Opposing Effects of ApoE2 and ApoE4 on Glycolytic Metabolism in Neuronal Aging Supports a Warburg Neuroprotective Cascade against Alzheimer’s Disease
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[1] J. Diehl-Schmid,et al. Cerebrospinal fluid lactate levels along the Alzheimer’s disease continuum and associations with blood-brain barrier integrity, age, cognition, and biomarkers , 2022, Alzheimer's research & therapy.
[2] V. Haroutunian,et al. Human apolipoprotein E isoforms are differentially sialylated and the sialic acid moiety in ApoE2 attenuates ApoE2-Aβ interaction and Aβ fibrillation , 2022, Neurobiology of Disease.
[3] Xiaochun Chen,et al. APOE4 genotype exacerbates the depression-like behavior of mice during aging through ATP decline , 2021, Translational Psychiatry.
[4] Matthew S. Gentry,et al. APOΕ4 lowers energy expenditure in females and impairs glucose oxidation by increasing flux through aerobic glycolysis , 2021, Molecular neurodegeneration.
[5] Liqin Zhao,et al. Glycolytic Metabolism, Brain Resilience, and Alzheimer’s Disease , 2021, Frontiers in Neuroscience.
[6] Liqin Zhao,et al. Sialometabolism in Brain Health and Alzheimer’s Disease , 2021, Frontiers in Neuroscience.
[7] Xiaojian Shi,et al. APOE4 impairs neuron‐astrocyte coupling of fatty acid metabolism , 2020 .
[8] G. Bu,et al. APOE2: protective mechanism and therapeutic implications for Alzheimer’s disease , 2020, Molecular Neurodegeneration.
[9] M. Walkinshaw,et al. Biochemical and transcript level differences between the three human phosphofructokinases show optimisation of each isoform for specific metabolic niches , 2020, The Biochemical journal.
[10] C. Lanni,et al. Cancer and Alzheimer’s disease inverse relationship: an age-associated diverging derailment of shared pathways , 2020, Molecular Psychiatry.
[11] Ping Li,et al. Altered Energy Metabolism During Early Optic Nerve Crush Injury: Implications of Warburg-Like Aerobic Glycolysis in Facilitating Retinal Ganglion Cell Survival , 2020, Neuroscience Bulletin.
[12] C. Chung,et al. Role of apolipoprotein E in electronegative low-density lipoprotein-induced mitochondrial dysfunction in cardiomyocytes. , 2020, Metabolism: clinical and experimental.
[13] 2020 Alzheimer's disease facts and figures , 2020, Alzheimer's & dementia : the journal of the Alzheimer's Association.
[14] Matthew S. Gentry,et al. APOE alters glucose flux through central carbon pathways in astrocytes , 2020, Neurobiology of Disease.
[15] Nicholas E. Propson,et al. PSEN1ΔE9, APPswe, and APOE4 Confer Disparate Phenotypes in Human iPSC-Derived Microglia , 2019, Stem cell reports.
[16] N. Krogan,et al. Neuronal Apolipoprotein E4 Expression Results in Proteome-Wide Alterations and Compromises Bioenergetic Capacity by Disrupting Mitochondrial Function , 2019, Journal of Alzheimer's disease : JAD.
[17] J. Power,et al. Alzheimer’s Disease and Cancer: When Two Monsters Cannot Be Together , 2019, Front. Neurosci..
[18] David S. Park,et al. Systems biology identifies preserved integrity but impaired metabolism of mitochondria due to a glycolytic defect in Alzheimer's disease neurons , 2019, Aging cell.
[19] Ariel K. Frame,et al. Aerobic Glycolysis Is Required for Spatial Memory Acquisition But Not Memory Retrieval in Mice , 2019, eNeuro.
[20] T. Südhof,et al. Differential Signaling Mediated by ApoE2, ApoE3, and ApoE4 in Human Neurons Parallels Alzheimer’s Disease Risk , 2018, bioRxiv.
[21] Liqin Zhao,et al. Human ApoE Isoforms Differentially Modulate Brain Glucose and Ketone Body Metabolism: Implications for Alzheimer's Disease Risk Reduction and Early Intervention , 2018, The Journal of Neuroscience.
[22] Yi Su,et al. Aerobic glycolysis and tau deposition in preclinical Alzheimer's disease , 2018, Neurobiology of Aging.
[23] Lanfang Li,et al. Involvement of the Warburg effect in non‐tumor diseases processes , 2018, Journal of cellular physiology.
[24] L. Ferrucci,et al. Evidence for brain glucose dysregulation in Alzheimer's disease , 2018, Alzheimer's & Dementia.
[25] S. Barger,et al. Apolipoprotein E4 inhibits autophagy gene products through direct, specific binding to CLEAR motifs , 2017, Alzheimer's & Dementia.
[26] D. Bredesen,et al. Transcriptional Effects of ApoE4: Relevance to Alzheimer’s Disease , 2017, Molecular Neurobiology.
[27] Hui Zheng,et al. Practical considerations for choosing a mouse model of Alzheimer’s disease , 2017, Molecular Neurodegeneration.
[28] G. Bu,et al. Apolipoprotein E4 Impairs Neuronal Insulin Signaling by Trapping Insulin Receptor in the Endosomes , 2017, Neuron.
[29] Long Wu. Perturbed Brain Energy Metabolism in Alzheimer’s Disease and Diabetes , 2017 .
[30] L. de Bari,et al. A disease with a sweet tooth: exploring the Warburg effect in Alzheimer’s disease , 2017, Biogerontology.
[31] L. Szablewski. Glucose Transporters in Brain: In Health and in Alzheimer's Disease. , 2016, Journal of Alzheimer's disease : JAD.
[32] D. Holtzman,et al. Intracerebral adeno-associated virus gene delivery of apolipoprotein E2 markedly reduces brain amyloid pathology in Alzheimer's disease mouse models , 2016, Neurobiology of Aging.
[33] S. Inoue,et al. Metabolic reprogramming during neuronal differentiation , 2016, Cell Death and Differentiation.
[34] Yafeng Dong,et al. Human ApoE ɛ2 Promotes Regulatory Mechanisms of Bioenergetic and Synaptic Function in Female Brain: A Focus on V-type H+-ATPase. , 2016, Journal of Alzheimer's disease : JAD.
[35] Neuroscience: Alzheimer's role of breast-cancer gene , 2015, Nature.
[36] Pierre J. Magistretti,et al. A Cellular Perspective on Brain Energy Metabolism and Functional Imaging , 2015, Neuron.
[37] P. Sachdev,et al. Upregulation of Glycolytic Enzymes, Mitochondrial Dysfunction and Increased Cytotoxicity in Glial Cells Treated with Alzheimer’s Disease Plasma , 2015, PloS one.
[38] S. Miyamoto,et al. Hexokinase II integrates energy metabolism and cellular protection: Akting on mitochondria and TORCing to autophagy , 2015, Cell Death and Differentiation.
[39] Pierre J. Magistretti,et al. Alzheimer's disease: the amyloid hypothesis and the Inverse Warburg effect , 2014, Front. Physiol..
[40] Chao Ma,et al. Inverse correlation between Alzheimer’s disease and cancer: implication for a strong impact of regenerative propensity on neurodegeneration? , 2014, BMC Neurology.
[41] R. Swerdlow,et al. The Alzheimer's disease mitochondrial cascade hypothesis: progress and perspectives. , 2014, Biochimica et biophysica acta.
[42] M. Zilberter,et al. Glycolysis and Oxidative Phosphorylation in Neurons and Astrocytes during Network Activity in Hippocampal Slices , 2014, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[43] Michael Hawrylycz,et al. Aerobic glycolysis in the human brain is associated with development and neotenous gene expression. , 2014, Cell metabolism.
[44] B. Hyman,et al. Gene Transfer of Human Apoe Isoforms Results in Differential Modulation of Amyloid Deposition and Neurotoxicity in Mouse Brain , 2013, Science Translational Medicine.
[45] R. Brinton,et al. Early Decline in Glucose Transport and Metabolism Precedes Shift to Ketogenic System in Female Aging and Alzheimer's Mouse Brain: Implication for Bioenergetic Intervention , 2013, PloS one.
[46] A. Adamson,et al. Glycolytic control of vacuolar-type ATPase activity: a mechanism to regulate influenza viral infection. , 2013, Virology.
[47] Huaxi Xu,et al. Apolipoprotein E and Alzheimer disease: risk, mechanisms and therapy , 2013, Nature Reviews Neurology.
[48] Alzheimer disease: Skin cancer—protective effect against Alzheimer disease? , 2013, Nature Reviews Neurology.
[49] R. Mahley,et al. Apolipoprotein E Sets the Stage: Response to Injury Triggers Neuropathology , 2012, Neuron.
[50] L. Demetrius,et al. An inverse-Warburg effect and the origin of Alzheimer’s disease , 2012, Biogerontology.
[51] T. Miura,et al. The mPTP and its regulatory proteins: final common targets of signalling pathways for protection against necrosis. , 2012, Cardiovascular research.
[52] C. Dang,et al. Otto Warburg's contributions to current concepts of cancer metabolism , 2011, Nature Reviews Cancer.
[53] Chi V. Dang,et al. Otto Warburg's contributions to current concepts of cancer metabolism , 2011, Nature Reviews Cancer.
[54] R. Cumming,et al. Amyloid Beta Resistance in Nerve Cell Lines Is Mediated by the Warburg Effect , 2011, PloS one.
[55] W. Klein,et al. Amyloid-β Triggers the Release of Neuronal Hexokinase 1 from Mitochondria , 2010, PloS one.
[56] M. Sikorska,et al. Differentiation of mouse Neuro 2A cells into dopamine neurons , 2010, Journal of Neuroscience Methods.
[57] W. Burke. Cancer linked to Alzheimer disease but not vascular dementia. , 2010, Neurology.
[58] D. Butterfield,et al. Protein carbonylation. , 2010, Antioxidants & redox signaling.
[59] Jianhua Shi,et al. Reduced O-GlcNAcylation links lower brain glucose metabolism and tau pathology in Alzheimer's disease. , 2009, Brain : a journal of neurology.
[60] Dinh-Toi Chu,et al. Functional decreases in P2X7 receptors are associated with retinoic acid-induced neuronal differentiation of Neuro-2a neuroblastoma cells. , 2009, Cellular signalling.
[61] M. Pangalos,et al. Impact of Apolipoprotein E (ApoE) Polymorphism on Brain ApoE Levels , 2008, The Journal of Neuroscience.
[62] V. Shoshan-Barmatz,et al. Hexokinase-I Protection against Apoptotic Cell Death Is Mediated via Interaction with the Voltage-dependent Anion Channel-1 , 2008, Journal of Biological Chemistry.
[63] S. Santi,et al. Hippocampal hypometabolism predicts cognitive decline from normal aging , 2008, Neurobiology of Aging.
[64] S. Sollott,et al. Hexokinase II Detachment from Mitochondria Triggers Apoptosis through the Permeability Transition Pore Independent of Voltage-Dependent Anion Channels , 2008, PloS one.
[65] Mony J. de Leon,et al. Hypometabolism and Altered Cerebrospinal Fluid Markers in Normal Apolipoprotein E E4 Carriers with Subjective Memory Complaints , 2008, Biological Psychiatry.
[66] P. Gil,et al. Peripheral levels of glutathione and protein oxidation as markers in the development of Alzheimer's disease from Mild Cognitive Impairment , 2008, Free radical research.
[67] N. Hay,et al. Mitochondrial hexokinases, novel mediators of the antiapoptotic effects of growth factors and Akt , 2006, Oncogene.
[68] L. Mosconi,et al. Brain glucose metabolism in the early and specific diagnosis of Alzheimer’s disease , 2005, European Journal of Nuclear Medicine and Molecular Imaging.
[69] S Minoshima,et al. Cerebral glucose metabolism in patients with AD and different APOE genotypes , 2005, Neurology.
[70] D. Schmechel,et al. Marked regional differences of brain human apolipoprotein e expression in targeted replacement mice , 2004, Neuroscience.
[71] R. Moreno-Sánchez,et al. Mitochondrial Bound Hexokinase Activity as a Preventive Antioxidant Defense , 2004, Journal of Biological Chemistry.
[72] Suguru Nakamura. Glucose activates H(+)-ATPase in kidney epithelial cells. , 2004, American journal of physiology. Cell physiology.
[73] G. Siest,et al. Apolipoprotein E activates Akt pathway in neuro-2a in an isoform-specific manner. , 2002, Biochemical and biophysical research communications.
[74] J. Hoek,et al. Mitochondrial Binding of Hexokinase II Inhibits Bax-induced Cytochrome c Release and Apoptosis* , 2002, The Journal of Biological Chemistry.
[75] D A Bennett,et al. The apolipoprotein E epsilon 2 allele and decline in episodic memory. , 2002, Journal of neurology, neurosurgery, and psychiatry.
[76] R. Mahley,et al. Apolipoprotein E: far more than a lipid transport protein. , 2000, Annual review of genomics and human genetics.
[77] T. Arendt,et al. Activities of key glycolytic enzymes in the brains of patients with Alzheimer's disease , 1999, Journal of Neural Transmission.
[78] A. M. Palmer,et al. The activity of the pentose phosphate pathway is increased in response to oxidative stress in Alzheimer's disease , 1999, Journal of Neural Transmission.
[79] T. Arendt,et al. Changes of Activity and Isozyme Pattern of Phosphofructokinase in the Brains of Patients with Alzheimer's Disease , 1996, Journal of neurochemistry.
[80] S. Thibodeau,et al. Preclinical evidence of Alzheimer's disease in persons homozygous for the epsilon 4 allele for apolipoprotein E. , 1996, The New England journal of medicine.
[81] A. Smith,et al. Influence of the apolipoprotein E genotype on amyloid deposition and neurofibrillary tangle formation in Alzheimer's disease , 1995, Neuroscience.
[82] C. Morris,et al. Effect of apolipoprotein E genotype on Alzheimer's disease neuropathology in a cohort of elderly Norwegians , 1995, Neuroscience Letters.
[83] P. Magistretti,et al. Glutamate uptake into astrocytes stimulates aerobic glycolysis: a mechanism coupling neuronal activity to glucose utilization. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[84] M. Freedman,et al. Brain Glucose Metabolism in Alzheimer's Disease , 1994, The American journal of the medical sciences.
[85] Y. Moriyama,et al. The role of V-ATPase in neuronal and endocrine systems. , 1992, The Journal of experimental biology.
[86] S. Sorbi,et al. Altered hexokinase activity in skin cultured fibroblasts and leukocytes from Alzheimer's disease patients , 1990, Neuroscience Letters.
[87] J. Jedrzejak. [Pyruvate kinase]. , 2020, Postepy higieny i medycyny doswiadczalnej.
[88] R. Heinrikson,et al. Evolution of phosphofructokinase—gene duplication and creation of new effector sites , 1984, Nature.
[89] O. Warburg. [Origin of cancer cells]. , 1956, Oncologia.