum, in particular from the tubular mastigonemes. Zoospore-conditioned water supernatant was fractionated and characterized by means of morphological, immunochemical, proteomic and lipidomic analyses. Three fractions enriched in cell body, flagella and EVs were obtained by differential ultracentrifugation at 3,000g, 31,000g and 100,000g, respectively, with the EV fraction consisting of small vesicles (100-150 nm). Using mass spectrometry, label-free proteomic analysis of the EV fraction (1,470 proteins) revealed a collection of proteins involved in lipid transport, vesicle membrane and cell wall organization, and tubular mastigoneme architecture, but not in virulence. Label-free quantitative lipidomic analysis (191 lipids) revealed enrichment of EVs in sphingolipids, particularly ceramides compared with the cell body. These findings provide a first hallmark of features characteristic of zoosporic EVs, with ceramides, mastigoneme proteins and the EV-related protein PPTG_13069 containing two tetraspanin MARVELous domains among molecular markers. They define the molecular and cellular principles in understanding zoosporic EV biogenesis within Stramenopiles and intercellular communication between self-aggregating zoospores, with host plant cells or microbiota.

molecular biology↗

Multiomics study of CHCHD10S59L-related disease reveals energy metabolism downregulation: OXPHOS and beta-oxidation deficiencies associated with lipids alterations

Mutations in the coiled-coil-helix-coiled-coil-helix domain containing 10 (CHCHD10) gene have been associated with a large clinical spectrum including myopathy, cardiomyopathy and amyotrophic lateral sclerosis (ALS). Herein, we analyzed the metabolic changes induced by the p.S59L CHCHD10 mutation to identify new therapeutic opportunities. Using metabolomic, lipidomic and proteomic analysis we observed a strong alteration of metabolism in plasma and heart of Chchd10S59L/+ mice compared to their wild type littermates at pre-symptomatic and symptomatic stages. In plasma, levels of phospholipids were decreased while those of carnitine derivatives and most of amino acids were increased. The cardiac tissue from Chchd10S59L/+ mice showed a decreased Oxidative Phosphorylation (OXPHOS) and {beta}-oxidation proteins levels as well as tricarboxylic acid cycle (TCA) intermediates and carnitine pathway metabolism. In parallel, lipidomics analysis reveals a drastic change in the lipidome, including triglycerides, cardiolipin and phospholipids. Consistent with this energetic deficiency in cardiac tissue, we show that L-acetylcarnitine supplementation improves the mitochondrial network length in IPS-derived cardiomyocytes from a patient carrying the CHCHD10S59L/+ mutation. These data indicate that a bioenergetic intermediate such as L-acetylcarnitine may restore mitochondrial function in CHCHD10-related disease, due to the reduction in energy deficit that could be compensated by carnitine metabolic pathways.

cell biology↗