Parasagittal dural space hypertrophy and amyloid-β deposition in Alzheimer's disease

被引:5
|
作者
Song, Alexander K. [1 ,2 ]
Hett, Kilian [1 ]
Eisma, Jarrod J. [1 ]
McKnight, Colin D. [3 ]
Elenberger, Jason [1 ]
Stark, Adam J. [1 ]
Kang, Hakmook [4 ,5 ]
Yan, Yan [4 ]
Considine, Ciaran M. [1 ]
Donahue, Manus J. [1 ,2 ]
Claassen, Daniel O. [1 ,6 ]
机构
[1] Vanderbilt Univ, Dept Neurol, Med Ctr, Nashville, TN 37232 USA
[2] Vanderbilt Univ, Vanderbilt Brain Inst, Nashville, TN 37232 USA
[3] Vanderbilt Univ, Dept Radiol & Radiol Sci, Med Ctr, Nashville, TN 37232 USA
[4] Vanderbilt Univ, Dept Biostat, Med Ctr, Nashville, TN 32732 USA
[5] Vanderbilt Univ, Ctr Quantitat Sci, Med Ctr, Nashville, TN 37232 USA
[6] Vanderbilt Univ, Dept Neurol, Cognit & Movement Lab, Med Ctr, 1500 21st Ave S 6, Nashville, TN 37212 USA
关键词
choroid plexus; parasagittal dural space; amyloid-beta; cerebrospinal fluid; glymphatics; NEUROPSYCHOLOGICAL STATUS RBANS; MILD COGNITIVE IMPAIRMENT; ASSOCIATION WORKGROUPS; DIAGNOSTIC GUIDELINES; NATIONAL INSTITUTE; REPEATABLE BATTERY; BRAIN; CLEARANCE; SYSTEM; RECOMMENDATIONS;
D O I
10.1093/braincomms/fcad128
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
One of the pathological hallmarks of Alzheimer's and related diseases is the increased accumulation of protein amyloid-beta in the brain parenchyma. As such, recent studies have focused on characterizing protein and related clearance pathways involving perivascular flow of neurofluids, but human studies of these pathways are limited owing to limited methods for evaluating neurofluid circulation non-invasively in vivo. Here, we utilize non-invasive MRI methods to explore surrogate measures of CSF production, bulk flow and egress in the context of independent PET measures of amyloid-beta accumulation in older adults. Participants (N = 23) were scanned at 3.0 T with 3D T-2-weighted turbo spin echo, 2D perfusion-weighted pseudo-continuous arterial spin labelling and phase-contrast angiography to quantify parasagittal dural space volume, choroid plexus perfusion and net CSF flow through the aqueduct of Sylvius, respectively. All participants also underwent dynamic PET imaging with amyloid-beta tracer C-11-Pittsburgh Compound B to quantify global cerebral amyloid-beta accumulation. Spearman's correlation analyses revealed a significant relationship between global amyloid-beta accumulation and parasagittal dural space volume (rho = 0.529, P = 0.010), specifically in the frontal (rho = 0.527, P = 0.010) and parietal (rho = 0.616, P = 0.002) subsegments. No relationships were observed between amyloid-beta and choroid plexus perfusion nor net CSF flow. Findings suggest that parasagittal dural space hypertrophy, and its possible role in CSF-mediated clearance, may be closely related to global amyloid-beta accumulation. These findings are discussed in the context of our growing understanding of the physiological mechanisms of amyloid-beta aggregation and clearance via neurofluids.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Amyloid-β Deposition and Olfactory Dysfunction in an Alzheimer's Disease Model
    Wu, Nan
    Rao, Xiaoping
    Gao, Yunling
    Wang, Jie
    Xu, Fuqiang
    JOURNAL OF ALZHEIMERS DISEASE, 2013, 37 (04) : 699 - 712
  • [2] Linking Amyloid-β and Tau Deposition in Alzheimer Disease
    Vemuri, Prashanthi
    Scholl, Michael
    JAMA NEUROLOGY, 2017, 74 (07) : 766 - 768
  • [4] Effects of Cerebrolysin™ on amyloid-β deposition in a transgenic model of Alzheimer's disease
    Rockenstein, E
    Mallory, M
    Mante, M
    Alford, M
    Windisch, M
    Moessler, H
    Masliah, E
    JOURNAL OF NEURAL TRANSMISSION-SUPPLEMENT, 2002, (62): : 327 - 336
  • [5] Myelin dysfunction drives amyloid-β deposition in models of Alzheimer's disease
    Depp, Constanze
    Sun, Ting
    Sasmita, Andrew Octavian
    Spieth, Lena
    Berghoff, Stefan A.
    Nazarenko, Taisiia
    Overhoff, Katharina
    Steixner-Kumar, Agnes A.
    Subramanian, Swati
    Arinrad, Sahab
    Ruhwedel, Torben
    Moebius, Wiebke
    Goebbels, Sandra
    Saher, Gesine
    Werner, Hauke B.
    Damkou, Alkmini
    Zampar, Silvia
    Wirths, Oliver
    Thalmann, Maik
    Simons, Mikael
    Saito, Takashi
    Saido, Takaomi
    Krueger-Burg, Dilja
    Kawaguchi, Riki
    Willem, Michael
    Haass, Christian
    Geschwind, Daniel
    Ehrenreich, Hannelore
    Stassart, Ruth
    Nave, Klaus-Armin
    NATURE, 2023, 618 (7964) : 349 - 357
  • [6] Effects of Cerebrolysin™ on amyloid-β deposition in a transgenic model of Alzheimer's disease
    Rockenstein, E
    Mallory, M
    Mante, M
    Alford, M
    Windisch, M
    Moessler, H
    Masliah, E
    AGEING AND DEMENTIA CURRENT AND FUTURE CONCEPTS, 2002, : 327 - 336
  • [7] Myelin dysfunction drives amyloid-β deposition in models of Alzheimer’s disease
    Constanze Depp
    Ting Sun
    Andrew Octavian Sasmita
    Lena Spieth
    Stefan A. Berghoff
    Taisiia Nazarenko
    Katharina Overhoff
    Agnes A. Steixner-Kumar
    Swati Subramanian
    Sahab Arinrad
    Torben Ruhwedel
    Wiebke Möbius
    Sandra Göbbels
    Gesine Saher
    Hauke B. Werner
    Alkmini Damkou
    Silvia Zampar
    Oliver Wirths
    Maik Thalmann
    Mikael Simons
    Takashi Saito
    Takaomi Saido
    Dilja Krueger-Burg
    Riki Kawaguchi
    Michael Willem
    Christian Haass
    Daniel Geschwind
    Hannelore Ehrenreich
    Ruth Stassart
    Klaus-Armin Nave
    Nature, 2023, 618 : 349 - 357
  • [8] Intracellular amyloid-β in Alzheimer's disease
    LaFerla, Frank M.
    Green, Kim N.
    Oddo, Salvatore
    NATURE REVIEWS NEUROSCIENCE, 2007, 8 (07) : 499 - 509
  • [9] Role of amyloid-β in Alzheimer's disease
    Smith, MA
    Perry, G
    INTERNATIONAL JOURNAL OF EXPERIMENTAL PATHOLOGY, 2005, 86 (03) : 131 - 131
  • [10] Amyloid-β Immunotherapy for Alzheimer's Disease
    Fu, H. J.
    Liu, B.
    Frost, J. L.
    Lemere, C. A.
    CNS & NEUROLOGICAL DISORDERS-DRUG TARGETS, 2010, 9 (02) : 197 - 206