Literature DB >> 33143524

Autophagy receptor OPTN (optineurin) regulates mesenchymal stem cell fate and bone-fat balance during aging by clearing FABP3.

Zheng-Zhao Liu1,2,3,4,5, Chun-Gu Hong2,5, Wen-Bao Hu5,6, Meng-Lu Chen2,3, Ran Duan2,3, Hong-Ming Li1,2, Tao Yue1,2, Jia Cao2, Zhen-Xing Wang2, Chun-Yuan Chen1,2, Xiong-Ke Hu2, Ben Wu2, Hao-Ming Liu2, Yi-Juan Tan2, Jiang-Hua Liu1,2, Zhong-Wei Luo1,2, Yan Zhang1,2, Shan-Shan Rao2,7, Ming-Jie Luo2,7, Hao Yin1,2, Yi-Yi Wang1,2, Kun Xia1,2, Lang Xu2, Si-Yuan Tang7, Rong-Gui Hu8,9, Hui Xie1,2,3,4,8,10.   

Abstract

Senile osteoporosis (OP) is often concomitant with decreased autophagic activity. OPTN (optineurin), a macroautophagy/autophagy (hereinafter referred to as autophagy) receptor, is found to play a pivotal role in selective autophagy, coupling autophagy with bone metabolism. However, its role in osteogenesis is still mysterious. Herein, we identified Optn as a critical molecule of cell fate decision for bone marrow mesenchymal stem cells (MSCs), whose expression decreased in aged mice. Aged mice revealed osteoporotic bone loss, elevated senescence of MSCs, decreased osteogenesis, and enhanced adipogenesis, as well as optn-/ - mice. Importantly, restoring Optn by transplanting wild-type MSCs to optn-/ - mice or infecting optn-/ - mice with Optn-containing lentivirus rescued bone loss. The introduction of a loss-of-function mutant of OptnK193R failed to reestablish a bone-fat balance. We further identified FABP3 (fatty acid binding protein 3, muscle and heart) as a novel selective autophagy substrate of OPTN. FABP3 promoted adipogenesis and inhibited osteogenesis of MSCs. Knockdown of FABP3 alleviated bone loss in optn-/ - mice and aged mice. Our study revealed that reduced OPTN expression during aging might lead to OP due to a lack of FABP3 degradation via selective autophagy. FABP3 accumulation impaired osteogenesis of MSCs, leading to the occurrence of OP. Thus, reactivating OPTN or inhibiting FABP3 would open a new avenue to treat senile OP.Abbreviations: ADIPOQ: adiponectin, C1Q and collagen domain containing; ALPL: alkaline phosphatase, liver/bone/kidney; BGLAP/OC/osteocalcin: bone gamma carboxyglutamate protein; BFR/BS: bone formation rate/bone surface; CALCOCO2/NDP52: calcium binding and coiled-coil domain 2; CDKN1A/p21: cyclin-dependent kinase inhibitor 1A; CDKN2A/p16: cyclin dependent kinase inhibitor 2A; CDKN2B/p15: cyclin dependent kinase inhibitor 2B; CEBPA: CCAAT/enhancer binding protein (C/EBP), alpha; COL1A1: collagen, type I, alpha 1; Ct. BV/TV: cortical bone volume fraction; Ct. Th: cortical thickness; Es. Pm: endocortical perimeter; FABP4/Ap2: fatty acid binding protein 4, adipocyte; H2AX: H2A.X variant histone; HE: hematoxylin and eosin; MAP1LC3B: microtubule-associated protein 1 light chain 3 beta; MAR: mineral apposition rate; MSCs: bone marrow mesenchymal stem cells; NBR1: NBR1, autophagy cargo receptor; OP: osteoporosis; OPTN: optineurin; PDB: Paget disease of bone; PPARG: peroxisome proliferator activated receptor gamma; Ps. Pm: periosteal perimeter; qRT-PCR: quantitative real-time PCR; γH2AX: Phosphorylation of the Serine residue of H2AX; ROS: reactive oxygen species; RUNX2: runt related transcription factor 2; SA-GLB1: senescence-associated (SA)-GLB1 (galactosidase, beta 1); SP7/Osx/Osterix: Sp7 transcription factor 7; SQSTM1/p62: sequestosome 1; TAX1BP1: Tax1 (human T cell leukemia virus type I) binding protein 1; Tb. BV/TV: trabecular bone volume fraction; Tb. N: trabecular number; Tb. Sp: trabecular separation; Tb. Th: trabecular thickness; μCT: micro computed tomography.

Entities:  

Keywords:  Adipogenesis; autophagy; bone metabolism; fabp3; mesenchymal stem cell; optineurin; osteogenesis; osteoporosis; senescence

Mesh:

Substances:

Year:  2020        PMID: 33143524      PMCID: PMC8526045          DOI: 10.1080/15548627.2020.1839286

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  43 in total

1.  Contributions of the measles virus nucleocapsid gene and the SQSTM1/p62(P392L) mutation to Paget's disease.

Authors:  Noriyoshi Kurihara; Yuko Hiruma; Kei Yamana; Laëtitia Michou; Côme Rousseau; Jean Morissette; Deborah L Galson; Jumpei Teramachi; Hua Zhou; David W Dempster; Jolene J Windle; Jacques P Brown; G David Roodman
Journal:  Cell Metab       Date:  2011-01-05       Impact factor: 27.287

2.  MaxQuant enables high peptide identification rates, individualized p.p.b.-range mass accuracies and proteome-wide protein quantification.

Authors:  Jürgen Cox; Matthias Mann
Journal:  Nat Biotechnol       Date:  2008-11-30       Impact factor: 54.908

3.  Decreased activity of osteocyte autophagy with aging may contribute to the bone loss in senile population.

Authors:  Ke Chen; Yue-Hua Yang; Sheng-Dan Jiang; Lei-Sheng Jiang
Journal:  Histochem Cell Biol       Date:  2014-02-20       Impact factor: 4.304

4.  Rapamycin reduces severity of senile osteoporosis by activating osteocyte autophagy.

Authors:  D Luo; H Ren; T Li; K Lian; D Lin
Journal:  Osteoporos Int       Date:  2015-09-22       Impact factor: 4.507

5.  ROS, mitochondria and the regulation of autophagy.

Authors:  Ruth Scherz-Shouval; Zvulun Elazar
Journal:  Trends Cell Biol       Date:  2007-09-04       Impact factor: 20.808

6.  Suppression of autophagy in osteocytes mimics skeletal aging.

Authors:  Melda Onal; Marilina Piemontese; Jinhu Xiong; Yiying Wang; Li Han; Shiqiao Ye; Masaaki Komatsu; Martin Selig; Robert S Weinstein; Haibo Zhao; Robert L Jilka; Maria Almeida; Stavros C Manolagas; Charles A O'Brien
Journal:  J Biol Chem       Date:  2013-05-03       Impact factor: 5.157

7.  Beclin1 Modulates Bone Homeostasis by Regulating Osteoclast and Chondrocyte Differentiation.

Authors:  Atsushi Arai; Sol Kim; Vadim Goldshteyn; Terresa Kim; No-Hee Park; Cun-Yu Wang; Reuben H Kim
Journal:  J Bone Miner Res       Date:  2019-07-30       Impact factor: 6.390

8.  Expression of the autophagy substrate SQSTM1/p62 is restored during prolonged starvation depending on transcriptional upregulation and autophagy-derived amino acids.

Authors:  Mayurbhai Himatbhai Sahani; Eisuke Itakura; Noboru Mizushima
Journal:  Autophagy       Date:  2014-01-03       Impact factor: 16.016

Review 9.  Autophagy as a promoter of longevity: insights from model organisms.

Authors:  Malene Hansen; David C Rubinsztein; David W Walker
Journal:  Nat Rev Mol Cell Biol       Date:  2018-09       Impact factor: 94.444

10.  Critical illness-induced bone loss is related to deficient autophagy and histone hypomethylation.

Authors:  Helen C Owen; Ineke Vanhees; Jan Gunst; Sophie Van Cromphaut; Greet Van den Berghe
Journal:  Intensive Care Med Exp       Date:  2015-06-21
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  19 in total

Review 1.  Autophagy in major human diseases.

Authors:  Daniel J Klionsky; Giulia Petroni; Ravi K Amaravadi; Eric H Baehrecke; Andrea Ballabio; Patricia Boya; José Manuel Bravo-San Pedro; Ken Cadwell; Francesco Cecconi; Augustine M K Choi; Mary E Choi; Charleen T Chu; Patrice Codogno; Maria Isabel Colombo; Ana Maria Cuervo; Vojo Deretic; Ivan Dikic; Zvulun Elazar; Eeva-Liisa Eskelinen; Gian Maria Fimia; David A Gewirtz; Douglas R Green; Malene Hansen; Marja Jäättelä; Terje Johansen; Gábor Juhász; Vassiliki Karantza; Claudine Kraft; Guido Kroemer; Nicholas T Ktistakis; Sharad Kumar; Carlos Lopez-Otin; Kay F Macleod; Frank Madeo; Jennifer Martinez; Alicia Meléndez; Noboru Mizushima; Christian Münz; Josef M Penninger; Rushika M Perera; Mauro Piacentini; Fulvio Reggiori; David C Rubinsztein; Kevin M Ryan; Junichi Sadoshima; Laura Santambrogio; Luca Scorrano; Hans-Uwe Simon; Anna Katharina Simon; Anne Simonsen; Alexandra Stolz; Nektarios Tavernarakis; Sharon A Tooze; Tamotsu Yoshimori; Junying Yuan; Zhenyu Yue; Qing Zhong; Lorenzo Galluzzi; Federico Pietrocola
Journal:  EMBO J       Date:  2021-08-30       Impact factor: 14.012

2.  Toll-like receptor 9 (TLR9) gene deletion-mediated fracture healing in type II diabetic osteoporosis associates with inhibition of the nuclear factor-kappa B (NF-κB) signaling pathway.

Authors:  Jiakai Han; Qian Zheng; Yongxia Cheng; Yong Liu; Yuxin Bai; Bin Yan; Sufen Guo; Jianbo Yu; Xinxin Li; Chong Wang
Journal:  Bioengineered       Date:  2022-05       Impact factor: 6.832

3.  Optineurin promotes myogenesis during muscle regeneration in mice by autophagic degradation of GSK3β.

Authors:  Xiao Chen Shi; Bo Xia; Jian Feng Zhang; Rui Xin Zhang; Dan Yang Zhang; Huan Liu; Bao Cai Xie; Yong Liang Wang; Jiang Wei Wu
Journal:  PLoS Biol       Date:  2022-04-27       Impact factor: 9.593

Review 4.  Emerging views of OPTN (optineurin) function in the autophagic process associated with disease.

Authors:  Yueping Qiu; Jincheng Wang; Hui Li; Bo Yang; Jiajia Wang; Qiaojun He; Qinjie Weng
Journal:  Autophagy       Date:  2021-04-13       Impact factor: 16.016

5.  Inhibition of miR-199a-5p rejuvenates aged mesenchymal stem cells derived from patients with idiopathic pulmonary fibrosis and improves their therapeutic efficacy in experimental pulmonary fibrosis.

Authors:  Linli Shi; Qian Han; Yimei Hong; Weifeng Li; Gencheng Gong; Jiangyu Cui; Mengmeng Mao; Xiaoting Liang; Bei Hu; Xin Li; Qun Luo; Yuelin Zhang
Journal:  Stem Cell Res Ther       Date:  2021-02-25       Impact factor: 6.832

6.  Extracellular Vesicles from Child Gut Microbiota Enter into Bone to Preserve Bone Mass and Strength.

Authors:  Jiang-Hua Liu; Chun-Yuan Chen; Zheng-Zhao Liu; Zhong-Wei Luo; Shan-Shan Rao; Ling Jin; Teng-Fei Wan; Tao Yue; Yi-Juan Tan; Hao Yin; Fei Yang; Fei-Yu Huang; Jian Guo; Yi-Yi Wang; Kun Xia; Jia Cao; Zhen-Xing Wang; Chun-Gu Hong; Ming-Jie Luo; Xiong-Ke Hu; Yi-Wei Liu; Wei Du; Juan Luo; Yin Hu; Yan Zhang; Jie Huang; Hong-Ming Li; Ben Wu; Hao-Ming Liu; Tuan-Hui Chen; Yu-Xuan Qian; You-You Li; Shi-Kai Feng; Yang Chen; Lu-Yue Qi; Ran Xu; Si-Yuan Tang; Hui Xie
Journal:  Adv Sci (Weinh)       Date:  2021-02-17       Impact factor: 16.806

7.  Metformin promotes histone deacetylation of optineurin and suppresses tumour growth through autophagy inhibition in ocular melanoma.

Authors:  Ai Zhuang; Peiwei Chai; Shaoyun Wang; Sipeng Zuo; Jie Yu; Shichong Jia; Shengfang Ge; Renbing Jia; Yixiong Zhou; Wodong Shi; Xiaofang Xu; Jing Ruan; Xianqun Fan
Journal:  Clin Transl Med       Date:  2022-01

8.  Pim1 knockout alleviates sarcopenia in aging mice via reducing adipogenic differentiation of PDGFRα+ mesenchymal progenitors.

Authors:  Guo-Kai Shang; Lu Han; Zhi-Hao Wang; Ming Song; Di Wang; Yan-Min Tan; Yi-Hui Li; Yu-Lin Li; Wei Zhang; Ming Zhong
Journal:  J Cachexia Sarcopenia Muscle       Date:  2021-08-25       Impact factor: 12.910

9.  Alkbh1-mediated DNA N6-methyladenine modification regulates bone marrow mesenchymal stem cell fate during skeletal aging.

Authors:  Guang-Ping Cai; Ya-Lin Liu; Li-Ping Luo; Ye Xiao; Tie-Jian Jiang; Jian Yuan; Min Wang
Journal:  Cell Prolif       Date:  2022-01-11       Impact factor: 6.831

10.  Curcumin Alleviates the Senescence of Canine Bone Marrow Mesenchymal Stem Cells during In Vitro Expansion by Activating the Autophagy Pathway.

Authors:  Jiaqiang Deng; Ping Ouyang; Weiyao Li; Lijun Zhong; Congwei Gu; Liuhong Shen; Suizhong Cao; Lizi Yin; Zhihua Ren; Zhicai Zuo; Junliang Deng; Qigui Yan; Shumin Yu
Journal:  Int J Mol Sci       Date:  2021-10-21       Impact factor: 5.923

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