Caspase Activation in Alzheimer's Disease: Early to Rise and Late to Bed

被引:1
作者
Rohn, Troy T. [1 ]
Head, Elizabeth [2 ]
机构
[1] Boise State Univ, Dept Biol, Boise, ID 83725 USA
[2] Univ Calif Irvine, Dept Neurol, Inst Brain Aging & Dementia, Irvine, CA 92717 USA
关键词
amyloid precursor protein; beta-amyloid; caspase; mouse model; neurofibrillary tangles; plaques; tau; bcl-2; apoptosis;
D O I
暂无
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
It has been almost 15 years since the first report of apoptosis as a major mechanism of cell death associated with Alzheimer's disease (AD). Presently, whether neurons die through apoptosis or some other pathway is still a hotly debated issue. However, mounting evidence suggests a role for the activation of caspases and cleavage of critical cellular proteins during the progression of AD. The activation of apoptotic pathways may represent a protracted battle due to the presence of various anti-apoptotic molecules such as Bcl-2 whereby neurons do not immediately execute the apoptotic program but caspase activation occurs discretely at some low level. During this time, caspase cleavage of the amyloid precursor protein (APP), the adaptor protein GGA3 involved with beta-amyloid production, and tau may promote the formation of beta-amyloid (A beta) and neurofibrillary tangles (NFTs). Thus, not only may activation of caspases represent a terminal event associated with AD (i.e. cell death), but also a proximal event that promotes the pathology underlying this disease. Therefore, therapeutics aimed at preventing the activation and execution of apoptosis may provide an effective means of treating AD.
引用
收藏
页码:383 / 393
页数:11
相关论文
共 50 条
  • [41] Exosomes: a novel therapeutic target for Alzheimer's disease?
    Cai, Zhi-You
    Xiao, Ming
    Quazi, Sohel H.
    Ke, Zun-Yu
    NEURAL REGENERATION RESEARCH, 2018, 13 (05) : 930 - 935
  • [42] The rise and fall of insulin signaling in Alzheimer's disease
    Chami, B.
    Steel, A. J.
    De La Monte, S. M.
    Sutherland, Greg T.
    METABOLIC BRAIN DISEASE, 2016, 31 (03) : 497 - 515
  • [43] Modeling of Alzheimer's disease using viral vectors
    Stepanichev, M. Yu.
    NEUROCHEMICAL JOURNAL, 2009, 3 (04) : 253 - 259
  • [44] Advances with RNA interference in Alzheimer's disease research
    Chen, Shun
    Ge, Xuemei
    Chen, Yinghui
    Lv, Nan
    Liu, Zhenguo
    Yuan, Weien
    DRUG DESIGN DEVELOPMENT AND THERAPY, 2013, 7 : 117 - 125
  • [45] Manipulation of microglial activation as a therapeutic strategy in Alzheimer's disease
    Shie, Feng-Shiun
    Woltjer, Randall L.
    CURRENT MEDICINAL CHEMISTRY, 2007, 14 (27) : 2865 - 2871
  • [46] LED-Induced Microglial Activation and Rise in Caspase3 Suggest a Reorganization in the Retina
    Balogh, Boglarka
    Szarka, Gergely
    Tengolics, Adam J.
    Hoffmann, Gyula
    Volgyi, Bela
    Kovacs-Oller, Tamas
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (19)
  • [47] Immunotherapy for Alzheimer's disease
    Wang, Weihua
    Fan, Liangfeng
    Xu, De'en
    Wen, Zhongmin
    Yu, Rong
    Ma, Quanhong
    ACTA BIOCHIMICA ET BIOPHYSICA SINICA, 2012, 44 (10) : 807 - 814
  • [48] Immunotherapy for Alzheimer's disease
    Wisniewski, Thomas
    Goni, Fernando
    BIOCHEMICAL PHARMACOLOGY, 2014, 88 (04) : 499 - 507
  • [49] Neuropathology of Alzheimer’s Disease
    Jorge A. Trejo-Lopez
    Anthony T. Yachnis
    Stefan Prokop
    Neurotherapeutics, 2022, 19 : 173 - 185
  • [50] MicroRNAs in Alzheimer's Disease
    Wang, Mengli
    Qin, Lixia
    Tang, Beisha
    FRONTIERS IN GENETICS, 2019, 10