Ferroptosis: a potential therapeutic target for Alzheimer’s disease

Abstract The most prevalent dementia-causing neurodegenerative condition is Alzheimer’s disease (AD). The aberrant buildup of amyloid β and tau hyperphosphorylation are the two most well-known theories about the mechanisms underlying AD development. However, a significant number of pharmacological clinical studies conducted around the world based on the two aforementioned theories have not shown promising outcomes, and AD is still not effectively treated. Ferroptosis, a non-apoptotic programmed cell death defined by the buildup of deadly amounts of iron-dependent lipid peroxides, has received more attention in recent years. A wealth of data is emerging to support the role of iron in the pathophysiology of AD. Cell line and animal studies applying ferroptosis modulators to the treatment of AD have shown encouraging results. Based on these studies, we describe in this review the underlying mechanisms of ferroptosis; the role that ferroptosis plays in AD pathology; and summarise some of the research advances in the treatment of AD with ferroptosis modulators. We hope to contribute to the clinical management of AD.

[1]  Kaifeng Li,et al.  Role of Iron-Related Oxidative Stress and Mitochondrial Dysfunction in Cardiovascular Diseases , 2022, Oxidative medicine and cellular longevity.

[2]  Zhengping Wang,et al.  Ketogenic diet prevents chronic sleep deprivation-induced Alzheimer’s disease by inhibiting iron dyshomeostasis and promoting repair via Sirt1/Nrf2 pathway , 2022, Frontiers in Aging Neuroscience.

[3]  W. Liu,et al.  New Deferric Amine Compounds Efficiently Chelate Excess Iron to Treat Iron Overload Disorders and to Prevent Ferroptosis , 2022, Advanced science.

[4]  Yan-zhong Chang,et al.  The emerging role of furin in neurodegenerative and neuropsychiatric diseases , 2022, Translational Neurodegeneration.

[5]  Hee-Seong Jang,et al.  2-Mercaptoethanol protects against DNA double-strand breaks after kidney ischemia and reperfusion injury through GPX4 upregulation , 2022, Pharmacological Reports.

[6]  Thomas J. Begley,et al.  Codon Usage and mRNA Stability are Translational Determinants of Cellular Response to Canonical Ferroptosis Inducers , 2022, Neuroscience.

[7]  C. Oliveira,et al.  Effects of Selenium Supplementation in Patients with Mild Cognitive Impairment or Alzheimer’s Disease: A Systematic Review and Meta-Analysis , 2022, Nutrients.

[8]  H. Cai,et al.  Association of vitamin E intake in diet and supplements with risk of dementia: A meta-analysis , 2022, Frontiers in Aging Neuroscience.

[9]  Y. Osawa,et al.  Iron chelator deferasirox inhibits NF-κB activity in hepatoma cells and changes sorafenib-induced programmed cell deaths. , 2022, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.

[10]  Y. Zeng,et al.  Salidroside attenuates neuronal ferroptosis by activating the Nrf2/HO1 signaling pathway in Aβ1-42-induced Alzheimer’s disease mice and glutamate-injured HT22 cells , 2022, Chinese Medicine.

[11]  N. Ip,et al.  The role of genetic risk factors of Alzheimer's disease in synaptic dysfunction. , 2022, Seminars in cell & developmental biology.

[12]  Peiheng Lu,et al.  Nrf2 Knockout Affected the Ferroptosis Signaling Pathway against Cisplatin-Induced Hair Cell-Like HEI-OC1 Cell Death , 2022, Oxidative medicine and cellular longevity.

[13]  D. Dexter,et al.  Iron, Neuroinflammation and Neurodegeneration , 2022, International journal of molecular sciences.

[14]  Hui-Zhi Long,et al.  The Role of Microglia in Alzheimer’s Disease From the Perspective of Immune Inflammation and Iron Metabolism , 2022, Frontiers in Aging Neuroscience.

[15]  Xiaohuan Xia,et al.  Mechanisms of Ferroptosis and Emerging Links to the Pathology of Neurodegenerative Diseases , 2022, Frontiers in Aging Neuroscience.

[16]  J. Yu,et al.  Emerging Mechanisms and Targeted Therapy of Ferroptosis in Neurological Diseases and Neuro-oncology , 2022, International journal of biological sciences.

[17]  T. Vanden Berghe,et al.  Novel Iron Oxide Nanoparticles Induce Ferroptosis in a Panel of Cancer Cell Lines , 2022, Molecules.

[18]  W. Z. Wan Ngah,et al.  Alpha- and Gamma-Tocopherol Modulates the Amyloidogenic Pathway of Amyloid Precursor Protein in an in vitro Model of Alzheimer’s Disease: A Transcriptional Study , 2022, Frontiers in Cellular Neuroscience.

[19]  I. Hamza,et al.  Molecular Mechanisms of Iron and Heme Metabolism. , 2022, Annual review of nutrition.

[20]  Ping Liu,et al.  Xanthatin inhibits non‐small cell lung cancer proliferation by breaking the redox balance , 2022, Drug development research.

[21]  Kellen L. Olszewski,et al.  A targetable CoQ-FSP1 axis drives ferroptosis- and radiation-resistance in KEAP1 inactive lung cancers , 2022, Nature Communications.

[22]  Dakai Yang,et al.  HucMSC-derived exosomes delivered BECN1 induces ferroptosis of hepatic stellate cells via regulating the xCT/GPX4 axis , 2022, Cell Death & Disease.

[23]  Hao Li,et al.  Iron Dyshomeostasis and Ferroptosis: A New Alzheimer’s Disease Hypothesis? , 2022, Frontiers in Aging Neuroscience.

[24]  M. Xue,et al.  Vildagliptin improves neurological function by inhibiting apoptosis and ferroptosis following intracerebral hemorrhage in mice , 2022, Neuroscience Letters.

[25]  J. Chung,et al.  Plasma-activated medium induces ferroptosis by depleting FSP1 in human lung cancer cells , 2022, Cell Death & Disease.

[26]  Han Guo,et al.  Forsythoside A Mitigates Alzheimer's-like Pathology by Inhibiting Ferroptosis-mediated Neuroinflammation via Nrf2/GPX4 Axis Activation , 2022, International journal of biological sciences.

[27]  L. Baum,et al.  Effects of Deferasirox in Alzheimer’s Disease and Tauopathy Animal Models , 2022, Biomolecules.

[28]  Yafu Yin,et al.  Microglia Polarization From M1 to M2 in Neurodegenerative Diseases , 2022, Frontiers in Aging Neuroscience.

[29]  P. Wipf,et al.  Synthesis and Optimization of Nitroxide-Based Inhibitors of Ferroptotic Cell Death in Cancer Cells and Macrophages. , 2022, ACS medicinal chemistry letters.

[30]  Rui-ming Liu,et al.  Aging, Cellular Senescence, and Alzheimer’s Disease , 2022, International journal of molecular sciences.

[31]  Jun Chen,et al.  Ferroptosis in cancer and cancer immunotherapy , 2022, Cancer communications.

[32]  T. Arumugam,et al.  Physiology and pharmacology of amyloid precursor protein. , 2022, Pharmacology & therapeutics.

[33]  J. Duan,et al.  Enhanced ROS-Boosted Phototherapy against Pancreatic Cancer via Nrf2-Mediated Stress-Defense Pathway Suppression and Ferroptosis Induction. , 2022, ACS applied materials & interfaces.

[34]  Xiaopeng Li,et al.  The multifaceted role of ferroptosis in liver disease , 2022, Cell Death & Differentiation.

[35]  Q. Song,et al.  Artesunate induces ferroptosis via modulation of p38 and ERK signaling pathway in glioblastoma cells. , 2022, Journal of pharmacological sciences.

[36]  Y. Shoenfeld,et al.  Ferritin – from iron, through inflammation and autoimmunity, to COVID-19 , 2021, Journal of Autoimmunity.

[37]  X. Ci,et al.  Leonurine alleviates ferroptosis in cisplatin‐induced acute kidney injury by activating the Nrf2 signalling pathway , 2021, British journal of pharmacology.

[38]  L. Cai,et al.  Ferroptosis is essential for diabetic cardiomyopathy and is prevented by sulforaphane via AMPK/NRF2 pathways , 2021, Acta pharmaceutica Sinica. B.

[39]  D. Steinhilber,et al.  Inhibitors of Human 5-Lipoxygenase Potently Interfere With Prostaglandin Transport , 2022, Frontiers in Pharmacology.

[40]  Shengbiao Li,et al.  RSL3 Drives Ferroptosis through NF-κB Pathway Activation and GPX4 Depletion in Glioblastoma , 2021, Oxidative medicine and cellular longevity.

[41]  V. Gladyshev,et al.  Historical Roles of Selenium and Selenoproteins in Health and Development: The Good, the Bad and the Ugly , 2021, International journal of molecular sciences.

[42]  W. D. den Dunnen,et al.  The Potential of Ferroptosis-Targeting Therapies for Alzheimer’s Disease: From Mechanism to Transcriptomic Analysis , 2021, Frontiers in Aging Neuroscience.

[43]  Tianyuan Zhang,et al.  Baicalein Ameliorates Aβ-Induced Memory Deficits and Neuronal Atrophy via Inhibition of PDE2 and PDE4 , 2021, Frontiers in Pharmacology.

[44]  Lijun Zhang,et al.  Sorafenib attenuates liver fibrosis by triggering hepatic stellate cell ferroptosis via HIF‐1α/SLC7A11 pathway , 2021, Cell proliferation.

[45]  W. Z. Wan Ngah,et al.  Modulatory Effects of Alpha- and Gamma-Tocopherol on the Mitochondrial Respiratory Capacity and Membrane Potential in an In Vitro Model of Alzheimer’s Disease , 2021, Frontiers in Pharmacology.

[46]  Shuhua Wu,et al.  Vitamin E Exerts Neuroprotective Effects in Pentylenetetrazole Kindling Epilepsy via Suppression of Ferroptosis , 2021, Neurochemical Research.

[47]  Jiangwei Xiao,et al.  Ferroptosis: A Double-Edged Sword in Gastrointestinal Disease , 2021, International journal of molecular sciences.

[48]  Chaofan Xue,et al.  Nrf2 attenuates ferroptosis-mediated IIR-ALI by modulating TERT and SLC7A11 , 2021, Cell Death & Disease.

[49]  Wenxian Wu,et al.  Fin56-induced ferroptosis is supported by autophagy-mediated GPX4 degradation and functions synergistically with mTOR inhibition to kill bladder cancer cells , 2021, Cell Death & Disease.

[50]  Tongtong Xu,et al.  Ferroptosis: Opportunities and Challenges in Myocardial Ischemia-Reperfusion Injury , 2021, Oxidative medicine and cellular longevity.

[51]  N. Chattipakorn,et al.  Cell death inhibitors protect against brain damage caused by cardiac ischemia/reperfusion injury , 2021, Cell death discovery.

[52]  S. Archer,et al.  Mitochondrial iron–sulfur clusters: Structure, function, and an emerging role in vascular biology , 2021, Redox biology.

[53]  Chunyan Dong,et al.  Metal-Polyphenol-Network Coated Prussian Blue Nanoparticles for Synergistic Ferroptosis and Apoptosis via Triggered GPX4 Inhibition and Concurrent In Situ Bleomycin Toxification. , 2021, Small.

[54]  D. Öngür,et al.  Mitochondrial dysfunction, oxidative stress, neuroinflammation, and metabolic alterations in the progression of Alzheimer’s disease: A meta-analysis of in vivo magnetic resonance spectroscopy studies , 2021, Ageing Research Reviews.

[55]  Arti Singh,et al.  Coenzyme Q10 a mitochondrial restorer for various brain disorders , 2021, Naunyn-Schmiedeberg's Archives of Pharmacology.

[56]  A. Grimm Impairments in Brain Bioenergetics in Aging and Tau Pathology: A Chicken and Egg Situation? , 2021, Cells.

[57]  Shao-shuai Wang,et al.  Zileuton inhibits arachidonate-5-lipoxygenase to exert antitumor effects in preclinical cervical cancer models , 2021, Cancer Chemotherapy and Pharmacology.

[58]  Jun Zhang,et al.  Reactive oxygen species / photothermal therapy dual-triggered biomimetic gold nanocages nanoplatform for combination cancer therapy via ferroptosis and tumor-associated macrophage repolarization mechanism. , 2021, Journal of colloid and interface science.

[59]  Yaoxing Chen,et al.  Ferroptosis Mechanisms Involved in Hippocampal-Related Diseases , 2021, International journal of molecular sciences.

[60]  B. Adhikari,et al.  Trans-Chalcone Plus Baicalein Synergistically Reduce Intracellular Amyloid Beta (Aβ42) and Protect from Aβ42 Induced Oxidative Damage in Yeast Models of Alzheimer’s Disease , 2021, International journal of molecular sciences.

[61]  A. Bush,et al.  The acute phase protein lactoferrin is a key feature of Alzheimer’s disease and predictor of Aβ burden through induction of APP amyloidogenic processing , 2021, Molecular Psychiatry.

[62]  T. G. Singh,et al.  Apoptotic Pathways and Alzheimer’s Disease: Probing Therapeutic Potential , 2021, Neurochemical Research.

[63]  Lan Zhang,et al.  Tetrahydroxy stilbene glycoside ameliorates Alzheimer's disease in APP/PS1 mice via glutathione peroxidase related ferroptosis. , 2021, International immunopharmacology.

[64]  J. Handa,et al.  Nrf2 deficiency decreases NADPH from impaired IDH shuttle and pentose phosphate pathway in retinal pigmented epithelial cells to magnify oxidative stress‐induced mitochondrial dysfunction , 2021, Aging cell.

[65]  Jianping Chen,et al.  Glycyrrhetinic acid induces oxidative/nitrative stress and drives ferroptosis through activating NADPH oxidases and iNOS, and depriving glutathione in triple-negative breast cancer cells. , 2021, Free radical biology & medicine.

[66]  Tianliang Li,et al.  Acidity‐Activatable Dynamic Nanoparticles Boosting Ferroptotic Cell Death for Immunotherapy of Cancer , 2021, Advanced materials.

[67]  S. Laws,et al.  Chronic stress and Alzheimer's disease: the interplay between the hypothalamic–pituitary–adrenal axis, genetics and microglia , 2021, Biological reviews of the Cambridge Philosophical Society.

[68]  Quanzheng Li,et al.  Characterization of Brain Iron Deposition Pattern and Its Association With Genetic Risk Factor in Alzheimer’s Disease Using Susceptibility-Weighted Imaging , 2021, Frontiers in Human Neuroscience.

[69]  J. Prieto,et al.  In Vitro Effects of Selective COX and LOX Inhibitors and Their Combinations with Antineoplastic Drugs in the Mouse Melanoma Cell Line B16F10 , 2021, International journal of molecular sciences.

[70]  H. Bayır,et al.  Elucidating the contribution of mitochondrial glutathione to ferroptosis in cardiomyocytes , 2021, Redox biology.

[71]  G. Kroemer,et al.  Ferroptosis in infection, inflammation, and immunity , 2021, The Journal of experimental medicine.

[72]  A. Cicero,et al.  Coenzyme Q10: Clinical Applications beyond Cardiovascular Diseases , 2021, Nutrients.

[73]  Ji Wang,et al.  Metformin induces Ferroptosis by inhibiting UFMylation of SLC7A11 in breast cancer , 2021, Journal of Experimental & Clinical Cancer Research.

[74]  M. Mizuno,et al.  Lysosomal nitric oxide determines transition from autophagy to ferroptosis after exposure to plasma-activated Ringer's lactate , 2021, Redox biology.

[75]  A. Sood,et al.  Ferroptosis as a mechanism to mediate p53 function in tumor radiosensitivity , 2021, Oncogene.

[76]  Zhixiang Wang,et al.  Endogenous glutamate determines ferroptosis sensitivity via ADCY10-dependent YAP suppression in lung adenocarcinoma , 2021, Theranostics.

[77]  Jong-Seok Moon,et al.  NOX4 promotes ferroptosis of astrocytes by oxidative stress-induced lipid peroxidation via the impairment of mitochondrial metabolism in Alzheimer's diseases , 2021, Redox biology.

[78]  Yuchao Jiang,et al.  Quiescin sulfhydryl oxidase 1 promotes sorafenib-induced ferroptosis in hepatocellular carcinoma by driving EGFR endosomal trafficking and inhibiting NRF2 activation , 2021, Redox biology.

[79]  Junjie Chen,et al.  mTORC1 couples cyst(e)ine availability with GPX4 protein synthesis and ferroptosis regulation , 2021, Nature Communications.

[80]  N. Chandel,et al.  Mitochondria as Signaling Organelles Control Mammalian Stem Cell Fate. , 2021, Cell stem cell.

[81]  L. Savegnago,et al.  Effect of a purine derivative containing selenium to improve memory decline and anxiety through modulation of the cholinergic system and Na+/K+-ATPase in an Alzheimer’s disease model , 2021, Metabolic Brain Disease.

[82]  B. Guerra,et al.  The Mevalonate Pathway, a Metabolic Target in Cancer Therapy , 2021, Frontiers in Oncology.

[83]  Marieke E. Ijsselsteijn,et al.  Iron loading is a prominent feature of activated microglia in Alzheimer’s disease patients , 2021, Acta neuropathologica communications.

[84]  V. Uversky,et al.  Baicalein inhibits heparin-induced Tau aggregation by initializing non-toxic Tau oligomer formation , 2021, Cell communication and signaling : CCS.

[85]  Q. Ma,et al.  Apatinib induced ferroptosis by lipid peroxidation in gastric cancer , 2021, Gastric Cancer.

[86]  A. Belaidi,et al.  Ferroptosis: mechanisms and links with diseases , 2021, Signal Transduction and Targeted Therapy.

[87]  Jian Huang,et al.  Crosstalk between Macrophages, T Cells, and Iron Metabolism in Tumor Microenvironment , 2021, Oxidative medicine and cellular longevity.

[88]  H. Tian,et al.  Deferasirox (ExJade): An FDA-Approved AIEgen Platform with Unique Photophysical Properties. , 2021, Journal of the American Chemical Society.

[89]  P. Adlard,et al.  Deferiprone Treatment in Aged Transgenic Tau Mice Improves Y-Maze Performance and Alters Tau Pathology , 2021, Neurotherapeutics.

[90]  P. Nelson,et al.  Loss of ferroportin induces memory impairment by promoting ferroptosis in Alzheimer’s disease , 2021, Cell Death & Differentiation.

[91]  You-Qiang Song,et al.  Autophagy in Alzheimer’s disease pathogenesis: Therapeutic potential and future perspectives , 2020, Ageing Research Reviews.

[92]  D. Fruman,et al.  Targeting the Mevalonate Pathway in Cancer. , 2020, Trends in cancer.

[93]  P. Edison,et al.  Neuroinflammation and microglial activation in Alzheimer disease: where do we go from here? , 2020, Nature Reviews Neurology.

[94]  G. Kroemer,et al.  Ferroptosis: molecular mechanisms and health implications , 2020, Cell Research.

[95]  B. Avcı,et al.  Idebenone Ameliorates Rotenone-Induced Parkinson’s Disease in Rats Through Decreasing Lipid Peroxidation , 2020, Neurochemical Research.

[96]  P. Negredo,et al.  Protective role of microglial HO-1 blockade in aging: Implication of iron metabolism , 2020, Redox biology.

[97]  Yanjun Zhao,et al.  Electron-Accepting Micelles Deplete Reduced Nicotinamide Adenine Dinucleotide Phosphate and Impair Two Antioxidant Cascades for Ferroptosis-Induced Tumor Eradication. , 2020, ACS nano.

[98]  E. Bertini,et al.  The Nrf2 induction prevents ferroptosis in Friedreich's Ataxia , 2020, Redox biology.

[99]  S. Bydlowski,et al.  Ferroptosis Mechanisms Involved in Neurodegenerative Diseases , 2020, International journal of molecular sciences.

[100]  Dong Hyun Kim,et al.  Neuroprotective Effects of Baicalein, Wogonin, and Oroxylin A on Amyloid Beta-Induced Toxicity via NF-κB/MAPK Pathway Modulation , 2020, Molecules.

[101]  A. Bush,et al.  Iron and Ferroptosis as Therapeutic Targets in Alzheimer’s Disease , 2020, Neurotherapeutics.

[102]  Z. Xiong,et al.  Novel insights into ferroptosis: Implications for age-related diseases , 2020, Theranostics.

[103]  L. Buée,et al.  Accumulation of amyloid precursor protein C-terminal fragments triggers mitochondrial structure, function, and mitophagy defects in Alzheimer’s disease models and human brains , 2020, Acta Neuropathologica.

[104]  Jun Zhang,et al.  Heparanase-driven sequential released nanoparticles for ferroptosis and tumor microenvironment modulations synergism in breast cancer therapy. , 2020, Biomaterials.

[105]  Erqun Song,et al.  Fostered Nrf2 expression antagonizes iron overload and glutathione depletion to promote resistance of neuron-like cells to ferroptosis. , 2020, Toxicology and applied pharmacology.

[106]  D. Klionsky,et al.  Ferroptosis: machinery and regulation , 2020, Autophagy.

[107]  S. Black,et al.  Relationships between memory decline and the use of metformin or DPP4 inhibitors in people with type 2 diabetes with normal cognition or Alzheimer's disease, and the role APOE carrier status , 2020, Alzheimer's & dementia : the journal of the Alzheimer's Association.

[108]  Zhihua Chen,et al.  Insight Into the Role of Ferroptosis in Non-neoplastic Neurological Diseases , 2020, Frontiers in Cellular Neuroscience.

[109]  Ying Yao,et al.  XJB-5-131 inhibited ferroptosis in tubular epithelial cells after ischemia−reperfusion injury , 2020, Cell Death & Disease.

[110]  Yuehua Wu,et al.  Artesunate synergizes with sorafenib to induce ferroptosis in hepatocellular carcinoma , 2020, Acta Pharmacologica Sinica.

[111]  G. Ateş,et al.  CMS121, a fatty acid synthase inhibitor, protects against excess lipid peroxidation and inflammation and alleviates cognitive loss in a transgenic mouse model of Alzheimer's disease , 2020, Redox biology.

[112]  Zhen-Ni Guo,et al.  Ferroptosis in Neurological Diseases , 2020, Frontiers in Cellular Neuroscience.

[113]  Yongsheng Li,et al.  The interaction between ferroptosis and lipid metabolism in cancer , 2020, Signal Transduction and Targeted Therapy.

[114]  K. Fukui,et al.  Tocotrienols Influence Body Weight Gain and Brain Protein Expression in Long-Term High-Fat Diet-Treated Mice , 2020, International journal of molecular sciences.

[115]  Huaxi Xu,et al.  Selenium restores synaptic deficits by modulating NMDA receptors and selenoprotein K in an Alzheimer's disease model. , 2020, Antioxidants & redox signaling.

[116]  Wenzhang Wang,et al.  Mitochondria dysfunction in the pathogenesis of Alzheimer’s disease: recent advances , 2020, Molecular Neurodegeneration.

[117]  H. Nakano,et al.  Identification of the hallmarks of necroptosis and ferroptosis by transmission electron microscopy. , 2020, Biochemical and biophysical research communications.

[118]  R. Swerdlow,et al.  Mitochondria in Alzheimer's disease and their potential role in Alzheimer's proteostasis , 2020, Experimental Neurology.

[119]  O. Hansson,et al.  Relationship between cortical iron and tau aggregation in Alzheimer’s disease , 2020, Brain : a journal of neurology.

[120]  M. Conrad,et al.  Selenium: Tracing Another Essential Element of Ferroptotic Cell Death. , 2020, Cell chemical biology.

[121]  Stephen A. Sastra,et al.  Cysteine depletion induces pancreatic tumor ferroptosis in mice , 2020, Science.

[122]  P. Clemons,et al.  Selective covalent targeting of GPX4 using masked nitrile-oxide electrophiles , 2020, Nature Chemical Biology.

[123]  Arijit Ghosh,et al.  5-lipoxygenase pathway and its downstream cysteinyl leukotrienes as potential therapeutic targets for Alzheimer’s disease , 2020, Brain, Behavior, and Immunity.

[124]  Yongmei Cao,et al.  Inhibitor of apoptosis-stimulating protein of p53 inhibits ferroptosis and alleviates intestinal ischemia/reperfusion-induced acute lung injury , 2020, Cell Death & Differentiation.

[125]  Yueqing Gu,et al.  Enhanced Ferroptosis by Oxygen-Boosted Phototherapy Based on 2-in-1 Nanoplatform of Ferrous Hemoglobin for Tumor Synergistic Therapy. , 2020, ACS nano.

[126]  P. So,et al.  Iron dyshomeostasis, lipid peroxidation and perturbed expression of cystine/glutamate antiporter in Alzheimer’s disease: Evidence of ferroptosis , 2020, Redox biology.

[127]  Ghadha Ibrahim Fouad Combination of Omega 3 and Coenzyme Q10 Exerts Neuroprotective Potential Against Hypercholesterolemia-Induced Alzheimer's-Like Disease in Rats , 2020, Neurochemical Research.

[128]  Shiyuan Xu,et al.  Ferrostatin-1 alleviates lipopolysaccharide-induced acute lung injury via inhibiting ferroptosis , 2020, Cellular & Molecular Biology Letters.

[129]  M. Shchepinov Polyunsaturated Fatty Acid Deuteration against Neurodegeneration. , 2020, Trends in pharmacological sciences.

[130]  T. Cañeque,et al.  DMT1 Inhibitors Kill Cancer Stem Cells by Blocking Lysosomal Iron Translocation. , 2020, Chemistry.

[131]  Hao Wang,et al.  Pyridoxine induces glutathione synthesis via PKM2-mediated Nrf2 transactivation and confers neuroprotection , 2020, Nature Communications.

[132]  Sylvia F. Fawzi,et al.  Deferiprone ameliorates memory impairment in Scopolamine-treated rats: The impact of its iron-chelating effect on β-amyloid disposition , 2020, Behavioural Brain Research.

[133]  Wanhong Liu,et al.  Ferroptosis: a novel mechanism of artemisinin and its derivatives in cancer therapy. , 2020, Current medicinal chemistry.

[134]  W. Frey,et al.  Intranasal deferoxamine can improve memory in healthy C57 mice, suggesting a partially non‐disease‐specific pathway of functional neurologic improvement , 2020, Brain and behavior.

[135]  N. Chandel,et al.  Mitochondrial TCA cycle metabolites control physiology and disease , 2020, Nature Communications.

[136]  T. Kent,et al.  Revisiting the intersection of amyloid, pathologically modified tau and iron in Alzheimer’s disease from a ferroptosis perspective , 2020, Progress in Neurobiology.

[137]  Shuofei Yang,et al.  Iron overload contributes to general anaesthesia-induced neurotoxicity and cognitive deficits , 2019, Journal of Neuroinflammation.

[138]  P. Naudé,et al.  Iron chelators inhibit amyloid-β-induced production of lipocalin 2 in cultured astrocytes , 2019, Neurochemistry International.

[139]  Chengyou Liu,et al.  Ferrostatin-1 protects HT-22 cells from oxidative toxicity , 2019, Neural regeneration research.

[140]  Y. Ke,et al.  Hepcidin and its therapeutic potential in neurodegenerative disorders , 2020, Medicinal research reviews.

[141]  Junjian Zhang,et al.  Iron Metabolism, Ferroptosis, and the Links With Alzheimer’s Disease , 2020, Frontiers in Neuroscience.

[142]  M. Heneka,et al.  The role of innate immune responses and neuroinflammation in amyloid accumulation and progression of Alzheimer's disease , 2020, Immunology and cell biology.

[143]  S. Schreiber,et al.  Diacylfuroxans Are Masked Nitrile Oxides That Inhibit GPX4 Covalently. , 2019, Journal of the American Chemical Society.

[144]  G. Jiang,et al.  Perturbation of 3-tert-butyl-4-hydroxyanisole in adipogenesis of male mice with normal and high fat diets. , 2019, The Science of the total environment.

[145]  Qinglin Li,et al.  Gastrodin protects against glutamate-induced ferroptosis in HT-22 cells through Nrf2/HO-1 signaling pathway. , 2019, Toxicology in vitro : an international journal published in association with BIBRA.

[146]  Edward W. Tate,et al.  FSP1 is a glutathione-independent ferroptosis suppressor , 2019, Nature.

[147]  J. Olzmann,et al.  The CoQ oxidoreductase FSP1 acts in parallel to GPX4 to inhibit ferroptosis , 2019, Nature.

[148]  G. Latunde-Dada,et al.  Programmed Cell-Death by Ferroptosis: Antioxidants as Mitigators , 2019, International journal of molecular sciences.

[149]  D. Holtzman,et al.  Alzheimer Disease: An Update on Pathobiology and Treatment Strategies , 2019, Cell.

[150]  K. Cullen,et al.  The neuritic plaque in Alzheimer's disease: perivascular degeneration of neuronal processes , 2019, Neurobiology of Aging.

[151]  G. Sethi,et al.  Brusatol, a Nrf2 Inhibitor Targets STAT3 Signaling Cascade in Head and Neck Squamous Cell Carcinoma , 2019, Biomolecules.

[152]  S. Gibson,et al.  Lysosomal Destabilizing Drug Siramesine and the Dual Tyrosine Kinase Inhibitor Lapatinib Induce a Synergistic Ferroptosis through Reduced Heme Oxygenase-1 (HO-1) Levels , 2019, Oxidative medicine and cellular longevity.

[153]  S. Bidichandani,et al.  Friedreich ataxia- pathogenesis and implications for therapies , 2019, Neurobiology of Disease.

[154]  Sung Hoon Baik,et al.  A Breakdown in Metabolic Reprogramming Causes Microglia Dysfunction in Alzheimer's Disease. , 2019, Cell metabolism.

[155]  A. C. Colado Simão,et al.  The role of zinc, copper, manganese and iron in neurodegenerative diseases. , 2019, Neurotoxicology.

[156]  K. Girish,et al.  Hemin-induced platelet activation and ferroptosis is mediated through ROS-driven proteasomal activity and inflammasome activation: Protection by Melatonin. , 2019, Biochimica et biophysica acta. Molecular basis of disease.

[157]  M. Lynch,et al.  Iron accumulation in microglia triggers a cascade of events that leads to altered metabolism and compromised function in APP/PS1 mice , 2019, Brain pathology.

[158]  G. Gurtner,et al.  Optimization of transdermal deferoxamine leads to enhanced efficacy in healing skin wounds. , 2019, Journal of controlled release : official journal of the Controlled Release Society.

[159]  T. Kirkwood,et al.  Mitochondria in the signaling pathways that control longevity and health span , 2019, Ageing Research Reviews.

[160]  T. Du,et al.  ATF3 promotes erastin-induced ferroptosis by suppressing system Xc– , 2019, Cell Death & Differentiation.

[161]  D. Selkoe Alzheimer disease and aducanumab: adjusting our approach , 2019, Nature Reviews Neurology.

[162]  Y. Guan,et al.  Iron Deposition Leads to Hyperphosphorylation of Tau and Disruption of Insulin Signaling , 2019, Front. Neurol..

[163]  Xiaohui Li,et al.  Anagliptin protects neuronal cells against endogenous amyloid β (Aβ)-induced cytotoxicity and apoptosis , 2019, Artificial cells, nanomedicine, and biotechnology.

[164]  M. Mizuno,et al.  Non-thermal plasma specifically kills oral squamous cell carcinoma cells in a catalytic Fe(II)-dependent manner , 2019, Journal of clinical biochemistry and nutrition.

[165]  Mi-Kyung Lee,et al.  Clinical utility of serum hepcidin and iron profile measurements in Alzheimer's disease , 2019, Journal of the Neurological Sciences.

[166]  I. De Meester,et al.  CD26/DPP4 - a potential biomarker and target for cancer therapy. , 2019, Pharmacology & therapeutics.

[167]  M. Shchepinov,et al.  Deuterated Polyunsaturated Fatty Acids Reduce Oxidative Stress and Extend the Lifespan of C. elegans , 2019, Front. Physiol..

[168]  B. Stockwell,et al.  Imidazole Ketone Erastin Induces Ferroptosis and Slows Tumor Growth in a Mouse Lymphoma Model. , 2019, Cell chemical biology.

[169]  V. Swarup,et al.  Selenium Drives a Transcriptional Adaptive Program to Block Ferroptosis and Treat Stroke , 2019, Cell.

[170]  Y. Lim,et al.  Salinomycin-Loaded Gold Nanoparticles for Treating Cancer Stem Cells by Ferroptosis-Induced Cell Death. , 2019, Molecular pharmaceutics.

[171]  P. Vandenabeele,et al.  The molecular machinery of regulated cell death , 2019, Cell Research.

[172]  A. Bush,et al.  Cerebrospinal fluid ferritin levels predict brain hypometabolism in people with underlying β-amyloid pathology , 2019, Neurobiology of Disease.

[173]  M. Peana,et al.  The essential metals for humans: a brief overview. , 2019, Journal of inorganic biochemistry.

[174]  M. Conrad,et al.  Role of GPX4 in ferroptosis and its pharmacological implication. , 2019, Free radical biology & medicine.

[175]  D. Donley,et al.  Iron activates microglia and directly stimulates indoleamine-2,3-dioxygenase activity in the N171-82Q mouse model of Huntington’s disease , 2019, bioRxiv.

[176]  A. Bush,et al.  Treating Alzheimer's disease by targeting iron , 2019, British journal of pharmacology.

[177]  A. Lloret,et al.  The Effectiveness of Vitamin E Treatment in Alzheimer’s Disease , 2019, International journal of molecular sciences.

[178]  H. Schipper,et al.  The sinister face of heme oxygenase-1 in brain aging and disease , 2019, Progress in Neurobiology.

[179]  J. Schneider,et al.  Brain iron is associated with accelerated cognitive decline in people with Alzheimer pathology , 2019, Molecular Psychiatry.

[180]  Chengshuo Wang,et al.  Inhibition of arachidonate 15‐lipoxygenase reduces the epithelial–mesenchymal transition in eosinophilic chronic rhinosinusitis with nasal polyps , 2018, International forum of allergy & rhinology.

[181]  Lu Gao,et al.  12(S)‐hydroxyeicosatetraenoic acid impairs vascular endothelial permeability by altering adherens junction phosphorylation levels and affecting the binding and dissociation of its components in high glucose‐induced vascular injury , 2018, Journal of diabetes investigation.

[182]  Yuanrong Cheng,et al.  Artesunate alleviates liver fibrosis by regulating ferroptosis signaling pathway. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.

[183]  J. Nagy,et al.  Effect of Inflammatory Mediators Lipopolysaccharide and Lipoteichoic Acid on Iron Metabolism of Differentiated SH-SY5Y Cells Alters in the Presence of BV-2 Microglia , 2018, International journal of molecular sciences.

[184]  Hu Zhou,et al.  Iron‐induced energy supply deficiency and mitochondrial fragmentation in neurons , 2018, Journal of neurochemistry.

[185]  Ting Duan,et al.  RSL3 Drives Ferroptosis Through GPX4 Inactivation and ROS Production in Colorectal Cancer , 2018, Front. Pharmacol..

[186]  P. Vandenabeele,et al.  Discovery of Novel, Drug-Like Ferroptosis Inhibitors with in Vivo Efficacy. , 2018, Journal of medicinal chemistry.

[187]  Zhan-You Wang,et al.  Iron and Alzheimer’s Disease: From Pathogenesis to Therapeutic Implications , 2018, Front. Neurosci..

[188]  Munikumar Manne,et al.  Brain Selenium in Alzheimer’s Disease (BRAIN SEAD Study): a Systematic Review and Meta-Analysis , 2018, Biological Trace Element Research.

[189]  P. Adlard,et al.  Untangling Tau and Iron: Exploring the Interaction Between Iron and Tau in Neurodegeneration , 2018, Front. Mol. Neurosci..

[190]  D. Davis,et al.  Vitamin E hydroquinone is an endogenous regulator of ferroptosis via redox control of 15-lipoxygenase , 2018, PloS one.

[191]  A. Bush,et al.  Marked Age-Related Changes in Brain Iron Homeostasis in Amyloid Protein Precursor Knockout Mice , 2018, Neurotherapeutics : the journal of the American Society for Experimental NeuroTherapeutics.

[192]  Linxi Chen,et al.  Ferritinophagy/ferroptosis: Iron‐related newcomers in human diseases , 2018, Journal of cellular physiology.

[193]  D. Klionsky,et al.  AMPK-Mediated BECN1 Phosphorylation Promotes Ferroptosis by Directly Blocking System Xc – Activity , 2018, Current Biology.

[194]  Nan Chen,et al.  Selenium-Encoded Isotopic Signature Targeted Profiling , 2018, ACS central science.

[195]  K. Chin,et al.  A Review on the Relationship between Tocotrienol and Alzheimer Disease , 2018, Nutrients.

[196]  Donna D. Zhang,et al.  NRF2 and the Hallmarks of Cancer. , 2018, Cancer cell.

[197]  M. Mattson,et al.  Deuterated polyunsaturated fatty acids reduce brain lipid peroxidation and hippocampal amyloid β-peptide levels, without discernable behavioral effects in an APP/PS1 mutant transgenic mouse model of Alzheimer's disease , 2018, Neurobiology of Aging.

[198]  P. Kopčanský,et al.  Fe(II) formation after interaction of the amyloid β-peptide with iron-storage protein ferritin , 2018, Journal of Biological Physics.

[199]  Lei Wang,et al.  Increased Iron Deposition on Brain Quantitative Susceptibility Mapping Correlates with Decreased Cognitive Function in Alzheimer's Disease. , 2018, ACS chemical neuroscience.

[200]  B. Stockwell,et al.  Regulation of lipid peroxidation and ferroptosis in diverse species , 2018, Genes & development.

[201]  G. Lenaers,et al.  OPA1: How much do we know to approach therapy? , 2018, Pharmacological research.

[202]  Nir Hacohen,et al.  Systems Immunology: Learning the Rules of the Immune System. , 2018, Annual review of immunology.

[203]  L. Galluzzi,et al.  Oncogene-induced senescence and tumour control in complex biological systems , 2018, Cell Death & Differentiation.

[204]  Junxia Xie,et al.  Astroglial and microglial contributions to iron metabolism disturbance in Parkinson's disease. , 2018, Biochimica et biophysica acta. Molecular basis of disease.

[205]  Wei‐Chao Chang,et al.  Heme oxygenase-1 mediates BAY 11-7085 induced ferroptosis. , 2018, Cancer letters.

[206]  B. Stockwell,et al.  FINO2 Initiates Ferroptosis Through GPX4 Inactivation and Iron Oxidation , 2018, Nature Chemical Biology.

[207]  M. Lynch,et al.  Inflammatory microglia are glycolytic and iron retentive and typify the microglia in APP/PS1 mice , 2018, Brain, Behavior, and Immunity.

[208]  A. Walch,et al.  Selenium Utilization by GPX4 Is Required to Prevent Hydroperoxide-Induced Ferroptosis , 2017, Cell.

[209]  M. Tomás,et al.  Oxidative stress and the amyloid beta peptide in Alzheimer’s disease , 2017, Redox biology.

[210]  Zhenyu Li,et al.  Ferroptosis: A Novel Anti-tumor Action for Cisplatin , 2017, Cancer research and treatment : official journal of Korean Cancer Association.

[211]  M. Garg,et al.  Elevated plasma ferritin in elderly individuals with high neocortical amyloid-β load , 2018, Molecular Psychiatry.

[212]  Yun Zhang,et al.  Deferoxamine enhances alternative activation of microglia and inhibits amyloid beta deposits in APP/PS1 mice , 2017, Brain Research.

[213]  Se Jin Park,et al.  Baicalein as a potent neuroprotective agent: A review. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.

[214]  E. Tan,et al.  Iron regulatory protein (IRP)-iron responsive element (IRE) signaling pathway in human neurodegenerative diseases , 2017, Molecular Neurodegeneration.

[215]  Joseph J. Gallagher,et al.  Iron Biochemistry is Correlated with Amyloid Plaque Morphology in an Established Mouse Model of Alzheimer's Disease. , 2017, Cell chemical biology.

[216]  B. Stockwell,et al.  Ferroptosis: A Regulated Cell Death Nexus Linking Metabolism, Redox Biology, and Disease , 2017, Cell.

[217]  Bárbara Nieva-Echevarría,et al.  Polyunsaturated lipids and vitamin A oxidation during cod liver oil in vitro gastrointestinal digestion. Antioxidant effect of added BHT. , 2017, Food chemistry.

[218]  A. Bush,et al.  Evidence that iron accelerates Alzheimer’s pathology: a CSF biomarker study , 2017, Journal of Neurology, Neurosurgery, and Psychiatry.

[219]  S. Fulda,et al.  Lipoxygenase inhibitors protect acute lymphoblastic leukemia cells from ferroptotic cell death , 2017, Biochemical pharmacology.

[220]  Weihong Song,et al.  Modifications and Trafficking of APP in the Pathogenesis of Alzheimer’s Disease , 2017, Front. Mol. Neurosci..

[221]  G. Kroemer,et al.  The Tumor Suppressor p53 Limits Ferroptosis by Blocking DPP4 Activity. , 2017, Cell reports.

[222]  Olivier Salvado,et al.  Cerebral quantitative susceptibility mapping predicts amyloid-&bgr;-related cognitive decline , 2017, Brain : a journal of neurology.

[223]  Jill P. Mesirov,et al.  Dependency of a therapy-resistant state of cancer cells on a lipid peroxidase pathway , 2017, Nature.

[224]  Xiaoning Han,et al.  Modulators of microglial activation and polarization after intracerebral haemorrhage , 2017, Nature Reviews Neurology.

[225]  Fan Xing Meng,et al.  In vivo evaluation of microglia activation by intracranial iron overload in central pain after spinal cord injury , 2017, Journal of Orthopaedic Surgery and Research.

[226]  D. Birnbaum,et al.  Salinomycin kills cancer stem cells by sequestering iron in lysosomes , 2017, Nature Chemistry.

[227]  B. Stockwell,et al.  Inhibition of neuronal ferroptosis protects hemorrhagic brain. , 2017, JCI insight.

[228]  M. Conrad,et al.  On the Mechanism of Cytoprotection by Ferrostatin-1 and Liproxstatin-1 and the Role of Lipid Peroxidation in Ferroptotic Cell Death , 2017, ACS central science.

[229]  L. Schöckel,et al.  Mitochondrial complex I inhibition triggers a mitophagy-dependent ROS increase leading to necroptosis and ferroptosis in melanoma cells , 2017, Cell Death and Disease.

[230]  Qitao Ran,et al.  Ablation of ferroptosis regulator glutathione peroxidase 4 in forebrain neurons promotes cognitive impairment and neurodegeneration , 2017, Redox biology.

[231]  Manoj Kumar,et al.  INGE GRUNDKE-IQBAL AWARD FOR ALZHEIMER’S RESEARCH: NEUROTOXIC REACTIVE ASTROCYTES ARE INDUCED BY ACTIVATED MICROGLIA , 2019, Alzheimer's & Dementia.

[232]  J. Roh,et al.  Nrf2 inhibition reverses the resistance of cisplatin-resistant head and neck cancer cells to artesunate-induced ferroptosis , 2016, Redox biology.

[233]  Simon C Watkins,et al.  Oxidized arachidonic and adrenic PEs navigate cells to ferroptosis. , 2017, Nature chemical biology.

[234]  Yan-zhong Chang,et al.  The Protective Role of Mitochondrial Ferritin on Erastin-Induced Ferroptosis , 2016, Front. Aging Neurosci..

[235]  D. Tang,et al.  Antiferroptotic activity of non-oxidative dopamine. , 2016, Biochemical and biophysical research communications.

[236]  J. Greenberger,et al.  FANCD2 protects against bone marrow injury from ferroptosis. , 2016, Biochemical and biophysical research communications.

[237]  G. Georgiou,et al.  Systemic depletion of serum l-Cyst(e)ine with an engineered human enzyme induces production of reactive oxygen species and suppresses tumor growth in mice , 2016, Nature medicine.

[238]  B. Stockwell,et al.  A Mitochondrial-Targeted Nitroxide Is a Potent Inhibitor of Ferroptosis , 2016, ACS central science.

[239]  B. Stockwell,et al.  Peroxidation of polyunsaturated fatty acids by lipoxygenases drives ferroptosis , 2016, Proceedings of the National Academy of Sciences.

[240]  Yongqiang Chen,et al.  Ferroptosis is induced following siramesine and lapatinib treatment of breast cancer cells , 2016, Cell Death and Disease.

[241]  B. Stockwell,et al.  Global Survey of Cell Death Mechanisms Reveals Metabolic Regulation of Ferroptosis , 2016, Nature chemical biology.

[242]  W. Carroll,et al.  Five-Membered Ring Peroxide Selectively Initiates Ferroptosis in Cancer Cells. , 2016, ACS chemical biology.

[243]  B. Stockwell,et al.  Ferroptosis: Death by Lipid Peroxidation. , 2016, Trends in cell biology.

[244]  Ashley I Bush,et al.  Iron neurochemistry in Alzheimer's disease and Parkinson's disease: targets for therapeutics , 2016, Journal of neurochemistry.

[245]  B. Rutt,et al.  Activated iron-containing microglia in the human hippocampus identified by magnetic resonance imaging in Alzheimer disease , 2015, Neurobiology of Aging.

[246]  María Rodríguez Martínez,et al.  Elucidating Compound Mechanism of Action by Network Perturbation Analysis Graphical , 2015 .

[247]  D. Dexter,et al.  Neurodegenerative diseases and therapeutic strategies using iron chelators. , 2015, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.

[248]  Rui Chai,et al.  Intranasal deferoxamine attenuates synapse loss via up-regulating the P38/HIF-1α pathway on the brain of APP/PS1 transgenic mice , 2015, Front. Aging Neurosci..

[249]  Burkhard Becher,et al.  Immune attack: the role of inflammation in Alzheimer disease , 2015, Nature Reviews Neuroscience.

[250]  Keith A. Johnson,et al.  Ferritin levels in the cerebrospinal fluid predict Alzheimer’s disease outcomes and are regulated by APOE , 2015, Nature Communications.

[251]  W. Gu,et al.  Ferroptosis as a p53-mediated activity during tumour suppression , 2015, Nature.

[252]  E. Tolosano,et al.  Heme and erythropoieis: more than a structural role , 2014, Haematologica.

[253]  R. Maccioni,et al.  Neuroinflammation in the pathogenesis of Alzheimer’s disease. A rational framework for the search of novel therapeutic approaches , 2014, Front. Cell. Neurosci..

[254]  Matthew E. Welsch,et al.  Regulation of Ferroptotic Cancer Cell Death by GPX4 , 2014, Cell.

[255]  F. Atyabi,et al.  Enhanced brain delivery of deferasirox-lactoferrin conjugates for iron chelation therapy in neurodegenerative disorders: in vitro and in vivo studies. , 2013, Molecular pharmaceutics.

[256]  A. Ehrmann,et al.  BAY 87-2243, a highly potent and selective inhibitor of hypoxia-induced gene activation has antitumor activities by inhibition of mitochondrial complex I , 2013, Cancer medicine.

[257]  D. Praticò,et al.  Zileuton Improves Memory Deficits, Amyloid and Tau Pathology in a Mouse Model of Alzheimer’s Disease with Plaques and Tangles , 2013, PloS one.

[258]  Victoria Tapia,et al.  Inflammation alters the expression of DMT1, FPN1 and hepcidin, and it causes iron accumulation in central nervous system cells , 2013, Journal of neurochemistry.

[259]  Jun Wang,et al.  Pro-inflammatory cytokines modulate iron regulatory protein 1 expression and iron transportation through reactive oxygen/nitrogen species production in ventral mesencephalic neurons. , 2013, Biochimica et biophysica acta.

[260]  Tao Wang,et al.  Intranasal deferoxamine reverses iron-induced memory deficits and inhibits amyloidogenic APP processing in a transgenic mouse model of Alzheimer's disease , 2013, Neurobiology of Aging.

[261]  Pu Wang,et al.  Deferoxamine inhibits iron induced hippocampal tau phosphorylation in the Alzheimer transgenic mouse brain , 2013, Neurochemistry International.

[262]  D. Petering,et al.  Glutathione-mediated neuroprotection against methylmercury neurotoxicity in cortical culture is dependent on MRP1. , 2012, Neurotoxicology.

[263]  M. R. Lamprecht,et al.  Ferroptosis: An Iron-Dependent Form of Nonapoptotic Cell Death , 2012, Cell.

[264]  Blaine R. Roberts,et al.  Tau deficiency induces parkinsonism with dementia by impairing APP-mediated iron export , 2012, Nature Medicine.

[265]  M. Lovell,et al.  Oxidatively modified nucleic acids in preclinical Alzheimer's disease (PCAD) brain , 2011, Mechanisms of Ageing and Development.

[266]  T. Toki,et al.  Nrf2 regulates ferroportin 1-mediated iron efflux and counteracts lipopolysaccharide-induced ferroportin 1 mRNA suppression in macrophages. , 2011, Archives of biochemistry and biophysics.

[267]  S. Robinson,et al.  Accumulation of Non-Transferrin-Bound Iron by Neurons, Astrocytes, and Microglia , 2011, Neurotoxicity Research.

[268]  C. Masters,et al.  Iron-Export Ferroxidase Activity of β-Amyloid Precursor Protein Is Inhibited by Zinc in Alzheimer's Disease , 2010, Cell.

[269]  J. Eaton,et al.  Mitochondrial dysfunction may explain the cardiomyopathy of chronic iron overload. , 2010, Free radical biology & medicine.

[270]  R. Hamilton,et al.  Mitochondrial bioenergetic deficit precedes Alzheimer's pathology in female mouse model of Alzheimer's disease , 2009, Proceedings of the National Academy of Sciences.

[271]  F. Müller-Spahn,et al.  Amyloid-beta Leads to Impaired Cellular Respiration, Energy Production and Mitochondrial Electron Chain Complex Activities in Human Neuroblastoma Cells , 2009, Cellular and Molecular Neurobiology.

[272]  Hua-wei Ling,et al.  Correlation of iron in the hippocampus with MMSE in patients with Alzheimer's disease , 2009, Journal of magnetic resonance imaging : JMRI.

[273]  P. Francis,et al.  Neuroprotective actions of deferiprone in cultured cortical neurones and SHSY‐5Y cells , 2008, Journal of neurochemistry.

[274]  Winnie S. Liang,et al.  Alzheimer's disease is associated with reduced expression of energy metabolism genes in posterior cingulate neurons , 2008, Proceedings of the National Academy of Sciences.

[275]  Chan Beum Park,et al.  Metal ions differentially influence the aggregation and deposition of Alzheimer's beta-amyloid on a solid template. , 2007, Biochemistry.

[276]  J. Quinn,et al.  Mitochondria are a direct site of A beta accumulation in Alzheimer's disease neurons: implications for free radical generation and oxidative damage in disease progression. , 2006, Human molecular genetics.

[277]  N. Bruchovsky,et al.  Sulfasalazine, a potent suppressor of lymphoma growth by inhibition of the xc− cystine transporter: a new action for an old drug , 2001, Leukemia.

[278]  Mark A. Smith,et al.  In Situ Oxidative Catalysis by Neurofibrillary Tangles and Senile Plaques in Alzheimer’s Disease , 2000, Journal of neurochemistry.

[279]  G. Perry,et al.  Iron accumulation in Alzheimer disease is a source of redox-generated free radicals. , 1997, Proceedings of the National Academy of Sciences of the United States of America.