Voltage-Gated Na+ Channels in Alzheimer's Disease: Physiological Roles and Therapeutic Potential

被引:0
|
作者
Baumgartner, Timothy J. [1 ]
Haghighijoo, Zahra [1 ]
Goode, Nana A. [1 ]
Dvorak, Nolan M. [1 ]
Arman, Parsa [1 ]
Laezza, Fernanda [1 ]
机构
[1] Univ Texas Med Branch, Dept Pharmacol & Toxicol, Galveston, TX 77555 USA
来源
LIFE-BASEL | 2023年 / 13卷 / 08期
关键词
voltage-gated sodium channels; Alzheimer's disease; excitability; hippocampus; neurodegeneration; plasticity; pharmacology; MILD COGNITIVE IMPAIRMENT; FACTOR HOMOLOGOUS FACTORS; SODIUM-CHANNELS; MOUSE MODEL; AMYLOID-BETA; TAU-PATHOLOGY; HIPPOCAMPAL HYPERACTIVITY; INHIBITORY INTERNEURONS; NETWORK DYSFUNCTION; IMPROVES COGNITION;
D O I
10.3390/life13081655
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Alzheimer's disease (AD) is the most common cause of dementia and is classically characterized by two major histopathological abnormalities: extracellular plaques composed of amyloid beta (Afi) and intracellular hyperphosphorylated tau. Due to the progressive nature of the disease, it is of the utmost importance to develop disease-modifying therapeutics that tackle AD pathology in its early stages. Attenuation of hippocampal hyperactivity, one of the earliest neuronal abnormalities observed in AD brains, has emerged as a promising strategy to ameliorate cognitive deficits and abate the spread of neurotoxic species. This aberrant hyperactivity has been attributed in part to the dysfunction of voltage-gated Na+ (Nav) channels, which are central mediators of neuronal excitability. Therefore, targeting Nav channels is a promising strategy for developing disease-modifying therapeutics that can correct aberrant neuronal phenotypes in early-stage AD. This review will explore the role of Nav channels in neuronal function, their connections to AD pathology, and their potential as therapeutic targets.
引用
收藏
页数:17
相关论文
共 50 条
  • [41] Voltage-gated Na plus channels and epilepsy
    Mantegazza, Massimo
    Catterall, William A.
    EPILEPSIA, 2010, 51 : 9 - 9
  • [42] Effective contractile response to voltage-gated Na+ channels revealed by a channel activator
    Ho, W. -S. Vanessa
    Davis, Alison J.
    Chadha, Preet S.
    Greenwood, Iain A.
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2013, 304 (08): : C739 - C747
  • [43] Role of voltage-gated Na+ channels in hypoxia-induced neuronal injuries
    Fung, ML
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 2000, 27 (08): : 569 - 574
  • [44] Effects of Tityus serrulatus scorpion toxin gamma on voltage-gated Na+ channels
    Marcotte, P
    Chen, LQ
    Kallen, RG
    Chahine, M
    CIRCULATION RESEARCH, 1997, 80 (03) : 363 - 369
  • [45] Inhibitory effects of aloperine on voltage-gated Na+ channels in rat ventricular myocytes
    Li, Meng-ting
    Du, Ya-ya
    Zhong, Fei
    Wang, Jie-ru
    Gu, You-wei
    Zhang, Yue
    Huang, Xuan-tong
    Deng, Yi-zhou
    Xu, Zheng-xin
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2021, 394 (07) : 1579 - 1588
  • [46] Voltage-gated calcium channels and Parkinson's disease
    Hurley, Michael J.
    Dexter, David T.
    PHARMACOLOGY & THERAPEUTICS, 2012, 133 (03) : 324 - 333
  • [47] Inhibitory effect of gallic acid on voltage-gated Na+ channels in rat cardiomyocytes
    Du, Ya-ya
    Zou, Li
    Wang, Xiu-xiu
    Dai, Le-yao
    Ling, Xin-nan
    Xu, Zheng-xin
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 2020, 47 (05) : 771 - 779
  • [48] Inhibitory effects of aloperine on voltage-gated Na+ channels in rat ventricular myocytes
    Meng-ting Li
    Ya-ya Du
    Fei Zhong
    Jie-ru Wang
    You-wei Gu
    Yue Zhang
    Xuan-tong Huang
    Yi-zhou Deng
    Zheng-xin Xu
    Naunyn-Schmiedeberg's Archives of Pharmacology, 2021, 394 : 1579 - 1588
  • [49] Molecular and biophysical properties of voltage-gated Na+ channels in murine vas deferens
    Zhu, Hai-Lei
    Aishima, Manami
    Morinaga, Hidetaka
    Wassall, Richard D.
    Shibata, Atsushi
    Iwasa, Kazuomi
    Nomura, Masatoshi
    Nagao, Masaya
    Sueishi, Katsuo
    Cunnane, Thomas C.
    Teramoto, Noriyoshi
    BIOPHYSICAL JOURNAL, 2008, 94 (08) : 3340 - 3351