Late-onset Alzheimer's disease, heating up and foxed by several proteins: pathomolecular effects of the aging process.
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K. Nho | K. Shah | Bryan Maloney | D. Lahiri | David Bose | Felipe P. Perez
[1] F. Polleux,et al. The CAMKK2-AMPK Kinase Pathway Mediates the Synaptotoxic Effects of Aβ Oligomers through Tau Phosphorylation , 2013, Neuron.
[2] E. Eckman,et al. Endothelin-converting Enzymes Degrade Intracellular β-Amyloid Produced within the Endosomal/Lysosomal Pathway and Autophagosomes* , 2013, The Journal of Biological Chemistry.
[3] F. Khodagholi,et al. Molecular mechanism aspect of ER stress in Alzheimer's disease: current approaches and future strategies. , 2012, Current drug targets.
[4] K. Shah,et al. Deregulated Cdk5 triggers aberrant activation of cell cycle kinases and phosphatases inducing neuronal death , 2012, Journal of Cell Science.
[5] D. Selkoe,et al. Preventing Alzheimer’s Disease , 2012, Science.
[6] P. Filipcik,et al. First transgenic rat model developing progressive cortical neurofibrillary tangles , 2012, Neurobiology of Aging.
[7] Ximing Zhou,et al. Longevity pathways: HSF1 and FoxO pathways, a new therapeutic target to prevent age-related diseases. , 2012, Current aging science.
[8] B. Ray,et al. MicroRNA-153 Physiologically Inhibits Expression of Amyloid-β Precursor Protein in Cultured Human Fetal Brain Cells and Is Dysregulated in a Subset of Alzheimer Disease Patients* , 2012, The Journal of Biological Chemistry.
[9] Bryan Maloney,et al. Structural and functional characterization of H2 haplotype MAPT promoter: unique neurospecific domains and a hypoxia-inducible element would enhance rationally targeted tauopathy research for Alzheimer's disease. , 2012, Gene.
[10] E. Cohen,et al. Temporal requirements of heat shock factor‐1 for longevity assurance , 2012, Aging cell.
[11] N. Zawia,et al. Applying epigenetics to Alzheimer's disease via the latent early-life associated regulation (LEARn) model. , 2012, Current Alzheimer research.
[12] A. di Pardo,et al. β-Amyloid Inhibits Protein Prenylation and Induces Cholesterol Sequestration by Impairing SREBP-2 Cleavage , 2012, The Journal of Neuroscience.
[13] Nathan T. Ross,et al. A multimodal RAGE-specific inhibitor reduces amyloid β-mediated brain disorder in a mouse model of Alzheimer disease. , 2012, The Journal of clinical investigation.
[14] Ruth Nussinov,et al. Cross-seeding and Conformational Selection between Three- and Four-repeat Human Tau Proteins , 2012, The Journal of Biological Chemistry.
[15] Weihong Song,et al. Control of BACE1 degradation and APP processing by ubiquitin carboxyl‐terminal hydrolase L1 , 2012, Journal of neurochemistry.
[16] G. Logroscino,et al. Immunotherapy for Alzheimer's disease: from anti-β-amyloid to tau-based immunization strategies. , 2012, Immunotherapy.
[17] N. Kato,et al. Intraneuronally injected amyloid β inhibits long-term potentiation in rat hippocampal slices. , 2012, Journal of neurophysiology.
[18] T. Yamashima. Hsp70.1 and related lysosomal factors for necrotic neuronal death , 2012, Journal of neurochemistry.
[19] Bryan Maloney,et al. The Alzheimer's amyloid β-peptide (Aβ) binds a specific DNA Aβ-interacting domain (AβID) in the APP, BACE1, and APOE promoters in a sequence-specific manner: characterizing a new regulatory motif. , 2011, Gene.
[20] Bryan Maloney,et al. Functional activity of the novel Alzheimer's amyloid β-peptide interacting domain (AβID) in the APP and BACE1 promoter sequences and implications in activating apoptotic genes and in amyloidogenesis. , 2011, Gene.
[21] M. Monsalve,et al. The complex biology of FOXO. , 2011, Current drug targets.
[22] N. Greig,et al. Rivastigmine Lowers Aβ and Increases sAPPα Levels, Which Parallel Elevated Synaptic Markers and Metabolic Activity in Degenerating Primary Rat Neurons , 2011, PloS one.
[23] Pico Caroni,et al. Selective Neuronal Vulnerability in Neurodegenerative Diseases: from Stressor Thresholds to Degeneration , 2011, Neuron.
[24] L. Sistonen,et al. Regulation of HSF1 function in the heat stress response: implications in aging and disease. , 2011, Annual review of biochemistry.
[25] B. Ray,et al. Oxidative insults to neurons and synapse are prevented by aged garlic extract and S‐allyl‐l‐cysteine treatment in the neuronal culture and APP‐Tg mouse model , 2011, Journal of neurochemistry.
[26] M. Albert,et al. Introduction to the recommendations from the National Institute on Aging-Alzheimer's Association workgroups on diagnostic guidelines for Alzheimer's disease , 2011, Alzheimer's & Dementia.
[27] Denise C. Park,et al. Toward defining the preclinical stages of Alzheimer’s disease: Recommendations from the National Institute on Aging-Alzheimer's Association workgroups on diagnostic guidelines for Alzheimer's disease , 2011, Alzheimer's & Dementia.
[28] O. Forlenza,et al. Inhibition of phospholipase A2 in rat brain decreases the levels of total Tau protein , 2011, Journal of Neural Transmission.
[29] Wenming Li,et al. Chaperone-mediated autophagy: machinery, regulation and biological consequences , 2011, Cellular and Molecular Life Sciences.
[30] F. LaFerla,et al. Presenilin Is Necessary for Efficient Proteolysis through the Autophagy–Lysosome System in a γ-Secretase-Independent Manner , 2011, The Journal of Neuroscience.
[31] R. Bateman,et al. Decreased Clearance of CNS β-Amyloid in Alzheimer’s Disease , 2010, Science.
[32] B. Zlokovic,et al. Neurodegeneration and the neurovascular unit , 2010, Nature Medicine.
[33] A. Cuervo,et al. Integration of clearance mechanisms: the proteasome and autophagy. , 2010, Cold Spring Harbor perspectives in biology.
[34] N. Perrimon,et al. FOXO/4E-BP Signaling in Drosophila Muscles Regulates Organism-wide Proteostasis during Aging , 2010, Cell.
[35] M. Strong,et al. Quantitative phosphoproteomic analysis of neuronal intermediate filament proteins (NF‐M/H) in Alzheimer's disease by iTRAQ , 2010, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[36] R. D'Hooge,et al. From tau phosphorylation to tau aggregation: what about neuronal death? , 2010, Biochemical Society transactions.
[37] B. Winblad,et al. Alzheimer's disease: clinical trials and drug development , 2010, The Lancet Neurology.
[38] M. Jäättelä,et al. Connecting Hsp70, sphingolipid metabolism and lysosomal stability , 2010, Cell cycle.
[39] W. Klein,et al. Heat shock treatment reduces beta amyloid toxicity in vivo by diminishing oligomers , 2010, Neurobiology of Aging.
[40] O. Rosso,et al. Uncovering Molecular Biomarkers That Correlate Cognitive Decline with the Changes of Hippocampus' Gene Expression Profiles in Alzheimer's Disease , 2010, PloS one.
[41] E. Capetillo-Zarate,et al. Intraneuronal β-amyloid accumulation and synapse pathology in Alzheimer’s disease , 2010, Acta Neuropathologica.
[42] K. Jellinger,et al. Prevalence of dementia disorders in the oldest-old: an autopsy study , 2010, Acta Neuropathologica.
[43] D. Lahiri,et al. A novel effect of rivastigmine on pre‐synaptic proteins and neuronal viability in a neurodegeneration model of fetal rat primary cortical cultures and its implication in Alzheimer’s disease , 2010, Journal of neurochemistry.
[44] H. Tanila,et al. Memantine lowers amyloid‐β peptide levels in neuronal cultures and in APP/PS1 transgenic mice , 2010, Journal of neuroscience research.
[45] A. Zylicz,et al. Hsp70 stabilizes lysosomes and reverts Niemann–Pick disease-associated lysosomal pathology , 2010, Nature.
[46] N. Zawia,et al. The LEARn model: an epigenetic explanation for idiopathic neurobiological diseases , 2009, Molecular Psychiatry.
[47] Elizabeth A Miller,et al. Collapse of proteostasis represents an early molecular event in Caenorhabditis elegans aging , 2009, Proceedings of the National Academy of Sciences.
[48] John Hardy,et al. The amyloid hypothesis for Alzheimer’s disease: a critical reappraisal , 2009, Journal of neurochemistry.
[49] L. Lue,et al. ABCG2 Is Upregulated in Alzheimer's Brain with Cerebral Amyloid Angiopathy and May Act as a Gatekeeper at the Blood–Brain Barrier for Aβ1–40 Peptides , 2009, The Journal of Neuroscience.
[50] R. Deane,et al. Clearance of amyloid-β peptide across the blood-brain barrier: Implication for therapies in Alzheimer’s disease , 2009 .
[51] Marc Tessier-Lavigne,et al. APP binds DR6 to trigger axon pruning and neuron death via distinct caspases , 2009, Nature.
[52] L. Schneider,et al. The perils of Alzheimer's drug development. , 2009, Current Alzheimer research.
[53] D. Bennett,et al. Sirtuin 1 Reduction Parallels the Accumulation of Tau in Alzheimer Disease , 2009, Journal of neuropathology and experimental neurology.
[54] A. Palmeri,et al. Picomolar Amyloid-β Positively Modulates Synaptic Plasticity and Memory in Hippocampus , 2008, The Journal of Neuroscience.
[55] S. Gandy,et al. Regulation of Forkhead Transcription Factor FoxO3a Contributes to Calorie Restriction‐induced Prevention of Alzheimer's Disease‐type Amyloid Neuropathology and Spatial Memory Deterioration , 2008, Annals of the New York Academy of Sciences.
[56] R Brookmeyer,et al. Prevalence of dementia after age 90 , 2008, Neurology.
[57] D. Holtzman,et al. ApoE Promotes the Proteolytic Degradation of Aβ , 2008, Neuron.
[58] E. Masliah,et al. The autophagy-related protein beclin 1 shows reduced expression in early Alzheimer disease and regulates amyloid beta accumulation in mice. , 2008, The Journal of clinical investigation.
[59] R. Morimoto,et al. Proteotoxic stress and inducible chaperone networks in neurodegenerative disease and aging. , 2008, Genes & development.
[60] Daniel J. Klionsky,et al. Autophagy fights disease through cellular self-digestion , 2008, Nature.
[61] A. Brech,et al. Promoting basal levels of autophagy in the nervous system enhances longevity and oxidant resistance in adult Drosophila , 2008, Autophagy.
[62] C. Link,et al. Suppression of in Vivo β-Amyloid Peptide Toxicity by Overexpression of the HSP-16.2 Small Chaperone Protein* , 2008, Journal of Biological Chemistry.
[63] C. Cotman,et al. Inflammatory changes parallel the early stages of Alzheimer disease , 2007, Neurobiology of Aging.
[64] C. Kawas,et al. Alpha- and beta-secretase activity as a function of age and beta-amyloid in Down syndrome and normal brain , 2007, Neurobiology of Aging.
[65] Long-chuan Yu,et al. The role of intracellular amyloid β in Alzheimer's disease , 2007, Progress in Neurobiology.
[66] C. Link,et al. Decreased Insulin-Receptor Signaling Promotes the Autophagic Degradation of β-Amyloid Peptide in C. elegans , 2007, Autophagy.
[67] P. Walter,et al. Signal integration in the endoplasmic reticulum unfolded protein response , 2007, Nature Reviews Molecular Cell Biology.
[68] F. Schmitt,et al. Synaptic alterations in CA1 in mild Alzheimer disease and mild cognitive impairment , 2007, Neurology.
[69] K. Kosik,et al. CHIP and HSPs interact with β-APP in a proteasome-dependent manner and influence Aβ metabolism , 2007 .
[70] U. Brunk,et al. Autophagy, organelles and ageing , 2007, The Journal of pathology.
[71] S. Heinemann,et al. Deficits in Synaptic Transmission and Learning in Amyloid Precursor Protein (APP) Transgenic Mice Require C-Terminal Cleavage of APP , 2006, The Journal of Neuroscience.
[72] J. Shine,et al. Acceleration of Amyloid β-Peptide Aggregation by Physiological Concentrations of Calcium* , 2006, Journal of Biological Chemistry.
[73] Ehud Cohen,et al. Opposing Activities Protect Against Age-Onset Proteotoxicity , 2006, Science.
[74] A. Saykin,et al. Older adults with cognitive complaints show brain atrophy similar to that of amnestic MCI , 2006, Neurology.
[75] Gina N. LaRossa,et al. [11C]PIB in a nondemented population , 2006, Neurology.
[76] D. Arnold,et al. Neurodegeneration and neuroprotection in multiple sclerosis and other neurodegenerative diseases , 2006, Journal of Neuroimmunology.
[77] I. Mook‐Jung,et al. Cytosolic amyloid-β peptide 42 escaping from degradation induces cell death , 2006 .
[78] D. Bredesen,et al. Correction for Galvan et al., Reversal of Alzheimer's-like pathology and behavior in human APP transgenic mice by mutation of Asp664 , 2006, Proceedings of the National Academy of Sciences.
[79] A. Cuervo,et al. Consequences of the selective blockage of chaperone-mediated autophagy. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[80] E. Mandelkow,et al. Inducible Expression of Tau Repeat Domain in Cell Models of Tauopathy , 2006, Journal of Biological Chemistry.
[81] L. Tjernberg,et al. Macroautophagy—a novel β-amyloid peptide-generating pathway activated in Alzheimer's disease , 2005, The Journal of cell biology.
[82] Ana Maria Cuervo,et al. Protein degradation and aging , 2005, Experimental Gerontology.
[83] B. Hyman,et al. Tau Suppression in a Neurodegenerative Mouse Model Improves Memory Function , 2005, Science.
[84] R. Tanzi,et al. Twenty Years of the Alzheimer’s Disease Amyloid Hypothesis: A Genetic Perspective , 2005, Cell.
[85] Ralph A. Nixon,et al. Extensive Involvement of Autophagy in Alzheimer Disease: An Immuno-Electron Microscopy Study , 2005, Journal of neuropathology and experimental neurology.
[86] D. Klionsky. The molecular machinery of autophagy: unanswered questions , 2005, Journal of Cell Science.
[87] Ana Maria Cuervo,et al. Pathophysiology of chaperone-mediated autophagy. , 2004, The international journal of biochemistry & cell biology.
[88] Christopher A Ross,et al. The ubiquitin-proteasome pathway in Parkinson's disease and other neurodegenerative diseases. , 2004, Trends in cell biology.
[89] D. Westaway,et al. Interactions between beta-amyloid and central cholinergic neurons: implications for Alzheimer's disease. , 2004, Journal of psychiatry & neuroscience : JPN.
[90] B. Reisberg,et al. MRI and CSF studies in the early diagnosis of Alzheimer's disease , 2004, Journal of internal medicine.
[91] R. Petersen. Mild cognitive impairment as a diagnostic entity , 2004, Journal of internal medicine.
[92] Junmin Peng,et al. Proteomic Characterization of Postmortem Amyloid Plaques Isolated by Laser Capture Microdissection*[boxs] , 2004, Journal of Biological Chemistry.
[93] Peter J. Lenting,et al. LRP/Amyloid β-Peptide Interaction Mediates Differential Brain Efflux of Aβ Isoforms , 2004, Neuron.
[94] Ana Maria Cuervo,et al. Autophagy: Many paths to the same end , 2004, Molecular and Cellular Biochemistry.
[95] V. Iyer,et al. Genome-Wide Analysis of the Biology of Stress Responses through Heat Shock Transcription Factor , 2004, Molecular and Cellular Biology.
[96] Daniel J Klionsky,et al. Development by self-digestion: molecular mechanisms and biological functions of autophagy. , 2004, Developmental cell.
[97] Steven P. Gygi,et al. Stress-Dependent Regulation of FOXO Transcription Factors by the SIRT1 Deacetylase , 2004, Science.
[98] B. Clark,et al. Mild heat stress stimulates 20S proteasome and its 11S activator in human fibroblasts undergoing aging in vitro , 2004, Cell stress & chaperones.
[99] Delin Chen,et al. Mammalian SIRT1 Represses Forkhead Transcription Factors , 2004, Cell.
[100] K. Walsh,et al. Heat Shock Protein 70 Participates in the Neuroprotective Response to Intracellularly Expressed β-Amyloid in Neurons , 2004, The Journal of Neuroscience.
[101] L. Petrucelli,et al. Mechanism of neurodegenerative disease: role of the ubiquitin proteasome system , 2004, Annals of medicine.
[102] R. Morimoto,et al. Regulation of longevity in Caenorhabditis elegans by heat shock factor and molecular chaperones. , 2003, Molecular biology of the cell.
[103] Aaron Ciechanover,et al. The Ubiquitin Proteasome System in Neurodegenerative Diseases Sometimes the Chicken, Sometimes the Egg , 2003, Neuron.
[104] S. Schmidt,et al. Rab5-stimulated Up-regulation of the Endocytic Pathway Increases Intracellular β-Cleaved Amyloid Precursor Protein Carboxyl-terminal Fragment Levels and Aβ Production* , 2003, Journal of Biological Chemistry.
[105] W. Markesbery,et al. Head Circumference, Education and Risk of Dementia: Findings from the Nun Study , 2003, Journal of clinical and experimental neuropsychology.
[106] Vidya N. Nukala,et al. Characterization of chronic low‐level proteasome inhibition on neural homeostasis , 2003, Journal of neurochemistry.
[107] Steven J. M. Jones,et al. A SAGE Approach to Discovery of Genes Involved in Autophagic Cell Death , 2003, Current Biology.
[108] L. Schneider,et al. A critical analysis of new molecular targets and strategies for drug developments in Alzheimer's disease. , 2003, Current drug targets.
[109] F. LaFerla. Calcium dyshomeostasis and intracellular signalling in alzheimer's disease , 2002, Nature Reviews Neuroscience.
[110] D. Selkoe. Alzheimer's Disease Is a Synaptic Failure , 2002, Science.
[111] Geert J. P. L. Kops,et al. Forkhead transcription factor FOXO3a protects quiescent cells from oxidative stress , 2002, Nature.
[112] D. Selkoe,et al. The Amyloid Hypothesis of Alzheimer's Disease: Progress and Problems on the Road to Therapeutics , 2002, Science.
[113] J. Vanslyke,et al. Dislocation and degradation from the ER are regulated by cytosolic stress , 2002, The Journal of cell biology.
[114] A. Ciechanover,et al. The ubiquitin-proteasome proteolytic pathway: destruction for the sake of construction. , 2002, Physiological reviews.
[115] R. Lal,et al. Amyloid β protein forms ion channels: implications for Alzheimer's disease pathophysiology , 2001, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[116] P. Mcgeer,et al. The pentraxins: possible role in Alzheimer’s disease and other innate inflammatory diseases , 2001, Neurobiology of Aging.
[117] C. Glabe. Intracellular mechanisms of amyloid accumulation and pathogenesis in Alzheimer’s disease , 2001, Journal of Molecular Neuroscience.
[118] M. Bekkedal,et al. Serum cleaved Tau protein and neurobehavioral battery of tests as markers of brain injury in experimental bacterial meningitis , 2001, Brain Research.
[119] P. Verbeke,et al. HEAT SHOCK RESPONSE AND AGEING: MECHANISMS AND APPLICATIONS , 2001, Cell biology international.
[120] Roger N Gunn,et al. In-vivo measurement of activated microglia in dementia , 2001, The Lancet.
[121] D. Jo,et al. Proapoptotic Effects of Tau Cleavage Product Generated by Caspase-3 , 2001, Neurobiology of Disease.
[122] A. Goldberg,et al. Cellular Defenses against Unfolded Proteins A Cell Biologist Thinks about Neurodegenerative Diseases , 2001, Neuron.
[123] E. Masliah,et al. Altered expression of synaptic proteins occurs early during progression of Alzheimer’s disease , 2001, Neurology.
[124] P. Kloetzel,et al. The Effect of Heat Shock on 20S/26S Proteasomes , 2000, Biological chemistry.
[125] W. Markesbery,et al. Decreased levels of proteasome activity and proteasome expression in aging spinal cord , 2000, Neuroscience.
[126] C. Plata-salamán,et al. Inflammation and Alzheimer’s disease , 2000, Neurobiology of Aging.
[127] A. Richardson,et al. Age-related alterations in the activation of heat shock transcription factor 1 in rat hepatocytes. , 2000, Experimental cell research.
[128] I. Benjamin,et al. Disruption of Heat Shock Factor 1 Reveals an Essential Role in the Ubiquitin Proteolytic Pathway , 2000, Molecular and Cellular Biology.
[129] J. Höhfeld,et al. The Ubiquitin-related BAG-1 Provides a Link between the Molecular Chaperones Hsc70/Hsp70 and the Proteasome* , 2000, The Journal of Biological Chemistry.
[130] P. Greengard,et al. Endoplasmic reticulum and trans-Golgi network generate distinct populations of Alzheimer beta-amyloid peptides. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[131] G. Li,et al. Proteasome inhibitors MG132 and lactacystin hyperphosphorylate HSF1 and induce hsp70 and hsp27 expression. , 1999, Biochemical and biophysical research communications.
[132] T. Grune,et al. Proteasome‐dependent degradation of oxidized proteins in MRC‐5 fibroblasts , 1998, FEBS letters.
[133] M. Mattson,et al. Amyloid β-peptide induces apoptosis-related events in synapses and dendrites , 1998, Brain Research.
[134] A. Nakai,et al. Proteasome inhibition leads to the activation of all members of the heat-shock-factor family. , 1998, European journal of biochemistry.
[135] R. Borchardt,et al. Transport Characteristics of Peptidomimetics. Effect of the Pyrrolinone Bioisostere on Transport Across Caco-2 Cell Monolayers , 1998, Pharmaceutical Research.
[136] Bernd Bukau,et al. The Hsp70 and Hsp60 Chaperone Machines , 1998, Cell.
[137] R. Doms,et al. Alzheimer's Aβ(1–42) is generated in the endoplasmic reticulum/intermediate compartment of NT2N cells , 1997, Nature Medicine.
[138] P. Greengard,et al. Generation of Alzheimer beta-amyloid protein in the trans-Golgi network in the apparent absence of vesicle formation. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[139] Lin Qiu,et al. Attenuated stress responses in young and old human lymphocytes , 1997, Mechanisms of Ageing and Development.
[140] R. Tanguay,et al. Diminished heat shock response in the aged myocardium , 1996 .
[141] X. Chen,et al. RAGE and amyloid-β peptide neurotoxicity in Alzheimer's disease , 1996, Nature.
[142] F. Hartl. Molecular chaperones in cellular protein folding , 1996, Nature.
[143] R. Xue,et al. Amyloid Precursor Protein Metabolism in Primary Cell Cultures of Neurons, Astrocytes, and Microglia , 1996, Journal of neurochemistry.
[144] R. Nixon,et al. Properties of the endosomal-lysosomal system in the human central nervous system: disturbances mark most neurons in populations at risk to degenerate in Alzheimer's disease , 1996, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[145] D. Selkoe,et al. The Role of APP Processing and Trafficking Pathways in the Formation of Amyloid β‐Protein a , 1996 .
[146] L. Mucke,et al. Alzheimer-type neuropathology in transgenic mice overexpressing V717F β-amyloid precursor protein , 1995, Nature.
[147] T. Reinheckel,et al. Proteolysis in Cultured Liver Epithelial Cells during Oxidative Stress , 1995, The Journal of Biological Chemistry.
[148] J. Olney,et al. Excitotoxicity and the NMDA receptor - still lethal after eight years , 1995, Trends in Neurosciences.
[149] A. Goldberg,et al. Inhibitors of the proteasome block the degradation of most cell proteins and the generation of peptides presented on MHC class I molecules , 1994, Cell.
[150] Elizabeth A. Craig,et al. Heat shock proteins and molecular chaperones: Mediators of protein conformation and turnover in the cell , 1994, Cell.
[151] T. Iwatsubo,et al. Visualization of Aβ42(43) and Aβ40 in senile plaques with end-specific Aβ monoclonals: Evidence that an initially deposited species is Aβ42(43) , 1994, Neuron.
[152] E. Rojas,et al. Giant multilevel cation channels formed by Alzheimer disease amyloid beta-protein [A beta P-(1-40)] in bilayer membranes. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[153] P. Lansbury,et al. Seeding “one-dimensional crystallization” of amyloid: A pathogenic mechanism in Alzheimer's disease and scrapie? , 1993, Cell.
[154] P. Lansbury,et al. The carboxy terminus of the beta amyloid protein is critical for the seeding of amyloid formation: implications for the pathogenesis of Alzheimer's disease. , 1993, Biochemistry.
[155] P. Petronini,et al. Decreased Expression of Heat Shock Protein 70 mRNA and Protein in WI‐38 Human Fibroblasts Aging in Vitro , 1992, Annals of the New York Academy of Sciences.
[156] D. Selkoe,et al. Isolation and quantification of soluble Alzheimer's β-peptide from biological fluids , 1992, Nature.
[157] E. Stadtman. Protein oxidation and aging. , 1992, Free radical research.
[158] D. Salmon,et al. Physical basis of cognitive alterations in alzheimer's disease: Synapse loss is the major correlate of cognitive impairment , 1991, Annals of neurology.
[159] D. Price,et al. Precursor of amyloid protein in Alzheimer disease undergoes fast anterograde axonal transport. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[160] D L Price,et al. Phosphorylated Neurofilament Antigens in Neurofibrillary Tangles in Alzheimer's Disease , 1986, Journal of neuropathology and experimental neurology.
[161] J. Marcusson,et al. Amyloid-β secretion, generation, and lysosomal sequestration in response to proteasome inhibition: involvement of autophagy. , 2012, Journal of Alzheimer's disease : JAD.
[162] F. Calon,et al. ABCG2- and ABCG4-mediated efflux of amyloid-β peptide 1-40 at the mouse blood-brain barrier. , 2012, Journal of Alzheimer's disease : JAD.
[163] Yan Zhang,et al. Curcumin protects against intracellular amyloid toxicity in rat primary neurons. , 2012, International journal of clinical and experimental medicine.
[164] D. Mann,et al. CRMP2 hyperphosphorylation is characteristic of Alzheimer's disease and not a feature common to other neurodegenerative diseases. , 2011, Journal of Alzheimer's disease : JAD.
[165] Jun Tan,et al. Electromagnetic field treatment protects against and reverses cognitive impairment in Alzheimer's disease mice. , 2010, Journal of Alzheimer's disease : JAD.
[166] I. Bossis,et al. Autophagy in aging and in neurodegenerative disorders , 2008, Hormones.
[167] L. V. Van Eldik,et al. Glia proinflammatory cytokine upregulation as a therapeutic target for neurodegenerative diseases: function-based and target-based discovery approaches. , 2007, International review of neurobiology.
[168] R. Nixon,et al. Lysosomal system pathways: genes to neurodegeneration in Alzheimer's disease. , 2006, Journal of Alzheimer's disease : JAD.
[169] J. Agar,et al. Proteasome activity or expression is not altered by activation of the heat shock transcription factor Hsf1 in cultured fibroblasts or myoblasts , 2005, Cell stress & chaperones.
[170] P. Greengard,et al. Intraneuronal Aβ42 Accumulation in Human Brain , 2000 .
[171] E. Tangalos,et al. Mild Cognitive Impairment Clinical Characterization and Outcome , 1999 .
[172] Y. Agid,et al. Apoptosis and autophagy in nigral neurons of patients with Parkinson's disease. , 1997, Histology and histopathology.
[173] D. Walsh,et al. Molecular Neurodegeneration Alzheimer's Disease: Synaptic Dysfunction and Aβ , 2022 .