Literature DB >> 28901439

Long noncoding RNA‑p21 modulates cellular senescence via the Wnt/β‑catenin signaling pathway in mesenchymal stem cells.

Wenzheng Xia1, Lei Zhuang2, Xia Deng3, Meng Hou3.   

Abstract

Mesenchymal stem cell (MSC)‑based therapies have demonstrated efficacy in animal models of cardiovascular diseases. However, MSCs decrease in quantity and quality with age, which reduces their capacity for damage repair. Long noncoding (lnc) RNAs regulate gene transcription and the fate of post‑transcriptional mRNA, affecting a broad range of age‑associated physiological and pathological conditions, including cardiovascular disease and cancer cell senescence. However, the functional role of lncRNAs in stem cell senescence remains largely unknown. The present study isolated bone marrow‑derived MSCs from young (8‑week‑old) and aged (18‑month‑old) male C57BL/6 mice. Cell proliferation was measured using a Cell Counting kit‑8 assay, and the secretion of vascular endothelial growth factor, basic fibroblast growth factor, hepatocyte growth factor and insulin‑like growth factor was measured by ELISA. Western blotting was performed to investigate β‑catenin protein expression. Oxidative stress was evaluated by detecting reactive oxygen species, and the activity of superoxide dismutase and malondialdehyde. MSCs isolated from aged mice demonstrated reduced proliferation and paracrine signaling, and increased oxidative stress and expression of lincRNA‑p21compared with MSCs from younger mice. Silencing lincRNA‑p21 in aged MSCs using small interfering RNA (siRNA) enhanced cell growth and paracrine function, and decreased oxidative stress. These results were reversed when β‑catenin expression was silenced using siRNA. In conclusion, lincRNA‑p21 may serve a role in MSC senescence, and silencing lincRNA‑p21 may rejuvenate MSCs by interacting with the Wnt/β‑catenin signaling pathway. Targeting lincRNA‑p21 may therefore have important therapeutic implications for restoring endogenous MSCs in aged individuals.

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Year:  2017        PMID: 28901439     DOI: 10.3892/mmr.2017.7430

Source DB:  PubMed          Journal:  Mol Med Rep        ISSN: 1791-2997            Impact factor:   2.952


  11 in total

1.  Functional Regulatory Mechanisms Underlying Bone Marrow Mesenchymal Stem Cell Senescence During Cell Passages.

Authors:  T Iwata; S Ishida; N Mizuno; M Kajiya; T Nagahara; E Kaneda-Ikeda; M Yoshioka; S Munenaga; K Ouhara; T Fujita; H Kawaguchi; H Kurihara
Journal:  Cell Biochem Biophys       Date:  2021-02-09       Impact factor: 2.194

2.  Long noncoding RNA Gm31629 promotes bone regeneration by maintaining bone marrow mesenchymal stem cells activity.

Authors:  Guangping Cai; Ye Xiao; Mi Yang; Qi Guo; Tian Su; Yalin Liu; Tiejian Jiang; Chun Li
Journal:  PeerJ       Date:  2022-06-09       Impact factor: 3.061

Review 3.  Emerging Role of Non-Coding RNAs in Senescence.

Authors:  Soudeh Ghafouri-Fard; Tayyebeh Khoshbakht; Bashdar Mahmud Hussen; Aria Baniahmad; Wojciech Branicki; Mohammad Taheri; Ahmad Eghbali
Journal:  Front Cell Dev Biol       Date:  2022-07-05

4.  Mechanical stimulation induced osteogenic differentiation of BMSCs through TWIST/E2A/p21 axis.

Authors:  Qingyuan Guo; Ying Liu; Renhao Sun; Fang Yang; Pengyan Qiao; Rong Zhang; Ling Song; Lingling E; Hongchen Liu
Journal:  Biosci Rep       Date:  2020-05-29       Impact factor: 3.840

5.  Sodium hydrosulfide alleviates dexamethasone-induced cell senescence and dysfunction through targeting the miR-22/sirt1 pathway in osteoblastic MC3T3-E1 cells.

Authors:  Peng Li; Wei-Wei Mao; Shuai Zhang; Liang Zhang; Zhi-Rong Chen; Zhi-Dong Lu
Journal:  Exp Ther Med       Date:  2021-01-21       Impact factor: 2.447

Review 6.  Non-Coding RNAs Steering the Senescence-Related Progress, Properties, and Application of Mesenchymal Stem Cells.

Authors:  Jingyi Cai; Hexu Qi; Ke Yao; Yang Yao; Dian Jing; Wen Liao; Zhihe Zhao
Journal:  Front Cell Dev Biol       Date:  2021-03-19

7.  Exosomal LncRNA-NEAT1 derived from MIF-treated mesenchymal stem cells protected against doxorubicin-induced cardiac senescence through sponging miR-221-3p.

Authors:  Lei Zhuang; Wenzheng Xia; Didi Chen; Yijia Ye; Tingting Hu; Shiting Li; Meng Hou
Journal:  J Nanobiotechnology       Date:  2020-10-31       Impact factor: 10.435

8.  Ganoderic Acid D Protects Human Amniotic Mesenchymal Stem Cells against Oxidative Stress-Induced Senescence through the PERK/NRF2 Signaling Pathway.

Authors:  Yan Xu; Huan Yuan; Yi Luo; Yu-Jie Zhao; Jian-Hui Xiao
Journal:  Oxid Med Cell Longev       Date:  2020-07-27       Impact factor: 6.543

9.  TUG1 enhances high glucose-impaired endothelial progenitor cell function via miR-29c-3p/PDGF-BB/Wnt signaling.

Authors:  Yang Li; Kangkang Zhi; Shilong Han; Xue Li; Maoquan Li; Weishuai Lian; Haijun Zhang; Xiaoping Zhang
Journal:  Stem Cell Res Ther       Date:  2020-10-15       Impact factor: 6.832

Review 10.  MicroRNAs, Long Non-Coding RNAs, and Circular RNAs in the Redox Control of Cell Senescence.

Authors:  Daniele Lettieri-Barbato; Katia Aquilano; Carolina Punziano; Giuseppina Minopoli; Raffaella Faraonio
Journal:  Antioxidants (Basel)       Date:  2022-02-28
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