Research map: Reactive oxygen species (ROS) in cancer: from redox signaling and metabolic plasticity to therapeutic vulnerabilities
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Papers in this map
- How mitochondria produce reactive oxygen species · Michael P. Murphy · 2008 · 8271 citations · Cited by this paper
- Emerging roles of haemostatic proteins as markers of disease progression and prognosis in breast cancer · 2026 · Related
- Ferroptosis: A Regulated Cell Death Nexus Linking Metabolism, Redox Biology, and Disease · Brent R. Stockwell · 2017 · 7879 citations · Cited by this paper
- FDA 2025 Cancer Drug Approvals: targeted therapy dominates · 2026 · Related
- Ferroptosis: mechanisms, biology and role in disease · Xuejun Jiang · 2021 · 7672 citations · Cited by this paper
- Racial disparities in hepatocellular carcinoma: a TCGA-based gene expression study of Caucasian and Asian populations · 2025 · Related
- The DNA-damage response in human biology and disease · Stephen P. Jackson · 2009 · 6215 citations · Cited by this paper
- Metabolic plasticity drives specific mechanisms of chemotherapy and targeted therapy resistance in metastatic colorectal cancer · 2025 · Related
- Targeting cancer cells by ROS-mediated mechanisms: a radical therapeutic approach? · Dunyaporn Trachootham · 2009 · 5459 citations · Cited by this paper
- Benign, persistent, and invasive: mechanistic and translational approaches to middle‑ear cholesteatoma · 2026 · Related
- Oxidative stress, inflammation, and cancer: How are they linked? · Simone Reuter · 2010 · 5437 citations · Cited by this paper
- Lorlatinib in advanced ALK-positive NSCLC after prior progression on ALK inhibitors: real-world experience in Russia · 2026 · Related
- Reactive oxygen species (ROS) homeostasis and redox regulation in cellular signaling · Paul D. Ray · 2012 · 4431 citations · Cited by this paper
- Liquid biopsy in breast cancer: current biomarker platforms and clinical applications · 2026 · Related
- The CoQ oxidoreductase FSP1 acts parallel to GPX4 to inhibit ferroptosis · Kirill Bersuker · 2019 · 3782 citations · Cited by this paper
- More than alternative estrogen receptors: the emerging role of GPER-1 and ERα36 in breast cancer · 2026 · Related
- Modulation of oxidative stress as an anticancer strategy · Chiara Gorrini · 2013 · 3626 citations · Cited by this paper
- CHD4 and NOX4 expression in thyroid tumor tissues · 2026 · Related
- Reactive oxygen species in cancer · Geou‐Yarh Liou · 2010 · 3449 citations · Cited by this paper
- Next-generation cancer vaccines: targeting cryptic and non-canonical antigens for precision immunotherapy · 2025 · Related
- Immunogenic cell death in cancer and infectious disease · Lorenzo Galluzzi · 2016 · 3157 citations · Cited by this paper
- Ferroptosis turns 10: Emerging mechanisms, physiological functions, and therapeutic applications · Brent R. Stockwell · 2022 · 3144 citations · Cited by this paper
- The Chemistry of Reactive Oxygen Species (ROS) Revisited: Outlining Their Role in Biological Macromolecules (DNA, Lipids and Proteins) and Induced Pathologies · Celia Andrés · 2021 · 2776 citations · Cited by this paper
- Oxidative Stress in Cancer · John David Hayes · 2020 · 2655 citations · Cited by this paper
- Physiological Roles of Mitochondrial Reactive Oxygen Species · Laura A. Sena · 2012 · 2636 citations · Cited by this paper
- Association of reactive oxygen species levels and radioresistance in cancer stem cells · Maximilian Diehn · 2009 · 2569 citations · Cited by this paper
- Reactive Oxygen Species (ROS)-Based Nanomedicine · Bowen Yang · 2019 · 2476 citations · Cited by this paper
- Autophagy promotes ferroptosis by degradation of ferritin · Wen‐Chi Hou · 2016 · 2340 citations · Cited by this paper
- Oncogene-induced Nrf2 transcription promotes ROS detoxification and tumorigenesis · Gina M. DeNicola · 2011 · 2307 citations · Cited by this paper
- ROS in cancer therapy: the bright side of the moon · Bruno Perillo · 2020 · 2212 citations · Cited by this paper
- Causes and consequences of replication stress · Michelle K. Zeman · 2013 · 2177 citations · Cited by this paper
- DHODH-mediated ferroptosis defence is a targetable vulnerability in cancer · Chao Mao · 2021 · 1936 citations · Cited by this paper
- Pre-metastatic niches: organ-specific homes for metastases · Héctor Peinado · 2017 · 1935 citations · Cited by this paper
- NRF2, a Transcription Factor for Stress Response and Beyond · Feng He · 2020 · 1809 citations · Cited by this paper
- Mitochondrial ROS in cancer: initiators, amplifiers or an Achilles' heel? · Simran Singh Sabharwal · 2014 · 1656 citations · Cited by this paper
- Guidelines for measuring reactive oxygen species and oxidative damage in cells and in vivo · Michael P. Murphy · 2022 · 1451 citations · Cited by this paper
- Role of Reactive Oxygen Species in Cancer Progression: Molecular Mechanisms and Recent Advancements · Vaishali Aggarwal · 2019 · 1236 citations · Cited by this paper
- ROS homeostasis and metabolism: a dangerous liason in cancer cells · Emiliano Panieri · 2016 · 1177 citations · Cited by this paper
- Proliferation, survival and metabolism: the role of PI3K/AKT/mTOR signalling in pluripotency and cell fate determination · Jason Yu · 2016 · 1175 citations · Cited by this paper
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