| Literature DB >> 36126260 |
Molly Monsour1, Anna Gorsky2, Hung Nguyen2, Vanessa Castelli2, Jea-Young Lee2, Cesar V Borlongan2.
Abstract
OBJECTIVE: Strokes represent as one of the leading causes of death and disability in the USA, however, there is no optimal treatment to reduce the occurrence or improve prognosis. Preconditioning of tissues triggers ischemic tolerance, a physiological state that may involve a metabolic switch (i.e. from glycolysis to oxidative phosphorylation or OxPhos) to preserve tissue viability under an ischemic insult. Here, we hypothesized that metabolic switching of energy source from glucose to galactose in cultured mesenchymal stem cells (MSCs) stands as an effective OxPhos-enhancing strategy.Entities:
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Year: 2022 PMID: 36126260 PMCID: PMC9477859 DOI: 10.1097/WNR.0000000000001828
Source DB: PubMed Journal: Neuroreport ISSN: 0959-4965 Impact factor: 1.703
Fig. 1OCR/ECAR Ratio. Line chart shows the oxygen consumption rate (OCR) to extracellular acidification rate (ECAR) ratio changes in rate mode comparing MSCs grown under ambient cell culture condition (red) and MSCs exposed to metabolic switching condition (blue). MSCs, extracellular acidification rate.
Fig. 2Bioenergetic profiles. (a) Bar chart demonstrates the OCR rates (darker shade) and ECAR rates (lighter shade) at time point 0, basal metabolism, for 6 cultures of normal MSCs (left) and switched MSCs (right). (b) Scatter plot shows average OCR on the y-axis vs. ECAR on the x-axis of 6 cultures of normal MSCs (right) and switched MSCs (left). Points closer to the x-axis and further from the y-axis favor glycolysis, while points further from the x-axis and closer to the y-axis favor oxidative phosphorylation. ECAR, extracellular acidification rate; MSCs, extracellular acidification rate; OCR, oxygen consumption rat.