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Extracellular acidification induces ROS- and mPTP-mediated death in HEK293 cells
José Teixeira1, Farhan Basit2, Herman G Swarts2
1Department of Biochemistry, Radboud Institute for Molecular Life Sciences, Radboudumc, Nijmegen, The Netherlands; CIQUP/Department of Chemistry and Biochemistry, Faculty of Sciences, University of Porto, Porto, Portugal; Center for Neuroscience and Cell Biology (CNC), UC-Biotech, University of Coimbra, Coimbra, Portugal.
Abstract:
The extracellular pH (pHe) is a key determinant of the cellular (micro)environment and needs to be maintained within strict boundaries to allow normal cell function. Here we used HEK293 cells to study the effects of pHe acidification (24h), induced by mitochondrial inhibitors (rotenone, antimycin A) and/or extracellular HCl addition. Lowering pHe from 7.2 to 5.8 reduced cell viability by 70% and was paralleled by a decrease in cytosolic pH (pHc), hyperpolarization of the mitochondrial membrane potential (Δψ), increased levels of hydroethidine-oxidizing ROS and stimulation of protein carbonylation. Co-treatment with the antioxidant α-tocopherol, the mitochondrial permeability transition pore (mPTP) desensitizer cyclosporin A and Necrostatin-1, a combined inhibitor of Receptor-interacting serine/threonine-protein kinase 1 (RIPK1) and Indoleamine 2,3-dioxygenase (IDO), prevented acidification-induced cell death. In contrast, the caspase inhibitor zVAD.fmk and the ferroptosis inhibitor Ferrostatin-1 were ineffective. We conclude that extracellular acidification induces necroptotic cell death in HEK293 cells and that the latter involves intracellular acidification, mitochondrial functional impairment, increased ROS levels, mPTP opening and protein carbonylation. These findings suggest that acidosis of the extracellular environment (as observed in mitochondrial disorders, ischemia, acute inflammation and cancer) can induce cell death via a ROS- and mPTP opening-mediated pathogenic mechanism.
Insights
Extracellular acidification triggers necroptosis, a form of programmed cell death, in HEK293 cells. This process involves mitochondrial dysfunction, reactive oxygen species (ROS), and opening of the mitochondrial permeability transition pore (mPTP).
Area of Science:
- Cell Biology
- Biochemistry
- Pathophysiology
Background:
- Extracellular pH (pHe) is critical for cellular function.
- Maintaining strict pHe boundaries is essential for normal cell physiology.
- Aberrant pHe occurs in various diseases, including cancer and ischemia.
Purpose of the Study:
- To investigate the effects of extracellular acidification on HEK293 cell viability.
- To elucidate the mechanisms underlying acid-induced cell death.
- To identify potential therapeutic targets for acidosis-related conditions.
Main Methods:
- HEK293 cells were subjected to pHe acidification using mitochondrial inhibitors and HCl.
- Cell viability, cytosolic pH (pHc), mitochondrial membrane potential (Δψ), ROS levels, and protein carbonylation were assessed.
- The effects of various inhibitors (α-tocopherol, cyclosporin A, Necrostatin-1, zVAD.fmk, Ferrostatin-1) were evaluated.
Main Results:
- Acidification (pHe 7.2 to 5.8) reduced cell viability by 70%.
- Acidosis caused decreased pHc, Δψ hyperpolarization, increased ROS, and protein carbonylation.
- α-tocopherol, cyclosporin A, and Necrostatin-1 protected against cell death, while zVAD.fmk and Ferrostatin-1 did not.
Conclusions:
- Extracellular acidification induces necroptosis in HEK293 cells.
- The mechanism involves intracellular acidification, mitochondrial dysfunction, ROS production, and mPTP opening.
- Targeting ROS and mPTP may offer therapeutic strategies for acidosis-associated pathologies.
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