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miR-106b aberrantly expressed in a double transgenic mouse model for Alzheimer's disease targets TGF-β type II
Hailin Wang1, Jialin Liu, Yuanyuan Zong
1Institute of Laboratory Animal Science, Chinese Academy of Medical Sciences and Peking Union Medical College, Key Laboratory of Human Disease Animal Model, State Administration of Tranditional Chinese Medicine, No 5, Panjiayuan, Nanli, Chaoyang District, Beijing 10021, PR China.
Abstract:
MicroRNAs (miRNAs) are abundantly expressed in the brain and play an important role in disorders of the brain, including Alzheimer's diseases (AD). Growing body of evidence suggests that the TGF-β signaling pathway plays a key role in the pathogenesis of AD. However, it is unclear whether miRNAs involved in AD pathogenesis by regulating TGF-β signaling. Here we found that miR-106b and TGF-β type II receptor (TβR II) were aberrantly expressed in APPswe/PS∆E9 mice (a double transgenic mouse model for AD). Sequence analysis revealed two putative binding sites for miR-106b in the 3' UTR of the TβR II mRNA. Our results showed that the expression of miR-106b was inversely correlated with TβR II protein levels and miR-106b can directly inhibit the TβR II translation in vitro. After induced neurodifferentiation with all-trans retinoic acid, we observed significant neurodegeneration in SH-SY5Y cells stably transfected with miR-106b. Western blot analysis revealed unchanged total Smad2/3 protein levels, but reduced phospho-Smad2/3 (p-Smad2/3) and increased Smad6/7 protein levels in the miR-106b stably transfected cell line. Exposure of SH-SY5Y cells to Aβ42 oligomers led to the expression of miR-106b was first increased and then decreased and TβR II levels reduced. Our in vitro results suggested that Aβ42 oligomer-induced miR-106b leads to impairment in TGF-β signaling through TβR II, concomitant with retinoic acid-induced neurodegeneration in SH-SY5Y cells. These results show that TβR II is a functional target of miR-106b and that miR-106b may influence TGF-β signaling, thereby contributing to the pathogenesis of AD.
Insights
MicroRNAs like miR-106b regulate TGF-β signaling by targeting TβR II. This mechanism contributes to neurodegeneration in Alzheimer's disease models, highlighting a novel pathway in AD pathogenesis.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are crucial in brain function and neurological disorders like Alzheimer's disease (AD).
- The transforming growth factor-beta (TGF-β) signaling pathway is implicated in AD pathogenesis.
- The regulatory role of miRNAs in TGF-β signaling in AD remains largely unexplored.
Purpose of the Study:
- To investigate the role of miR-106b in Alzheimer's disease pathogenesis.
- To determine if miR-106b regulates the TGF-β signaling pathway via the TGF-β type II receptor (TβR II).
- To explore the impact of miR-106b on neurodegeneration.
Main Methods:
- Analysis of miR-106b and TβR II expression in an AD mouse model (APPswe/PS∆E9).
- In vitro experiments using SH-SY5Y cells to assess miR-106b's effect on TβR II translation and TGF-β signaling.
- Western blot analysis to evaluate protein levels of TβR II, Smad2/3, p-Smad2/3, and Smad6/7.
- Induction of neurodegeneration using all-trans retinoic acid and exposure to Aβ42 oligomers.
Main Results:
- miR-106b and TβR II were aberrantly expressed in AD mouse models.
- miR-106b directly inhibited TβR II translation, showing an inverse correlation with TβR II protein levels.
- miR-106b transfection induced neurodegeneration and altered TGF-β signaling components (reduced p-Smad2/3, increased Smad6/7).
- Aβ42 oligomers modulated miR-106b expression and reduced TβR II levels.
Conclusions:
- TβR II is a direct functional target of miR-106b.
- miR-106b dysregulation impairs TGF-β signaling, contributing to neurodegeneration in AD.
- This study reveals a novel miRNA-mediated regulatory mechanism in Alzheimer's disease pathogenesis.
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