Noncoding RNAs in Alzheimer's disease

被引:176
作者
Idda, M. Laura [1 ]
Munk, Rachel [1 ]
Abdelmohsen, Kotb [1 ]
Gorospe, Myriam [1 ]
机构
[1] NIA, Lab Genet & Genom, Intramural Res Program, NIH, 251 Bayview Blvd, Baltimore, MD 21224 USA
基金
美国国家卫生研究院;
关键词
amyloid plaques; circRNA; lncRNA; miRNA; neurodegeneration; neurofibrillary tangles; noncoding RNA; posttranscriptional gene regulation; AMYLOID PRECURSOR PROTEIN; POSTTRANSCRIPTIONAL GENE-REGULATION; CHRONIC BRAIN HYPOPERFUSION; CLEAVING ENZYME 1; CIRCULAR RNAS; IN-VIVO; TAU PHOSPHORYLATION; SYNAPTIC PLASTICITY; NEUROTROPHIC FACTOR; BETA METABOLISM;
D O I
10.1002/wrna.1463
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Alzheimer's disease (AD) is a progressive neurodegenerative disorder and the main cause of dementia among the elderly worldwide. Despite intense efforts to develop drugs for preventing and treating AD, no effective therapies are available as yet, posing a growing burden at the personal, medical, and socioeconomic levels. AD is characterized by the production and aggregation of amyloid beta (A beta) peptides derived from amyloid precursor protein (APP), the presence of hyperphosphorylated microtubule-associated protein Tau (MAPT), and chronic inflammation leading to neuronal loss. A beta accumulation and hyperphosphorylated Tau are responsible for the main histopathological features of AD, A beta plaques, and neurofibrillary tangles (NFTs), respectively. However, the full spectrum of molecular factors that contribute to AD pathogenesis is not known. Noncoding (nc)RNAs, including microRNAs (miRNAs), long noncoding RNAs (lncRNAs), and circular RNAs (circRNAs), regulate gene expression at the transcriptional and posttranscriptional levels in various diseases, serving as biomarkers and potential therapeutic targets. There is rising recognition that ncRNAs have been implicated in both the onset and pathogenesis of AD. Here, we review the ncRNAs implicated posttranscriptionally in the main AD pathways and discuss the growing interest in targeting regulatory ncRNAs therapeutically to combat AD pathology. This article is categorized under: RNA in Disease and Development > RNA in Disease
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页数:13
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共 152 条
  • [31] Transcriptional and Post-transcriptional Gene Regulation by Long Non-coding RNA
    Dykes, Iain M.
    Emanueli, Costanza
    [J]. GENOMICS PROTEOMICS & BIOINFORMATICS, 2017, 15 (03) : 177 - 186
  • [32] Non-coding RNA regulation of synaptic plasticity and memory: Implications for aging
    Earls, Laurie R.
    Westmoreland, Joby J.
    Zakharenko, Stanislav S.
    [J]. AGEING RESEARCH REVIEWS, 2014, 17 : 34 - 42
  • [33] Expression of a noncoding RNA is elevated in Alzheimer's disease and drives rapid feed-forward regulation of β-secretase
    Faghihi, Mohammad Ali
    Modarresi, Farzaneh
    Khalil, Ahmad M.
    Wood, Douglas E.
    Sahagan, Barbara G.
    Morgan, Todd E.
    Finch, Caleb E.
    Laurent, Georges St., III
    Kenny, Paul J.
    Wahlestedt, Claes
    [J]. NATURE MEDICINE, 2008, 14 (07) : 723 - 730
  • [34] Evidence for natural antisense transcript-mediated inhibition of microRNA function
    Faghihi, Mohammad Ali
    Zhang, Ming
    Huang, Jia
    Modarresi, Farzaneh
    Van der Brug, Marcel P.
    Nalls, Michael A.
    Cookson, Mark R.
    St-Laurent, Georges, III
    Wahlestedt, Claes
    [J]. GENOME BIOLOGY, 2010, 11 (05):
  • [35] The miR-124 regulates the expression of BACE1/β-secretase correlated with cell death in Alzheimer's disease
    Fang, Marong
    Wang, Jing
    Zhang, Xiaobing
    Geng, Yu
    Hu, Zhiying
    Rudd, John A.
    Ling, Shucai
    Chen, Wei
    Han, Shu
    [J]. TOXICOLOGY LETTERS, 2012, 209 (01) : 94 - 105
  • [36] The emerging role of microRNAs in Alzheimer's disease
    Femminella, Grazia D.
    Ferrara, Nicola
    Rengo, Giuseppe
    [J]. FRONTIERS IN PHYSIOLOGY, 2015, 6
  • [37] MicroRNAs in β-Cell Biology, Insulin Resistance, Diabetes and Its Complications
    Fernandez-Valverde, Selene L.
    Taft, Ryan J.
    Mattick, John S.
    [J]. DIABETES, 2011, 60 (07) : 1825 - 1831
  • [38] MicroRNA-155 deletion reduces anxiety- and depressive-like behaviors in mice
    Fonken, Laura K.
    Gaudet, Andrew D.
    Gaier, Kristopher R.
    Nelson, Randy J.
    Popovich, Phillip G.
    [J]. PSYCHONEUROENDOCRINOLOGY, 2016, 63 : 362 - 369
  • [39] Reduced expression of hsa-miR-27a-3p in CSF of patients with Alzheimer disease
    Frigerio, Carlo Sala
    Lau, Pierre
    Salta, Evgenia
    Tournoy, Jos
    Bossers, Koen
    Vandenberghe, Rik
    Wallin, Anders
    Bjerke, Maria
    Zetterberg, Henrik
    Blennow, Kaj
    De Strooper, Bart
    [J]. NEUROLOGY, 2013, 81 (24) : 2103 - 2106
  • [40] Epigenome-wide analysis of piRNAs in gene-specific DNA methylation
    Fu, Alan
    Jacobs, Daniel I.
    Zhu, Yong
    [J]. RNA BIOLOGY, 2014, 11 (10) : 1301 - 1312