Yifei Cai

Associate Research Scientist in Molecular and Cellular Neuroscience

MiR-409-5p as a regulator of neurite growth is down regulated in APP/PS1 murine model of Alzheimer's disease


Journal article


Jing Guo, Yifei Cai, Xiaoyang Ye, Nana Ma, Yuan Wang, Bo Yu, Jun Wan
Frontiers in Neuroscience, vol. 13, 2019, p. 1264

https://www.frontiersin.org/articles/10.3389/...
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APA   Click to copy
Guo, J., Cai, Y., Ye, X., Ma, N., Wang, Y., Yu, B., & Wan, J. (2019). MiR-409-5p as a regulator of neurite growth is down regulated in APP/PS1 murine model of Alzheimer's disease. Frontiers in Neuroscience, 13, 1264.


Chicago/Turabian   Click to copy
Guo, Jing, Yifei Cai, Xiaoyang Ye, Nana Ma, Yuan Wang, Bo Yu, and Jun Wan. “MiR-409-5p as a Regulator of Neurite Growth Is down Regulated in APP/PS1 Murine Model of Alzheimer's Disease.” Frontiers in Neuroscience 13 (2019): 1264.


MLA   Click to copy
Guo, Jing, et al. “MiR-409-5p as a Regulator of Neurite Growth Is down Regulated in APP/PS1 Murine Model of Alzheimer's Disease.” Frontiers in Neuroscience, vol. 13, 2019, p. 1264.


BibTeX   Click to copy

@article{jing2019a,
  title = {MiR-409-5p as a regulator of neurite growth is down regulated in APP/PS1 murine model of Alzheimer's disease},
  year = {2019},
  journal = {Frontiers in Neuroscience},
  pages = {1264},
  volume = {13},
  author = {Guo, Jing and Cai, Yifei and Ye, Xiaoyang and Ma, Nana and Wang, Yuan and Yu, Bo and Wan, Jun}
}

Alzheimer’s disease (AD) is a heterogeneous neurodegenerative disease. Recent studies suggest that miRNA expression changes are associated with the development of AD. Our previous study showed that the expression level of miR-409-5p was stably downregulated in the early stage of APP/PS1 double transgenic mice model of AD. We now report that miR-409-5p impairs neurite outgrowth, decreases neuronal viability, and accelerates the progression of Aβ1–42-induced pathologies. In this study, we found that Aβ1–42 peptide significantly decreased the expression of miR-409-5p, which was consistent with the expression profile of miR-409-5p in the APP/PS1 mice cortexes. Plek was confirmed to be a potential regulatory target of miR-409-5p by luciferase assay and Western blotting. Overexpression of miR-409-5p has an obvious neurotoxicity in neuronal cell viability and differentiation, whereas Plek overexpression could partially rescue neurite outgrowth from this toxicity. Some cytoskeleton regulatory proteins have been found to be related to AD pathogenesis. Our data show some clues that cytoskeletal reorganization may play roles in AD pathology. The early downregulation of miR-409-5p in AD progression might be a self-protective reaction to alleviate the synaptic damage induced by Aβ, which may be used as a potential early biomarker of AD.