Active lifestyles moderate clinical outcomes in autosomal dominant frontotemporal degeneration
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B. Dickerson | B. Boeve | D. Knopman | K. Kantarci | M. Grossman | D. Kaufer | K. Yaffe | S. Weintraub | H. Rosen | G. Coppola | F. Elahi | A. Boxer | J. Kornak | E. Huey | I. Litvan | H. Heuer | G. Hsiung | N. Graff-Radford | D. Irwin | K. Rascovsky | K. Domoto-Reilly | I. Mackenzie | M. Tartaglia | M. Mendez | A. Staffaroni | D. Kerwin | J. Kramer | N. Ghoshal | J. Fields | E. Ramos | D. Brushaber | J. Fong | L. Forsberg | J. Syrjanen | K. Casaletto | B. Miller | B. Appleby | A. Wolf | Jeremy A. Syrjanen | E. Roberson | R. Rademakers | Kristine Yaffe | Sandra Weintraub | Ian R. Mackenzie | D. Knopman | M. Grossman | Erik D. Roberson | Murray Grossman | David J. Irwin | Artfl | Bradford C. Dickerson | Amy Wolf | Irene Litvan | Joel H. Kramer | Edward D. Huey | Mario F. Mendez | Giovanni Coppola | Neil R. Graff-Radford | Kimiko Domoto-Reilly | Danielle Brushaber | Brian S. Appleby | Howie J. Rosen | Jamie C. Fong | Fanny M. Elahi | Hsiung Gy | Daniel Kaufer | Lefftds Study
[1] David T. Jones,et al. Assessment of executive function declines in presymptomatic and mildly symptomatic familial frontotemporal dementia: NIH-EXAMINER as a potential clinical trial endpoint , 2019, Alzheimer's & Dementia.
[2] M. Grossman,et al. Occupational attainment influences longitudinal decline in behavioral variant frontotemporal degeneration , 2019, Brain Imaging and Behavior.
[3] E. Stordal,et al. Smoking and Obesity as Risk Factors in Frontotemporal Dementia and Alzheimer's Disease: The HUNT Study , 2019, Dementia and Geriatric Cognitive Disorders Extra.
[4] J. Morris,et al. Relationship between physical activity, cognition, and Alzheimer pathology in autosomal dominant Alzheimer's disease , 2018, Alzheimer's & Dementia.
[5] Y. Stern,et al. Whitepaper: Defining and investigating cognitive reserve, brain reserve, and brain maintenance , 2018, Alzheimer's & Dementia.
[6] S. Kern,et al. Midlife cardiovascular fitness and dementia , 2018, Neurology.
[7] O. Andreassen,et al. Immune-related genetic enrichment in frontotemporal dementia: An analysis of genome-wide association studies , 2018, PLoS medicine.
[8] Catherine M. Mewborn,et al. Cognitive Interventions for Cognitively Healthy, Mildly Impaired, and Mixed Samples of Older Adults: A Systematic Review and Meta-Analysis of Randomized-Controlled Trials , 2017, Neuropsychology Review.
[9] Guang-yan Dai,et al. Voluntary Exercise Promotes Glymphatic Clearance of Amyloid Beta and Reduces the Activation of Astrocytes and Microglia in Aged Mice , 2017, Front. Mol. Neurosci..
[10] Nicolas Cherbuin,et al. Exercise interventions for cognitive function in adults older than 50: a systematic review with meta-analysis , 2017, British Journal of Sports Medicine.
[11] Robert V Farese,et al. Microglial NFκB-TNFα hyperactivation induces obsessive–compulsive behavior in mouse models of progranulin-deficient frontotemporal dementia , 2017, Proceedings of the National Academy of Sciences.
[12] Hui-Xin Wang,et al. Association of lifelong exposure to cognitive reserve-enhancing factors with dementia risk: A community-based cohort study , 2017, PLoS medicine.
[13] D. Selkoe,et al. Environmental Enrichment Potently Prevents Microglia-Mediated Neuroinflammation by Human Amyloid β-Protein Oligomers , 2016, The Journal of Neuroscience.
[14] Michelle K. Cahill,et al. Progranulin Deficiency Promotes Circuit-Specific Synaptic Pruning by Microglia via Complement Activation , 2016, Cell.
[15] Shrikant I Bangdiwala,et al. Cognitive Decline in a Colombian Kindred With Autosomal Dominant Alzheimer Disease: A Retrospective Cohort Study. , 2016, JAMA neurology.
[16] D. Burn,et al. The effects of cognitive reserve and lifestyle on cognition and dementia in Parkinson's disease—a longitudinal cohort study , 2016, International journal of geriatric psychiatry.
[17] D. Ramasamy,et al. Cognitive reserve moderates the impact of subcortical gray matter atrophy on neuropsychological status in multiple sclerosis , 2016, Multiple sclerosis.
[18] S. Spina,et al. Frontotemporal dementia , 2015, The Lancet.
[19] M. Grossman,et al. Occupational attainment influences survival in autopsy-confirmed frontotemporal degeneration , 2015, Neurology.
[20] C. Jack,et al. Association of lifetime intellectual enrichment with cognitive decline in the older population. , 2014, JAMA neurology.
[21] Kristine Yaffe,et al. Potential for primary prevention of Alzheimer's disease: an analysis of population-based data , 2014, The Lancet Neurology.
[22] N. Cámpora,et al. Cardiovascular risk factors and frontotemporal dementia: a case–control study , 2014, Translational Neurodegeneration.
[23] Franco M Impellizzeri,et al. Validity and reproducibility of the Physical Activity Scale for the Elderly (PASE) questionnaire for the measurement of the physical activity level in patients after total knee arthroplasty , 2014, BMC Musculoskeletal Disorders.
[24] George W Rebok,et al. Ten‐Year Effects of the Advanced Cognitive Training for Independent and Vital Elderly Cognitive Training Trial on Cognition and Everyday Functioning in Older Adults , 2014, Journal of the American Geriatrics Society.
[25] David A. Bennett,et al. Life-span cognitive activity, neuropathologic burden, and cognitive aging , 2013, Neurology.
[26] Robert V Farese,et al. Frontotemporal degeneration, the next therapeutic frontier: Molecules and animal models for frontotemporal degeneration drug development , 2013, Alzheimer's & Dementia.
[27] A. Hannan,et al. Enhancement of cognitive function in models of brain disease through environmental enrichment and physical activity , 2013, Neuropharmacology.
[28] Y. Stern. Cognitive reserve in ageing and Alzheimer's disease , 2012, The Lancet Neurology.
[29] I. Grant,et al. Lower Cognitive Reserve Among Individuals with Syndromic HIV-Associated Neurocognitive Disorders (HAND) , 2012, AIDS and Behavior.
[30] Vidhura Tennekoon,et al. Measuring bias in self-reported data. , 2011, International journal of behavioural & healthcare research.
[31] T. Manini,et al. Activity energy expenditure and incident cognitive impairment in older adults. , 2011, Archives of internal medicine.
[32] Dag Aarsland,et al. Is physical activity a potential preventive factor for vascular dementia? A systematic review , 2010, Aging & mental health.
[33] R. Cuppini,et al. Synaptogenesis in adult‐generated hippocampal granule cells is affected by behavioral experiences , 2009, Hippocampus.
[34] Nathaniel Mercaldo,et al. Development of methodology for conducting clinical trials in frontotemporal lobar degeneration. , 2008, Brain : a journal of neurology.
[35] J. Foster,et al. Effect of physical activity on cognitive function in older adults at risk for Alzheimer disease: a randomized trial. , 2008, JAMA.
[36] K. Kazuma,et al. Validity and reliability of the Physical Activity Scale for the Elderly (PASE) in Japanese elderly people , 2008, Geriatrics & gerontology international.
[37] Michael J Thun,et al. Recreational physical activity and risk of Parkinson's disease , 2008, Movement disorders : official journal of the Movement Disorder Society.
[38] H. Potter,et al. Enhanced cognitive activity—over and above social or physical activity—is required to protect Alzheimer’s mice against cognitive impairment, reduce Aβ deposition, and increase synaptic immunoreactivity , 2007, Neurobiology of Learning and Memory.
[39] Charles E. McCulloch,et al. Separating between‐ and within‐cluster covariate effects by using conditional and partitioning methods , 2006 .
[40] Anders M. Dale,et al. An automated labeling system for subdividing the human cerebral cortex on MRI scans into gyral based regions of interest , 2006, NeuroImage.
[41] Lewis H Kuller,et al. Physical activity, APOE genotype, and dementia risk: findings from the Cardiovascular Health Cognition Study. , 2005, American journal of epidemiology.
[42] H. Chen,et al. Physical activity and the risk of Parkinson disease , 2005, Neurology.
[43] W. Greenough,et al. Experience-driven brain plasticity: beyond the synapse. , 2004, Neuron glia biology.
[44] S. Vesely,et al. Stability and convergent validity of the Physical Activity Scale for the Elderly (PASE). , 2004, The Journal of sports medicine and physical fitness.
[45] K. Yaffe,et al. A Longitudinal Study of Cardiorespiratory Fitness and Cognitive Function in Healthy Older Adults , 2003, Journal of the American Geriatrics Society.
[46] K Yaffe,et al. A prospective study of physical activity and cognitive decline in elderly women: women who walk. , 2001, Archives of internal medicine.
[47] R A Boileau,et al. The physical activity scale for the elderly (PASE): evidence for validity. , 1999, Journal of clinical epidemiology.
[48] J. Kalbfleisch,et al. Between- and within-cluster covariate effects in the analysis of clustered data. , 1998, Biometrics.
[49] A. Jette,et al. The Physical Activity Scale for the Elderly (PASE): development and evaluation. , 1993, Journal of clinical epidemiology.
[50] W. Greenough,et al. Learning causes synaptogenesis, whereas motor activity causes angiogenesis, in cerebellar cortex of adult rats. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[51] D. Jacobs,et al. Effect of Early Adult Patterns of Physical Activity and Television Viewing on Midlife Cognitive Function. , 2016, JAMA psychiatry.
[52] Francesca Clerici,et al. Physical activity reduces the risk of dementia in mild cognitive impairment subjects: a cohort study. , 2014, Journal of Alzheimer's disease : JAD.
[53] V. Leirer,et al. Development and validation of a geriatric depression screening scale: a preliminary report. , 1982, Journal of psychiatric research.