Amyloid Plaques of Alzheimer's Disease as Hotspots of Glutamatergic Activity

被引:25
|
作者
Ovsepian, Saak, V [1 ,2 ,3 ]
O'Leary, Valerie B. [3 ]
Zaborszky, Laszlo [4 ]
Ntziachristos, Vasilis [1 ,2 ]
Dolly, J. Oliver [3 ]
机构
[1] Helmholtz Zentrum Munich, Inst Biol & Med Imaging, German Res Ctr Environm Hlth, Bldg 56,Ingolstadter Landstr 1, D-85764 Neuherberg, Germany
[2] Tech Univ Munich, Munich Sch Bioengn, Munich, Germany
[3] Dublin City Univ, Int Ctr Neurotherapeut, Dublin, Ireland
[4] Rutgers State Univ, Ctr Mol & Behav Neurosci, Newark, NJ USA
来源
NEUROSCIENTIST | 2019年 / 25卷 / 04期
关键词
glutamate; axonal dystrophies; ectopic release; paracrine signaling; metabotropic receptors; Alzheimer's disease; MOUSE MODEL; SENILE PLAQUES; BETA-PLAQUES; INTERSTITIAL FLUID; AXONAL-TRANSPORT; ION CHANNELS; PROTEIN; NEURONS; HYPERACTIVITY; NEURODEGENERATION;
D O I
10.1177/1073858418791128
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Deposition of amyloid plaques in limbic and associative cortices is amongst the most recognized histopathologic hallmarks of Alzheimer's disease. Despite decades of research, there is a lack of consensus over the impact of plaques on neuronal function, with their role in cognitive decline and memory loss undecided. Evidence has emerged suggesting complex and localized axonal pathology around amyloid plaques, with a significant fraction of swellings and dystrophies becoming enriched with putative synaptic vesicles and presynaptic proteins normally colocalized at hotspots of transmitter release. In the absence of hallmark active zone proteins and postsynaptic receptive elements, the axonal swellings surrounding amyloid plaques have been suggested as sites for ectopic release of glutamate, which under reduced clearance can lead to elevated local excitatory drive. Throughout this review, we consider the emerging data suggestive of amyloid plaques as hotspots of compulsive glutamatergic activity. Evidence for local and long-range effects of nonsynaptic glutamate is discussed in the context of circuit dysfunctions and neurodegenerative changes of Alzheimer's disease.
引用
下载
收藏
页码:288 / 297
页数:10
相关论文
共 50 条
  • [21] MR Microimaging of amyloid plaques in Alzheimer's disease transgenic mice
    Wengenack, Thomas M.
    Jack, Clifford R., Jr.
    Garwood, Michael
    Poduslo, Joseph F.
    EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2008, 35 (Suppl 1) : S82 - S88
  • [22] Homoisoflavonoids as potential imaging agents for β-amyloid plaques in Alzheimer's disease
    Gan, Changsheng
    Zhao, Zhenzhen
    Nan, Dou-Dou
    Yin, Binbin
    Hu, Jingyi
    EUROPEAN JOURNAL OF MEDICINAL CHEMISTRY, 2014, 76 : 125 - 131
  • [23] Amyloid plaques: hotspots for microglial turnover
    Lisa Kiani
    Nature Reviews Neurology, 2023, 19 : 576 - 576
  • [24] Targeting of Alzheimer's amyloid plaques.
    Poduslo, JF
    Wengenack, TM
    Curran, GL
    JOURNAL OF NEUROCHEMISTRY, 2001, 78 : 129 - 129
  • [25] Amyloid plaques: hotspots for microglial turnover
    Kiani, Lisa
    NATURE REVIEWS NEUROLOGY, 2023, 19 (10) : 576 - 576
  • [26] Apolipoprotein E ε4 genotype and the morphology of amyloid plaques in Alzheimer's disease
    Oyewole, D
    Mann, DMA
    Royston, MC
    ALZHEIMERS REPORTS, 1999, 2 (05): : 267 - 270
  • [27] Fractal analysis of amyloid plaques in Alzheimer's disease patients and mouse models
    Pirici, Daniel
    Van Cauwenberghe, Caroline
    Van Broeckhoven, Christine
    Kumar-Singh, Samir
    NEUROBIOLOGY OF AGING, 2011, 32 (09) : 1579 - 1587
  • [28] Multiple-peptide conjugates for binding β-amyloid plaques of Alzheimer's disease
    Zhang, GB
    Leibowitz, MJ
    Sinko, PJ
    Stein, S
    BIOCONJUGATE CHEMISTRY, 2003, 14 (01) : 86 - 92
  • [29] Amyloid plaques and neuronal degeneration: A study of familial and sporadic Alzheimer's disease
    Lippa, CF
    Synder, R
    Pollen, D
    Nee, L
    NEUROLOGY, 2000, 54 (07) : A323 - A323
  • [30] Extracellular protein components of amyloid plaques and their roles in Alzheimer's disease pathology
    Rahman, M. Mahafuzur
    Lendel, Christofer
    MOLECULAR NEURODEGENERATION, 2021, 16 (01)