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Dysregulated Provision of Oxidisable Substrates to the Mitochondria in ME/CFS Lymphoblasts
Daniel Missailidis1, Oana Sanislav1, Claire Y Allan1
1Department of Physiology, Anatomy and Microbiology, School of Life Sciences, La Trobe University, Melbourne, VIC 3086, Australia.
Abstract:
Although understanding of the biomedical basis of Myalgic Encephalomyelitis/Chronic Fatigue Syndrome (ME/CFS) is growing, the underlying pathological mechanisms remain uncertain. We recently reported a reduction in the proportion of basal oxygen consumption due to ATP synthesis by Complex V in ME/CFS patient-derived lymphoblast cell lines, suggesting mitochondrial respiratory inefficiency. This was accompanied by elevated respiratory capacity, elevated mammalian target of rapamycin complex 1 (mTORC1) signaling activity and elevated expression of enzymes involved in the TCA cycle, fatty acid β-oxidation and mitochondrial transport. These and other observations led us to hypothesise the dysregulation of pathways providing the mitochondria with oxidisable substrates. In our current study, we aimed to revisit this hypothesis by applying a combination of whole-cell transcriptomics, proteomics and energy stress signaling activity measures using subsets of up to 34 ME/CFS and 31 healthy control lymphoblast cell lines from our growing library. While levels of glycolytic enzymes were unchanged in accordance with our previous observations of unaltered glycolytic rates, the whole-cell proteomes of ME/CFS lymphoblasts contained elevated levels of enzymes involved in the TCA cycle (p = 1.03 × 10-4), the pentose phosphate pathway (p = 0.034, G6PD p = 5.5 × 10-4), mitochondrial fatty acid β-oxidation (p = 9.2 × 10-3), and degradation of amino acids including glutamine/glutamate (GLS p = 0.034, GLUD1 p = 0.048, GOT2 p = 0.026), branched-chain amino acids (BCKDHA p = 0.028, BCKDHB p = 0.031) and essential amino acids (FAH p = 0.036, GCDH p = 0.006). The activity of the major cellular energy stress sensor, AMPK, was elevated but the increase did not reach statistical significance. The results suggest that ME/CFS metabolism is dysregulated such that alternatives to glycolysis are more heavily utilised than in controls to provide the mitochondria with oxidisable substrates.
Insights
Myalgic Encephalomyelitis/Chronic Fatigue Syndrome (ME/CFS) patients show altered cell metabolism, with increased use of non-glycolytic pathways to fuel mitochondria. This suggests mitochondrial dysfunction contributes to ME/CFS pathology.
Area of Science:
- Biochemistry
- Cellular Metabolism
- Mitochondrial Biology
Background:
- Myalgic Encephalomyelitis/Chronic Fatigue Syndrome (ME/CFS) pathophysiology remains unclear.
- Previous studies indicated mitochondrial respiratory inefficiency in ME/CFS lymphoblasts.
- Hypothesis: Dysregulated pathways supply mitochondria with oxidizable substrates in ME/CFS.
Purpose of the Study:
- To investigate metabolic dysregulation in ME/CFS.
- To test the hypothesis of altered substrate supply to mitochondria.
- To analyze whole-cell transcriptomics, proteomics, and energy stress signaling.
Main Methods:
- Utilized lymphoblast cell lines from ME/CFS patients and healthy controls.
- Performed whole-cell transcriptomics and proteomics.
- Measured energy stress signaling pathway activity (e.g., AMPK).
Main Results:
- ME/CFS lymphoblasts showed elevated enzymes in the TCA cycle, pentose phosphate pathway, and fatty acid beta-oxidation.
- Increased degradation pathways for amino acids like glutamine and branched-chain amino acids were observed.
- AMP-activated protein kinase (AMPK) activity was elevated but not statistically significant.
Conclusions:
- ME/CFS cellular metabolism is dysregulated.
- Alternative metabolic pathways to glycolysis are upregulated to provide substrates to mitochondria.
- These findings suggest a shift in substrate utilization contributing to ME/CFS.
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