ArticleCancer & metabolism2024
Characterizing OXPHOS inhibitor-mediated alleviation of hypoxia using high-throughput live cell-imaging.
Article in Cancer & metabolism, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Redox and structural determinants of mitochondrial complex III inhibition by triphenylphosphonium-conjugated atovaquone analogs.Redox biology · 2026Article
- HIF inhibition: Current strategies and clinical challenges.Redox biology · 2026Review
- Targeting mitochondrial α-ketoglutarate sequestration disables dual oncogenic drivers and metabolic adaptability in pancreatic ductal adenocarcinoma.Cell death & disease · 2026Article
- Dissecting Cancer Metabolism and Therapeutic Resistance Using In Vitro Platforms.Advances in experimental medicine and biology · 2026Review
- Unraveling the nexus: Genomic instability and metabolism in cancer.Cell reports · 2025Review
- High-Resolution Tracking of Aging-Related Small Molecules: Bridging Pollutant Exposure, Brain Aging Mechanisms, and Detection Innovations.Biosensors · 2025Review
- Enhancing Radiation Therapy Response in Prostate Cancer Through Metabolic Modulation by Mito-Lonidamine: AInternational journal of molecular sciences · 2025Article
- Mitochondria-targeted strategies in tumor immunity.Frontiers in immunology · 2025Review
- Inhibition of OXPHOS induces metabolic rewiring and reduces hypoxia in murine tumor models.Clinical and translational radiation oncology · 2024Article
- Altered metabolism in cancer: insights into energy pathways and therapeutic targets.Molecular cancer · 2024Review
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11 authors.
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Abstract
backgroundHypoxia is a common feature of many solid tumors and causes radiotherapy and immunotherapy resistance. Pharmacological inhibition of oxidative phosphorylation (OXPHOS) has emerged as a therapeutic strategy to reduce hypoxia. However, the OXPHOS inhibitors tested in clinical trials caused only moderate responses in hypoxia alleviation or trials were terminated due to dose-limiting toxicities. To improve the therapeutic benefit, FDA approved OXPHOS inhibitors (e.g. atovaquone) were conjugated to triphenylphosphonium (TPP
methodsB16OVA murine melanoma cells and MC38 murine colon cancer cells expressing a HIF-Responsive Element (HRE)-induced Green Fluorescent Protein (GFP) with an oxygen-dependent degradation domain (HRE-eGFP-ODD) were generated to assess diffusion-limited hypoxia dynamics in spheroids. Spheroids were treated with IACS-010759, atovaquone, metformin, tamoxifen or with mitochondria-targeted atovaquone (Mito-ATO), PEGylated mitochondria-targeted atovaquone (Mito-PEG-ATO) or mitochondria-targeted tamoxifen (MitoTam). Hypoxia dynamics were followed and quantified over time using the IncuCyte Zoom Live Cell-Imaging system.
resultsHypoxic cores developed in B16OVA.HRE and MC38.HRE spheroids within 24 h hours after seeding. Treatment with IACS-010759, metformin, atovaquone, Mito-PEG-ATO and MitoTam showed a dose-dependent reduction of hypoxia in both B16OVA.HRE and MC38.HRE spheroids. Mito-ATO only alleviated hypoxia in MC38.HRE spheroids while tamoxifen was not able to reduce hypoxia in any of the spheroid models. The mitochondria-targeted OXPHOS inhibitors demonstrated stronger anti-hypoxic effects compared to the non-mito-targeted OXPHOS inhibitors.
conclusionsWe successfully developed a high-throughput spheroid model in which hypoxia dynamics can be quantified over time. Using this model, we showed that the mitochondria-targeted OXPHOS inhibitors Mito-ATO, Mito-PEG-ATO and MitoTam reduce hypoxia in tumor cells in a dose-dependent manner, potentially sensitizing hypoxic tumor cells for radiotherapy.
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