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Ouaddi, C.

Publications and source records attributed to Ouaddi, C..

2 recordsLinked to original sources

DNA:RNA hybrid mutational landscapes reveal a common route to geneticinstability in evolving genomes

Pervasive DNA:RNA hybrids are recognized as pathological sources of genome instability, yet how their genotoxicity shapes mutational landscapes and genome evolution remains poorly understood. Here, we define the mutational footprint of hybrids by integrating genome-wide mapping, long-term mutation accumulation experiments, and analyses of genetic diversity across thousands of natural yeast genomes. We uncover signatures for embedded ribonucleotides and genic R-loops, together with a composite mutational pattern shared across natural populations and experimental evolution. Using reporters designed to dissect the mechanisms underlying genetic alterations, we find that they arise primarily from targeting by MutL{gamma}-dependent mismatch repair followed by Rad52-mediated recombination. Although hybrids form dynamically across the genome, their genotoxicity is strongly skewed toward repetitive regions susceptible to these error-prone pathways, including microsatellites and retroelements. Our findings reveal a common mechanism of hybrid-associated mutagenesis that can shape genetic variation in evolving genomes.

molecular biology↗

Lipid transfer by ORP3 is required for the regulation of PI4P and PI(4,5)P2 at the plasma membrane in mitosis

During mitosis, cellular contents including the genetic material and membrane-bound organelles must be faithfully distributed between the two daughter cells. Regulation of PI(4,5)P2 levels at the plasma membrane is essential for mitotic progression, including anchoring of the mitotic spindle, recruitment of the actomyosin cytoskeleton at the cleavage furrow, and abscission. Here, we demonstrate that the ORP3 lipid transfer protein, which transfers PI4P from the plasma membrane to the endoplasmic reticulum (ER) at ER-plasma membrane contacts, plays a crucial role in the regulation of PI4P and PI(4,5)P2 levels at the plasma membrane in mitosis. We show that defects in ORP3 function alter PI4P and PI(4,5)P2 distributions, distribution of the actin cytoskeleton at the plasma membrane, mitotic spindle geometry, chromosome segregation, abscission, and lead to the accumulation of multinucleated cells. The function of ORP3 in mitosis is dependent on its ER-partner VAPA and phosphorylation of the ORP3 VAPA-binding motif strongly recruits ORP3 to the ER, priming it for PI4P transfer from the plasma membrane to the ER. Finally ORP3 is required to prevent PI4P accumulation at the cytoplasmic bridge as a result of PI(4,5)P2 hydrolysis for abscission and successful completion of cell division. Altogether, ORP3 plays a key role in PI4P and PI(4,5)P2 regulation during mitosis. Impairment of ORP3 function results in multiple cell division phenotypes, leading to genetic instability and aneuploidy.

cell biology↗