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Department of Biology
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Specific changes in mitochondrial lipidome alter mitochondrial proteome and increase the geroprotective efficiency of lithocholic acid in chronologically aging yeast.
Oncotarget May, 2017 | Pubmed ID: 28410198
Mechanisms Underlying the Essential Role of Mitochondrial Membrane Lipids in Yeast Chronological Aging.
Oxidative medicine and cellular longevity , 2017 | Pubmed ID: 28593023
Lipid metabolism and transport define longevity of the yeast Saccharomyces cerevisiae.
Frontiers in bioscience (Landmark edition) Jan, 2018 | Pubmed ID: 28930594
Some Metabolites Act as Second Messengers in Yeast Chronological Aging.
International journal of molecular sciences Mar, 2018 | Pubmed ID: 29543708
Yeast Cells Exposed to Exogenous Palmitoleic Acid Either Adapt to Stress and Survive or Commit to Regulated Liponecrosis and Die.
Oxidative medicine and cellular longevity , 2018 | Pubmed ID: 29636840
Yeast chronological aging is linked to cell cycle regulation.
Cell cycle (Georgetown, Tex.) , 2018 | Pubmed ID: 29895227
Mechanisms through which lithocholic acid delays yeast chronological aging under caloric restriction conditions.
Oncotarget Oct, 2018 | Pubmed ID: 30405886
Quiescence Entry, Maintenance, and Exit in Adult Stem Cells.
International journal of molecular sciences May, 2019 | Pubmed ID: 31052375
Mechanisms Through Which Some Mitochondria-Generated Metabolites Act as Second Messengers That Are Essential Contributors to the Aging Process in Eukaryotes Across Phyla.
Frontiers in physiology , 2019 | Pubmed ID: 31057428
Mechanisms by which PE21, an extract from the white willow , delays chronological aging in budding yeast.
Oncotarget Oct, 2019 | Pubmed ID: 31645900
Metabolic networks of the human gut microbiota.
Microbiology (Reading, England) Feb, 2020 | Pubmed ID: 31799915
Mechanisms that Link Chronological Aging to Cellular Quiescence in Budding Yeast.
International journal of molecular sciences Jul, 2020 | Pubmed ID: 32630624
Concordia University
Karamat Mohammad1,
Heng Jiang2,
Md. Israil Hossain1,
Vladimir I. Titorenko1
1Department of Biology, Concordia University,
2Department of Chemistry and Biochemistry, Centre for Biological Applications of Mass Spectrometry, Concordia University
2Centre for Biological Applications of Mass Spectrometry, Concordia University
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