Search bioRxiv⌕ Search

Biology subjects

Ajnar, D.

Publications and source records attributed to Ajnar, D..

2 recordsLinked to original sources

Small molecule promoters of endogenous lipid droplet accumulation drive lysophagy

Lipid droplets (LDs) play a central role in regulating metabolism in stress-induced conditions, including one triggered by nutrient deprivation. Unravelling the protein networks involved in the biogenesis of LDs and their causative and functional roles in health and disease continue to evolve. To this cause, genetic manipulation of the lipid metabolic network or supplementation of high fat diet/ oleic acid (OA) are the traditional routes for voluntarily triggering LDs formation in cells and animals. We developed a screening platform for the identification of new LDs inducers, and our primary screening of various fatty acids identified linoleic acid (LOA, DUFA) as a better tool than OA (MUFA) in promoting LDs formation. The screening and validation discovered new small molecule-based tools for promoting a rapid organization of endogenous lipids into droplets in multiple cell types. Notably, our mass spectral lipidomics analysis presented the overproduction of phosphatidylcholines and small triglycerides, a hallmark of LDs. Mechanistic investigations of our lead molecules highlighted lipid peroxidation and ATP depletion through mitochondrial impairment in cells, which could serve as chemical cues for driving the fusion of cellular lipids into LDs. Finally, we uncovered the abrupt levels of LDs formation induced by our molecules promoted lysophagy in cancer cells to prevent their proliferation. Collectively, our work introduces new small molecules as powerful tools for reliably promoting LDs accumulation for studying their roles in biology, and we demonstrate the over accumulation of LDs prevent cancer cell proliferation, movement, and colonization.

cancer biology↗

SARS-CoV-2 protein ORF3a induces Atg8ylation of lysosomal membranes

Atg8ylation is an autophagy associated response to membrane damage that recruits mammalian ATG8 proteins (mATG8s) to damaged membranes to promote their repair or removal. Here, we show that the SARS-CoV-2 protein ORF3a induces lysosomal membrane atg8ylation and that this response protects cells from death. mATG8s interact with ORF3a and are required for lysosomal damage induced by ORF3a. ORF3a targets mTOR in an Atg8ylation dependent manner and promotes lysophagy through mATG8 mediated coordination of TRIM16 and Galectin-3. ORF3a triggers apoptosis, necroptosis, and pyroptosis, whereas atg8ylation limits ORF3a- induced cell death. Together, our findings identify mATG8s and the autophagy conjugation machinery as key regulators of lysosomal atg8ylation and lysophagy in response to the SARS-CoV-2 virulence factor ORF3a.

cell biology↗