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Association of Changes in Cerebral and Hypothalamic Structure With Sleep Dysfunction in Patients With Genetic
P Tristin Best1, John C Van Swieten1, Lize Corrine Jiskoot1
1From the Integrated Program in Neuroscience (P.T.B.), McGill, Montréal, Canada; Department of Neurology (J.C.V.S., H.S., L.C.J.), Erasmus Medical Centre, Rotterdam, Netherlands; Department of Neurology (F.M.), Donostia Universitary Hospital, San Sebastián, Spain; Institut D'Investigacións Biomèdiques August Pi I Sunyer (R.S.-V.), University of Barcelona, Spain; Faculté de Médecine (R.L.), Université Laval, Québec City, Canada; Department of Neurobiology (C.G.), Karolinska Institutet, Solna, Sweden; Sunnybrook Research Institute (M.M.), Toronto, Canada; Tanz Centre for Research in Neurodegenerative Diseases (C.T.), University of Toronto, Canada; Department of Clinical Neurosciences (J.B.R.), University of Cambridge, United Kingdom; Department of Clinical and Experimental Sciences (B.B.), University of Brescia, Italy; Department of Clinical Neurological Sciences (E.F.), University of Western Ontario, London, Canada; Hertie-Institute for Clinical Brain Research and Center of Neurology (M.S.), University of Tübingen, Germany; Neurology (D.G.), University of Milan, Italy; Department of Neurosciences (R.V.), KU Leuven, Belgium; Faculty of Medicine (A.M.), University of Lisbon, Portugal; Nuffield Department of Clinical Neurosciences (C.B.), University of Oxford, United Kingdom; Wolfson Molecular Imaging Centre (A.G.), University of Manchester, United Kingdom; Institut du Cerveau-ICM (I.L.B.), Hôpital Pitié-Salpêtrière, Paris, France; 31Fondazione IRCCS (P.T.), Istituto Neurologico Carlo Besta, Milan, Italy; Faculty of Medicine (I.S.), University of Coimbra, Portugal; Department of Neurology (F.P.), Université Lille, France; Department of Neurology (J.L.), Ludwig-Maximilians Universität München, Munich, Germany; Department of Neurology (M.O.), University of Ulm, Germany; Department of Neurofarba (S.S.), University of Florence, Italy; Department of Neurodegenerative Disease (A.B., D.M.C., L.L.R., M.B., J.D.R.), University College London, United Kingdom; and Department of Psychiatry (G.A.D., M.C., S.D.), McGill University, Montréal, Canada.
Background And Objectives:
Sleep dysfunction is common in patients with neurodegenerative disorders; however, its neural underpinnings remain poorly characterized in genetic frontotemporal dementia (FTD). Hypothalamic nuclei important for sleep regulation may be related to this dysfunction. Thus, we examined changes in hypothalamic structure across the lifespan in patients with genetic FTD and whether these changes related to sleep dysfunction.
Methods:
Data from the observational multisite Genetic Frontotemporal Dementia Initiative (GENFI) study were used. GENFI participants were adult members of a family with known pathogenic variants in the microtubule-associated protein tau (MAPT) or progranulin (GRN) genes or an expansion in the chromosome 9 open reading frame 72 (C9orf72) gene. Family members without a pathogenic variant served as controls. GENFI participants were followed annually, with up to 7 visits, and underwent clinical characterization, neuropsychological testing, biological sampling, and brain MRI. For our analyses, participants were included if they had at least 1 T1-weighted structural MRI scan available. Linear mixed-effect models were used to examine changes in sleep dysfunction, measured using the Cambridge Behavioural Inventory-Revised sleep subscale, volumetric changes in hypothalamic regions, and the associations between cortical and hypothalamic atrophy and sleep dysfunction.
Results:
Participants included 491 adults with pathogenic genetic variants of FTD (27.9% symptomatic; median age: 49.4 years, 56.4%F) and 321 controls (median age: 44.2 years, 57.3%F). Pathogenic variant carriers showed greater sleep dysfunction across the adult lifespan (β = [0.25-0.34], q < 0.005) with MAPT carriers alone showing presymptomatic sleep changes (β = 0.34, q = 0.005). Cortical thinning in frontal and parietal regions was associated with greater sleep disturbances in C9orf72 and GRN carriers (q < 0.05). MAPT carriers showed consistently significant volume loss over time across all sleep-relevant hypothalamic subunits (β = [-0.56 to -0.39], q < 0.005), and reduced volumes in these subunits were related to increased sleep dysfunction (β = [-0.20 to -0.16], q < 0.05).
Discussion:
These findings suggest that sleep dysfunction in patients with genetic FTD may be attributable to atrophy in sleep-relevant hypothalamic subunits, with the most severe and consistent deficits observed in MAPT carriers. While biologically plausible, our statistical approach cannot confirm a causal link between atrophy and sleep disturbances.
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