Biblio
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“Death Rate Due to COVID-19 in Alzheimer's Disease and Frontotemporal Dementia.”, J Alzheimers Dis, vol. 78, no. 2, pp. 537-541, 2020.
, “Death Rate Due to COVID-19 in Alzheimer's Disease and Frontotemporal Dementia.”, J Alzheimers Dis, vol. 78, no. 2, pp. 537-541, 2020.
, “Dementia Care in Times of COVID-19: Experience at Fundació ACE in Barcelona, Spain.”, J Alzheimers Dis, vol. 76, no. 1, pp. 33-40, 2020.
, “Dementia Care in Times of COVID-19: Experience at Fundació ACE in Barcelona, Spain.”, J Alzheimers Dis, vol. 76, no. 1, pp. 33-40, 2020.
, “The Effects of Confinement on Neuropsychiatric Symptoms in Alzheimer's Disease During the COVID-19 Crisis.”, J Alzheimers Dis, vol. 76, no. 1, pp. 41-47, 2020.
, “Resilience of Alzheimer's Disease to COVID-19.”, J Alzheimers Dis, vol. 77, no. 1, pp. 67-73, 2020.
, “Resilience of Alzheimer's Disease to COVID-19.”, J Alzheimers Dis, vol. 77, no. 1, pp. 67-73, 2020.
, “Telemedicine for Delivery of Care in Frontotemporal Lobar Degeneration During COVID-19 Pandemic: Results from Southern Italy.”, J Alzheimers Dis, vol. 76, no. 2, pp. 481-489, 2020.
, “Telemedicine for Delivery of Care in Frontotemporal Lobar Degeneration During COVID-19 Pandemic: Results from Southern Italy.”, J Alzheimers Dis, vol. 76, no. 2, pp. 481-489, 2020.
, “11C-CFT-PET in Presymptomatic FTDP-17: A Potential Biomarker Predicting Onset.”, J Alzheimers Dis, vol. 61, no. 2, pp. 613-618, 2018.
, “11C-CFT-PET in Presymptomatic FTDP-17: A Potential Biomarker Predicting Onset.”, J Alzheimers Dis, vol. 61, no. 2, pp. 613-618, 2018.
, “Age-Related Changes in the Spatial Frequency Threshold of Male and Female 3xTg-AD Mice Using OptoMotry.”, J Alzheimers Dis, vol. 62, no. 2, pp. 591-596, 2018.
, “Albuminuria and Microalbuminuria as Predictors of Cognitive Performance in a General Population: An 11-Year Follow-Up Study.”, J Alzheimers Dis, vol. 62, no. 2, pp. 635-648, 2018.
, “Albuminuria and Microalbuminuria as Predictors of Cognitive Performance in a General Population: An 11-Year Follow-Up Study.”, J Alzheimers Dis, vol. 62, no. 2, pp. 635-648, 2018.
, “Albuminuria and Microalbuminuria as Predictors of Cognitive Performance in a General Population: An 11-Year Follow-Up Study.”, J Alzheimers Dis, vol. 62, no. 2, pp. 635-648, 2018.
, “Alterations in Acrolein Metabolism Contribute to Alzheimer's Disease.”, J Alzheimers Dis, vol. 61, no. 2, pp. 571-580, 2018.
, “Altered Expression of Circulating Cdc42 in Frontotemporal Lobar Degeneration.”, J Alzheimers Dis, vol. 61, no. 4, pp. 1477-1483, 2018.
, “Altered Expression of Circulating Cdc42 in Frontotemporal Lobar Degeneration.”, J Alzheimers Dis, vol. 61, no. 4, pp. 1477-1483, 2018.
, “Alzheimer-Like Pattern of Hypometabolism Emerges with Elevated Amyloid-β Burden in Down Syndrome.”, J Alzheimers Dis, vol. 61, no. 2, pp. 631-644, 2018.
, “Alzheimer-Like Pattern of Hypometabolism Emerges with Elevated Amyloid-β Burden in Down Syndrome.”, J Alzheimers Dis, vol. 61, no. 2, pp. 631-644, 2018.
, “Alzheimer's Disease Progression: Factors Influencing Cognitive Decline.”, J Alzheimers Dis, vol. 61, no. 2, pp. 785-791, 2018.
, “Aphasia in Progressive Supranuclear Palsy: As Severe as Progressive Non-Fluent Aphasia.”, J Alzheimers Dis, vol. 61, no. 2, pp. 705-715, 2018.
, “Apparent Cognitive Decline as Revealed by an Executive Function Test within a Cohort of Elderly Individuals Self-Reporting Normal Cognitive Performance.”, J Alzheimers Dis, vol. 61, no. 3, pp. 913-915, 2018.
, “An Aspartyl Cathepsin Targeted PET Agent: Application in an Alzheimer's Disease Mouse Model.”, J Alzheimers Dis, vol. 61, no. 3, pp. 1241-1252, 2018.
, “An Aspartyl Cathepsin Targeted PET Agent: Application in an Alzheimer's Disease Mouse Model.”, J Alzheimers Dis, vol. 61, no. 3, pp. 1241-1252, 2018.
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