Mechanisms underlying LncRNA SNHG1 regulation of Alzheimer's disease involve DNA methylation

被引:6
作者
Chen, Hong [1 ]
Zhang, Chun-Jie [1 ,2 ]
Zhao, Zhi-Ying [1 ,5 ]
Gao, Yang-Yang [1 ]
Zhao, Jian-Tian [3 ]
Li, Xiao-Xu [1 ]
Zhang, Ming [1 ]
Wang, He [4 ]
机构
[1] Baotou Med Coll, Inst Neurosci & Med Technol, Dept Anat, Baotou, Inner Mongolia, Peoples R China
[2] Baotou Med Coll, Ctr Collaborat Innovat Translat Med, Baotou, Inner Mongolia, Peoples R China
[3] Baotou Med Coll, Inst Publ Hlth, Baotou, Inner Mongolia, Peoples R China
[4] Univ Newcastle, Sch Hlth Sci, Newcastle, Australia
[5] Baotou Med Coll, Inst Anesthesia, 31 Jianshe Rd Donghe Dist, Baotou 014040, Peoples R China
来源
JOURNAL OF TOXICOLOGY AND ENVIRONMENTAL HEALTH-PART A-CURRENT ISSUES | 2024年 / 87卷 / 10期
关键词
Alzheimer's disease; LncRNA; DNA methylation; SNHG1; P-akt; SAMP8; mice; LONG NONCODING RNAS; NEURONAL CELL-LINE; SCHISANDRIN; EVOLUTION; MODEL;
D O I
10.1080/15287394.2024.2334248
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Alzheimer's disease (AD) is a neurodegenerative disease associated with long non-coding RNAs and DNA methylation; however, the mechanisms underlying the role of lncRNA small nucleolar RNA host gene 1 (lncRNA SNHG1) and subsequent involvement of DNA methylation in AD development are not known. The aim of this study was to examine the regulatory mechanisms attributed to lncRNA SNHG1 gene utilizing 2 strains of senescence-accelerated mouse prone 8 (SAMP8) model of AD and compared to senescence-accelerated mouse resistant (SAMR) considered a control. Both strains of the mouse were transfected with either blank virus, psLenti-U6-SNHG1(low gene expression) virus, and psLenti-pA-SNHG1(gene overexpression) virus via a single injection into the brains for 2 weeks. At 2 weeks mice were subjected to a Morris water maze to determine any behavioral effects followed by sacrifice to extract hippocampal tissue for Western blotting to measure protein expression of p-tau, DNMT1, DNMT3A, DNMT3B, TET1, and p-Akt. No marked alterations were noted in any parameters following blank virus transfection. In SAMP8 mice, a significant decrease was noted in protein expression of DNMT1, DNMT3A, DNMT3B, and p-Akt associated with rise in p-tau and TET1. Transfection with ps-Lenti-U6-SNHG1 alone in SAMR1 mice resulted in a significant rise in DNMTs and p-Akt and a fall in p-tau and TET1. Transfection of SAMP8 with ps-Lenti-U6-SNHG1 blocked effects on overexpression noted in this mouse strain. However, knockdown of lncRNA SNHG1 yielded the opposite results as found in SAMR1 mice. In conclusion, the knockdown of lncRNA SNHG1 enhanced DNA methylation through the PI3K/Akt signaling pathway, thereby reducing the phosphorylation levels of tau in SAMP8 AD model mice with ameliorating brain damage attributed to p-tau accumulation with consequent neuroprotection.
引用
收藏
页码:428 / 435
页数:8
相关论文
共 45 条
  • [1] Molecular mechanisms underlying actions of certain long noncoding RNAs in Alzheimer's disease
    Ahmadi, Shamseddin
    Zobeiri, Mohammad
    Bradburn, Steven
    [J]. METABOLIC BRAIN DISEASE, 2020, 35 (05) : 681 - 693
  • [2] 2023 Alzheimer's disease facts and figures
    不详
    [J]. ALZHEIMERS & DEMENTIA, 2023, 19 (04) : 1598 - 1695
  • [3] Role of TET1-mediated epigenetic modulation in Alzheimer's disease
    Armstrong, Matthew J.
    Jin, Yulin
    Vattathil, Selina M.
    Huang, Yanting
    Schroeder, Jason P.
    Bennet, David A.
    Qin, Zhaohui S.
    Wingo, Thomas S.
    Jin, Peng
    [J]. NEUROBIOLOGY OF DISEASE, 2023, 185
  • [4] Morris Water Maze Test for Learning and Memory Deficits in Alzheimer's Disease Model Mice
    Bromley-Brits, Kelley
    Deng, Yu
    Song, Weihong
    [J]. JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2011, (53):
  • [5] Identification of age- and gender-associated long noncoding RNAs in the human brain with Alzheimer's disease
    Cao, Mei
    Li, Huaqing
    Zhao, Jian
    Cui, Juan
    Hu, Guoku
    [J]. NEUROBIOLOGY OF AGING, 2019, 81 : 116 - 126
  • [6] Chen J, 2019, EUR REV MED PHARMACO, V23, P5366, DOI 10.26355/eurrev_201906_18205
  • [7] Long non-coding RNAs: From disease code to drug role
    Chen, Yuanyuan
    Li, Zhaojun
    Chen, Xiaoguang
    Zhang, Sen
    [J]. ACTA PHARMACEUTICA SINICA B, 2021, 11 (02) : 340 - 354
  • [8] DNA methylation and memory formation
    Day, Jeremy J.
    Sweatt, J. David
    [J]. NATURE NEUROSCIENCE, 2010, 13 (11) : 1319 - 1323
  • [9] Non-coding RNAs and disease: the classical ncRNAs make a comeback
    de Almeida, Rogerio Alves
    Fraczek, Marcin G.
    Parker, Steven
    Delneri, Daniela
    O'Keefe, Raymond T.
    [J]. BIOCHEMICAL SOCIETY TRANSACTIONS, 2016, 44 : 1073 - 1078
  • [10] The GENCODE v7 catalog of human long noncoding RNAs: Analysis of their gene structure, evolution, and expression
    Derrien, Thomas
    Johnson, Rory
    Bussotti, Giovanni
    Tanzer, Andrea
    Djebali, Sarah
    Tilgner, Hagen
    Guernec, Gregory
    Martin, David
    Merkel, Angelika
    Knowles, David G.
    Lagarde, Julien
    Veeravalli, Lavanya
    Ruan, Xiaoan
    Ruan, Yijun
    Lassmann, Timo
    Carninci, Piero
    Brown, James B.
    Lipovich, Leonard
    Gonzalez, Jose M.
    Thomas, Mark
    Davis, Carrie A.
    Shiekhattar, Ramin
    Gingeras, Thomas R.
    Hubbard, Tim J.
    Notredame, Cedric
    Harrow, Jennifer
    Guigo, Roderic
    [J]. GENOME RESEARCH, 2012, 22 (09) : 1775 - 1789