Search bioRxiv⌕ Search

Biology subjects

Piotrowski, E. R.

Publications and source records attributed to Piotrowski, E. R..

3 recordsLinked to original sources

Iron export and lipid droplets shield deep-diving elephant seal cells from lipid peroxidation

Elephant seals are remarkable breath-hold divers, capable of remaining submerged for up to two hours during diving bouts. These dives entail repeated, extreme hypoxia/reoxygenation events that would induce severe lipid peroxidation and tissue dysfunction in most mammals. Here, we show that primary vascular endothelial cells derived from elephant seals possess an intrinsic resistance to lipid peroxidation. Comparative transcriptomic and lipidomic profiling across seal, human, and sheep cells identified ferroptosis - an iron-dependent, lipid peroxidation-driven cell death pathway - as uniquely regulated in seal cells following hydroperoxide exposure. Mechanistically, seal cells exhibit robust baseline expression of acyl-CoA synthetase long-chain family member 3 (ACSL3), alongside rapid, seal-specific induction of the sole mammalian iron exporter, ferroportin (SLC40A1). Functional validation using genetic and pharmacological approaches revealed that seal cells are naturally enriched in monounsaturated fatty acids and triglycerides and utilize lipid droplet biogenesis and active iron export as dual protective axes to evade lipid peroxidation. Together, these findings show that elephant seal cells employ a coordinated cytoprotective network of lipid remodeling and iron handling to withstand the severe challenges of deep diving. SIGNIFICANCE STATEMENTDeep-diving marine mammals repeatedly experience extreme hypoxia-reoxygenation events that would induce severe oxidative damage in most terrestrial mammals. However, vascular cells derived from seals naturally resist lipid peroxidation, a major driver of ischemia-reperfusion injury. Here, we show that elephant seal endothelial cells evade lipid peroxidation through two complementary mechanisms: lipid droplets that sequester peroxidation-prone phospholipids, and rapid iron export that limits lipid peroxide formation. These findings reveal naturally evolved cellular strategies that protect against vascular oxidative stress, offering new insights into physiological resilience against ischemia-reperfusion injury.

physiology↗

Phthalate exposure induces inflammatory signaling and alters mitochondrial respiration in marine mammal and human cells

This study investigated the transcriptional and bioenergetic responses to monoethylhexyl phthalate (MEHP) in primary fibroblasts derived from northern elephant seals (Mirounga angustirostris), common dolphins (Delphinus delphis), and humans, using RNA-seq, extracellular flux assays, and high-resolution microscopy of the mitochondrial reticulum. MEHP exposure did not induce cytotoxicity but triggered species-specific changes in gene expression and mitochondrial metabolism and morphology. Human cells showed the greatest transcriptional response, upregulating genes involved in detoxification, antioxidant, and inflammation while downregulating lipid metabolism pathways. The highest dose also decreased mitochondrial respiration and increased mitochondrial fragmentation, triggering a metabolic shift toward glycolysis. Elephant seal cells showed delayed glycolytic shifts, maintaining mitochondrial respiration and upregulating antioxidant, immune, and metabolic pathway genes through the highest dose. Despite mitochondrial fragmentation, they upregulated mitochondrial fusion/fission and trafficking genes. Dolphin cells exhibited the fewest changes in gene expression, mostly in hormone signaling and mitotic pathways. They showed dose-dependent declines in both respiration and glycolytic rates, even at the lowest concentration, yet maintained mitochondrial structural integrity while upregulating stress- and hypoxia-induced genes. These distinct strategies highlight species-specific susceptibility to toxicant-induced stress, offering new insights into how marine mammals respond to plastic-derived contaminants and reinforcing the need for species-specific ecotoxicological risk assessments.

physiology↗

Dehydration promotes intracellular lipid synthesis and accumulation

Lipids can be considered a water reservoir used to offset dehydration stress as their oxidation by the mitochondria generates water. However, whether dehydration and the ensuing hypertonic stress directly regulate lipid synthesis is unknown. We found that hypertonic stress decreases cellular oxygen consumption, increases intracellular lipid synthesis, and favors glutamine oxidation as a carbon precursor for lipid synthesis via remodeling mitochondrial metabolism. These findings provide a mechanism whereby cellular dehydration leads to intracellular lipid accumulation, functionally linking water availability to lipid storage.

physiology↗