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Biology subjects

Wiley, C. D.

Publications and source records attributed to Wiley, C. D..

2 recordsLinked to original sources

Targeting Mitochondrial Dysfunction with Mdivi-1 Confers Therapeutic Protection in a Mouse Model of Mustard Keratopathy

Mustard keratopathy, caused by exposure of the cornea to sulfur or nitrogen mustard vesicants, chemical warfare agents, can lead to severe and often irreversible vision loss. Despite considerable efforts to develop medical countermeasures, including anti-inflammatory, antioxidant, anti-fibrotic, and anti-angiogenic therapies, no treatment effectively targets the underlying mechanisms responsible for mustard-induced tissue injury or prevents long-term disease progression. In the present study, we comprehensively define mitochondrial mechanisms underlying nitrogen mustard-induced corneal injury in both our cell culture model in vitro and a mouse model in vivo. DNM1L (aka Drp1) is a mitochondria-localized dynamin-related GTPase that executes mitochondrial fission and facilitates the autophagic elimination of damaged mitochondrial components. Using complementary in vitro and in vivo models, we demonstrate that nitrogen mustard rapidly induces excessive mitochondrial fragmentation, bioenergetic collapse, membrane depolarization, oxidative stress, intracellular acidification, mitophagy, and apoptotic cell death. Pharmacological inhibition of DNM1L with Mdivi-1 preserves mitochondrial structure and function, restores cellular metabolism, reduces oxidative damage, and markedly improves corneal epithelial integrity, and tissue repair following nitrogen mustard exposure. Collectively, these findings establish mitochondrial dysfunction as a central pathological mechanism in mustard keratopathy and identify DNM1L-mediated mitochondrial remodeling as a therapeutically actionable target. Our work provides strong preclinical evidence supporting mitochondrial-directed therapy as a promising strategy for treating mustard keratopathy.

biochemistry↗

Fatty acid desaturation guides cellular decisions between ferroptosis and cellular senescence

When subject to damage or stress, cells develop responses in order to maintain tissue homeostasis. Two such decisions are ferroptosis and cellular senescence, but how cells decide between these outcomes remains unclear. Here we show that senescent cells increase levels of multiple membrane-bound polyunsaturated fatty acids (PUFAs), but a specific PUFA, dihomo-gamma-linolenic acid (DGLA, 20:3{omega}-3) is reduced. Exogenous repletion of DGLA or inhibition of delta-5-desaturase, the enzyme that metabolizes DGLA, instead results in cell death by ferroptosis. Senescent cells had elevated levels of other fezzroptosis sensitizers, including labile iron and expression of lipoxygenases - but also increased Gpx4 levels to prevent ferroptosis. Oral DGLA lowered senescent cell burden in aged mice and improved age-related functional outcomes. Finally, obese humans with lowered DGLA desaturation rates showed lower markers of adipose tissue senescence. Together, our data implicate DGLA and its desaturation as a major driver of decisions between senescence and ferroptosis.

cell biology↗