Disruption of mitochondrial oxidative phosphorylation by chidamide eradicates leukemic cells in AML
Jun-Dan Wang1,2,3, Jue-Qiong Xu3, Zi-Jie Long4
1School of Medicine, South China University of Technology, Guangzhou, China.
Purpose:
Nowadays, the oxidative phosphorylation (OXPHOS) correlated with leukemogenesis and treatment response is extensive. Thus, exploration of novel approaches in disrupting OXPHOS in AML is urgently needed.
Materials And Methods:
Bioinformatical analysis of TCGA AML dataset was performed to identify the molecular signaling of OXPHOS. The OXPHOS level was measured through a Seahorse XFe96 cell metabolic analyzer. Flow cytometry was applied to measure mitochondrial status. Real-time qPCR and western blot were used to analyze the expression of mitochondrial or inflammatory factors. MLL-AF9-induced leukemic mice were conducted to measure the anti-leukemia effect of chidamide.
Results:
Here, we reported that AML patients with high OXPHOS level were in a poor prognosis, which was associated with high expression of HDAC1/3 (TCGA). Inhibition of HDAC1/3 by chidamide inhibited cell proliferation and induced apoptotic cell death in AML cells. Intriguingly, chidamide could disrupt mitochondrial OXPHOS as assessed by inducing mitochondrial superoxide and reducing oxygen consumption rate, as well as decreasing mitochondrial ATP production. We also observed that chidamide augmented HK1 expression, while glycolysis inhibitor 2-DG could reduce the elevation of HK1 and improve the sensitivity of AML cells exposed to chidamide. Furthermore, HDAC3 was correlated with hyperinflammatory status, while chidamide could downregulate the inflammatory signaling in AML. Notably, chidamide eradicated leukemic cells in vivo and prolonged the survival time of MLL-AF9-induced AML mice.
Conclusion:
Chidamide disrupted mitochondrial OXPHOS, promoted cell apoptosis and reduced inflammation in AML cells. These findings exhibited a novel mechanism that targeting OXPHOS would be a novel strategy for AML treatment.
Insights
Chidamide, a novel therapeutic, disrupts oxidative phosphorylation (OXPHOS) and reduces inflammation in acute myeloid leukemia (AML) cells. This approach shows promise for AML treatment by targeting mitochondrial function and promoting apoptosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Oxidative phosphorylation (OXPHOS) is increasingly implicated in acute myeloid leukemia (AML) pathogenesis and treatment outcomes.
- Novel therapeutic strategies targeting OXPHOS in AML are urgently needed.
Purpose of the Study:
- To investigate the role of OXPHOS in AML and evaluate chidamide as a therapeutic agent.
- To explore the molecular mechanisms by which chidamide affects AML cells and their mitochondria.
Main Methods:
- Bioinformatic analysis of TCGA AML dataset.
- Seahorse XFe96 cell metabolic analyzer for OXPHOS assessment.
- Flow cytometry for mitochondrial status.
- qPCR and Western blot for gene/protein expression.
- MLL-AF9-induced murine AML model for in vivo efficacy.
Main Results:
- High OXPHOS levels in AML patients correlate with poor prognosis and increased HDAC1/3 expression.
- Chidamide inhibits AML cell proliferation, induces apoptosis, and disrupts mitochondrial OXPHOS (superoxide, OCR, ATP).
- Chidamide modulates HK1 expression and reduces inflammatory signaling, showing in vivo anti-leukemic effects and prolonged survival in mice.
Conclusions:
- Chidamide effectively targets mitochondrial OXPHOS, induces apoptosis, and mitigates inflammation in AML.
- Targeting OXPHOS represents a promising novel therapeutic strategy for AML treatment.
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