Sphingolipid metabolism drives mitochondria remodeling during aging and oxidative stress
Ebert, A. C.; Hepowit, N. L.; Martinez, T. A.; Vollmer, H.; Singkhek, H. L.; Frazier, K. D.; Kantejeva, S. A.; Patel, M. R.; MacGurn, J. A.
Show abstract
One of the hallmarks of aging is a decline in the function of mitochondria, which is often accompanied by altered morphology and dynamics. In some cases, these changes may reflect macromolecular damage to mitochondria that occurs with aging and stress, while in other cases they may be part of a programmed, adaptive response. In this study, we report that mitochondria undergo dramatic morphological changes in chronologically aged yeast cells. These changes are characterized by a large, rounded morphology, decreased co-localization of outer membrane and matrix markers, and decreased mitochondrial membrane potential. Notably, these transitions are prevented by pharmacological or genetic interventions that perturb sphingolipid biosynthesis, indicating that sphingolipids are required for these mitochondrial transitions in aging cells. Consistent with these findings, we observe that overexpression of inositol phospholipid phospholipase (Isc1) prevents these alterations to mitochondria morphology in aging cells. We also report that mitochondria exhibit similar sphingolipid-dependent morphological transitions following acute exposure to oxidative stress. These findings suggest that sphingolipid metabolism contributes to mitochondrial remodeling in aging cells and during oxidative stress, perhaps as a result of damaged sphingolipids that localize to mitochondrial membranes. These findings underscore the complex relationship between mitochondria function and sphingolipid metabolism, particularly in the context of aging and stress.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- V-ATPase Disassembly at the Yeast Lysosome-Like Vacuole Is aPhenotypic Driver of Lysosome Dysfunction in Replicative Aging 97%
- 3D Mitochondrial Structure in Aging Human Skeletal Muscle: Insights into MFN-2 Mediated Changes 96%
- Epidermal Collagen Reduction Drives Selective Aspects of Aging in Sensory Neurons 95%
Similar papers in this journal
- Overexpression of Ssd1 and calorie restriction extend yeast replicative lifespan by preventing deleterious age-dependent iron uptake 96%
- Celsr1a is essential for tissue homeostasis and onset of aging phenotypes in the zebrafish. 95%
- Expression of WIPI2B counteracts age-related decline in autophagosome biogenesis in neurons 95%
Similar papers in this journal
- Defining the age-dependent and tissue-specific circadian transcriptome in male mice 94%
- Translational regulation of non-autonomous mitochondrial stress response promotes longevity 94%
- Single-Cell Epigenomics Uncovers Heterochromatin Instability and Transcription Factor Dysfunction during Mouse Brain Aging 93%
Similar papers in this journal
- Loss of vacuolar acidity results in iron sulfur cluster defects and divergent homeostatic responses during aging in Saccharomyces cerevisiae 97%
- Glucagon receptor signaling is indispensable for the healthspan effects of caloric restriction in aging male mice 95%
- A multi-omics analysis of human fibroblasts overexpressing an Alu transposon reveals widespread disruptions in aging-associated pathways 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.