Biblio
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“C9orf72 nucleotide repeat structures initiate molecular cascades of disease.”, Nature, vol. 507, no. 7491, pp. 195-200, 2014.
, “New Frontiers in the Prevention, Diagnosis, and Treatment of Alzheimer's Disease.”, J Alzheimers Dis, vol. 82, no. s1, pp. S51-S63, 2021.
, “Early Stage Alterations in CA1 Extracellular Region Proteins Indicate Dysregulation of IL6 and Iron Homeostasis in the 5XFAD Alzheimer's Disease Mouse Model.”, J Alzheimers Dis, vol. 61, no. 4, pp. 1399-1410, 2018.
, “Alzheimer's Disease: A Systems View Provides a Unifying Explanation of Its Development.”, J Alzheimers Dis, vol. 91, no. 1, pp. 43-70, 2023.
, “Differential Diagnosis of Dementia with High Levels of Cerebrospinal Fluid Tau Protein.”, J Alzheimers Dis, vol. 51, no. 3, pp. 905-13, 2016.
, “Associations of the Harvard Automated Phone Task and Alzheimer's Disease Pathology in Cognitively Normal Older Adults: Preliminary Findings.”, J Alzheimers Dis, vol. 94, no. 1, pp. 217-226, 2023.
, “Anti-Correlated Cerebrospinal Fluid Biomarker Trajectories in Preclinical Alzheimer's Disease.”, J Alzheimers Dis, vol. 51, no. 4, pp. 1085-97, 2016.
, “Anti-aβ therapeutics in Alzheimer's disease: the need for a paradigm shift.”, Neuron, vol. 69, no. 2, pp. 203-13, 2011.
, “Characteristics of Alzheimer's Disease Patients with Severe Executive Disorders.”, J Alzheimers Dis, vol. 51, no. 3, pp. 815-25, 2016.
, “Cognitive Variability Predicts Incident Alzheimer's Disease and Mild Cognitive Impairment Comparable to a Cerebrospinal Fluid Biomarker.”, J Alzheimers Dis, vol. 61, no. 1, pp. 79-89, 2018.
, “Cycloheximide Treatment Causes a ZVAD-Sensitive Protease-Dependent Cleavage of Human Tau in Drosophila Cells.”, J Alzheimers Dis, vol. 49, no. 4, pp. 1161-8, 2016.
, “Cycloheximide Treatment Causes a ZVAD-Sensitive Protease-Dependent Cleavage of Human Tau in Drosophila Cells.”, J Alzheimers Dis, vol. 49, no. 4, pp. 1161-8, 2016.
, “Differences in Synaptic Dysfunction Between rTg4510 and APP/PS1 Mouse Models of Alzheimer's Disease.”, J Alzheimers Dis, vol. 61, no. 1, pp. 195-208, 2018.
, “Association of Cerebrospinal Fluid (CSF) Insulin with Cognitive Performance and CSF Biomarkers of Alzheimer's Disease.”, J Alzheimers Dis, vol. 61, no. 1, pp. 309-320, 2018.
, “Predictors of Response to Cholinesterase Inhibitors Treatment of Alzheimer's Disease: Date Mining from the TREDEM Registry.”, J Alzheimers Dis, vol. 50, no. 4, pp. 969-79, 2016.
, “A Blood Test for Alzheimer's Disease: It's about Time or Not Ready for Prime Time?”, J Alzheimers Dis, vol. 90, no. 3, pp. 963-966, 2022.
, “Mitochondria Profoundly Influence Apolipoprotein E Biology.”, J Alzheimers Dis, vol. 92, no. 2, pp. 591-604, 2023.
, “Influence of Butyrylcholinesterase in Progression of Mild Cognitive Impairment to Alzheimer's Disease.”, J Alzheimers Dis, vol. 61, no. 3, pp. 1097-1105, 2018.
, “Interaction Between Arteriosclerosis and Amyloid-β on Cognitive Function.”, J Alzheimers Dis, vol. 97, no. 2, pp. 953-961, 2024.
, “Naphthoquinone-Tryptophan Hybrid Inhibits Aggregation of the Tau-Derived Peptide PHF6 and Reduces Neurotoxicity.”, J Alzheimers Dis, vol. 51, no. 1, pp. 165-78, 2016.
, “Naphthoquinone-Tryptophan Hybrid Inhibits Aggregation of the Tau-Derived Peptide PHF6 and Reduces Neurotoxicity.”, J Alzheimers Dis, vol. 51, no. 1, pp. 165-78, 2016.
, “The Heritability of Frontotemporal Lobar Degeneration: Validation of Pedigree Classification Criteria in a Northern Italy Cohort.”, J Alzheimers Dis, vol. 61, no. 2, pp. 753-760, 2018.
, “18F-THK523: a novel in vivo tau imaging ligand for Alzheimer's disease.”, Brain, vol. 134, no. Pt 4, pp. 1089-100, 2011.
, “Efficacy and Safety of ABT-126 in Subjects with Mild-to-Moderate Alzheimer's Disease on Stable Doses of Acetylcholinesterase Inhibitors: A Randomized, Double-Blind, Placebo-Controlled Study.”, J Alzheimers Dis, vol. 51, no. 4, pp. 1237-47, 2016.
, “Associations between Use of Specific Analgesics and Concentrations of Amyloid-β 42 or Phospho-Tau in Regions of Human Cerebral Cortex.”, J Alzheimers Dis, vol. 61, no. 2, pp. 653-662, 2018.
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