Literature DB >> 27283242

AMPK promotes osteogenesis and inhibits adipogenesis through AMPK-Gfi1-OPN axis.

Yu-Gang Wang1, Xin-Hua Qu1, Ying Yang1, Xiu-Guo Han1, Lei Wang1, Han Qiao1, Qi-Ming Fan2, Ting-Ting Tang3, Ke-Rong Dai4.   

Abstract

Several metabolic, genetic and oncogenic bone diseases share the common pathological phenotype of defective bone marrow stromal cell (BMSC) differentiation. Many reports in bone science in the past several years have suggested that the skeleton also has an endocrine role. The role of AMP-activated protein kinase (AMPK) as an energy metabolism sensor and how it regulates BMSC differentiation is largely unknown. In the current study, we used AMPK agonists to activate AMPK in MC3T3-E1 cells to investigate the functional roles of AMPK in osteogenesis. However, metformin and AICAR failed to activate AMPK consistently. Therefore, we established MC3T3-E1 and 3T3-L1 cell models of AMPK α subunit overexpression through lentivirus vector, in which AMPK was overactivated. AMPK hyperactivation stimulated MC3T3-E1 cell osteogenesis and inhibited 3T3-L1 cell adipogenesis. Osteopontin (OPN) mediated AMPK regulation of osteogenesis and adipogenesis. Furthermore, we provided evidence that the transcriptional repressor growth factor independence-1 (Gfi1) was downregulated and disassociated from the OPN promoter in response to AMPK activation, resulting in the upregulation of OPN. Overexpression of wild-type and dominant-negative Gfi1 modulated MC3T3-E1 osteogenesis and 3T3-L1 adipogenesis. Further evidence suggested that AMPK enhanced ectopic bone formation of MC3T3-E1 cells through the AMPK-Gfi1-OPN axis. In conclusion, AMPK was sufficient to stimulate osteogenesis of MC3T3-E1 cells and inhibit adipogenesis of 3T3-L1 cells through the AMPK-Gfi1-OPN axis. These findings helped elucidate the molecular mechanisms underlying AMPK regulation of osteogenesis and adipogenesis.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  AMP-activated protein kinase; Adipogenesis; Growth factor independence-1; Osteogenesis; Osteopontin

Mesh:

Substances:

Year:  2016        PMID: 27283242     DOI: 10.1016/j.cellsig.2016.06.004

Source DB:  PubMed          Journal:  Cell Signal        ISSN: 0898-6568            Impact factor:   4.315


  22 in total

Review 1.  Diabetes pharmacotherapy and effects on the musculoskeletal system.

Authors:  Evangelia Kalaitzoglou; John L Fowlkes; Iuliana Popescu; Kathryn M Thrailkill
Journal:  Diabetes Metab Res Rev       Date:  2018-12-20       Impact factor: 4.876

2.  Inhibition of HMGB1 reduced high glucose-induced BMSCs apoptosis via activation of AMPK and regulation of mitochondrial functions.

Authors:  Beilei Liu; Xueqi Gan; Yuwei Zhao; Jing Gao; Haiyang Yu
Journal:  J Physiol Biochem       Date:  2021-02-26       Impact factor: 4.158

3.  Metformin suppresses UHMWPE particle-induced osteolysis in the mouse calvaria by promoting polarization of macrophages to an anti-inflammatory phenotype.

Authors:  Zhao Yan; Xiaoxi Tian; Jinyu Zhu; Zifan Lu; Lifeng Yu; Dawei Zhang; Yanwu Liu; Chongfei Yang; Qingsheng Zhu; Xiaorui Cao
Journal:  Mol Med       Date:  2018-05-09       Impact factor: 6.354

4.  A novel phosphorylation by AMP-activated kinase regulates RUNX2 from ubiquitination in osteogenesis over adipogenesis.

Authors:  Suresh Chava; S Chennakesavulu; B Meher Gayatri; Aramati B M Reddy
Journal:  Cell Death Dis       Date:  2018-07-09       Impact factor: 8.469

Review 5.  Epigenetic-Based Mechanisms of Osteoblast Suppression in Multiple Myeloma Bone Disease.

Authors:  Juraj Adamik; G David Roodman; Deborah L Galson
Journal:  JBMR Plus       Date:  2019-03-15

6.  AMP-activated protein kinase complexes containing the β2 regulatory subunit are up-regulated during and contribute to adipogenesis.

Authors:  Omar J Katwan; Fatmah Alghamdi; Tarek A Almabrouk; Sarah J Mancini; Simon Kennedy; Jonathan S Oakhill; John W Scott; Ian P Salt
Journal:  Biochem J       Date:  2019-06-26       Impact factor: 3.857

7.  Strontium promotes osteogenic differentiation by activating autophagy via the the AMPK/mTOR signaling pathway in MC3T3‑E1 cells.

Authors:  You Cheng; Lunhui Huang; Yichao Wang; Qianyu Huo; Yanhong Shao; Huijing Bao; Zhaoyang Li; Yunde Liu; Xue Li
Journal:  Int J Mol Med       Date:  2019-05-30       Impact factor: 4.101

8.  Functional differences between AMPK α1 and α2 subunits in osteogenesis, osteoblast-associated induction of osteoclastogenesis, and adipogenesis.

Authors:  Yu-Gang Wang; Xiu-Guo Han; Ying Yang; Han Qiao; Ke-Rong Dai; Qi-Ming Fan; Ting-Ting Tang
Journal:  Sci Rep       Date:  2016-09-07       Impact factor: 4.379

9.  Mesenchymal stem cells and porous β-tricalcium phosphate composites prepared through stem cell screen-enrich-combine(-biomaterials) circulating system for the repair of critical size bone defects in goat tibia.

Authors:  Wenxiang Chu; Yaokai Gan; Yifu Zhuang; Xin Wang; Jie Zhao; Tingting Tang; Kerong Dai
Journal:  Stem Cell Res Ther       Date:  2018-06-13       Impact factor: 6.832

10.  XRK3F2 Inhibition of p62-ZZ Domain Signaling Rescues Myeloma-Induced GFI1-Driven Epigenetic Repression of the Runx2 Gene in Pre-osteoblasts to Overcome Differentiation Suppression.

Authors:  Juraj Adamik; Rebecca Silbermann; Silvia Marino; Quanhong Sun; Judith L Anderson; Dan Zhou; Xiang-Qun Xie; G David Roodman; Deborah L Galson
Journal:  Front Endocrinol (Lausanne)       Date:  2018-06-29       Impact factor: 5.555

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