The mechanosensitive lncRNA Neat1 promotes osteoblast function through paraspeckle-dependent Smurf1 mRNA retention
Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological...
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Published in | Bone Research Vol. 10; no. 1; pp. 18 - 16 |
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Main Authors | , , , , , , , , , , , , , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
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London
Nature Publishing Group UK
24.02.2022
Springer Nature B.V Nature Publishing Group |
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Abstract | Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified
Neat1
, the most clearly decreased lncRNA under simulated microgravity. Of note, not only
Neat1
expression but also the specific paraspeckle structure formed by
Neat1
was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading.
Neat1
knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass.
Neat1
deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo,
Neat1
knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase
Smurf1
mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that
Neat1
plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis. |
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AbstractList | Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified Neat1, the most clearly decreased lncRNA under simulated microgravity. Of note, not only Neat1 expression but also the specific paraspeckle structure formed by Neat1 was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading. Neat1 knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass. Neat1 deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo, Neat1 knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase Smurf1 mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that Neat1 plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis. Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified Neat1 , the most clearly decreased lncRNA under simulated microgravity. Of note, not only Neat1 expression but also the specific paraspeckle structure formed by Neat1 was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading. Neat1 knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass. Neat1 deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo, Neat1 knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase Smurf1 mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that Neat1 plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis. Abstract Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified Neat1, the most clearly decreased lncRNA under simulated microgravity. Of note, not only Neat1 expression but also the specific paraspeckle structure formed by Neat1 was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading. Neat1 knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass. Neat1 deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo, Neat1 knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase Smurf1 mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that Neat1 plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis. Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified Neat1, the most clearly decreased lncRNA under simulated microgravity. Of note, not only Neat1 expression but also the specific paraspeckle structure formed by Neat1 was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading. Neat1 knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass. Neat1 deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo, Neat1 knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase Smurf1 mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that Neat1 plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis.Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading leads to bone loss. Increasing evidence has demonstrated that long noncoding RNAs (lncRNAs) play key roles in diverse biological, physiological and pathological contexts. However, the roles of lncRNAs in mechanotransduction and their relationships with bone formation remain unknown. In this study, we screened mechanosensing lncRNAs in osteoblasts and identified Neat1, the most clearly decreased lncRNA under simulated microgravity. Of note, not only Neat1 expression but also the specific paraspeckle structure formed by Neat1 was sensitive to different mechanical stimulations, which were closely associated with osteoblast function. Paraspeckles exhibited small punctate aggregates under simulated microgravity and elongated prolate or larger irregular structures under mechanical loading. Neat1 knockout mice displayed disrupted bone formation, impaired bone structure and strength, and reduced bone mass. Neat1 deficiency in osteoblasts reduced the response of osteoblasts to mechanical stimulation. In vivo, Neat1 knockout in mice weakened the bone phenotypes in response to mechanical loading and hindlimb unloading stimulation. Mechanistically, paraspeckles promoted nuclear retention of E3 ubiquitin ligase Smurf1 mRNA and downregulation of their translation, thus inhibiting ubiquitination-mediated degradation of the osteoblast master transcription factor Runx2, a Smurf1 target. Our study revealed that Neat1 plays an essential role in osteoblast function under mechanical stimulation, which provides a paradigm for the function of the lncRNA-assembled structure in response to mechanical stimulation and offers a therapeutic strategy for long-term spaceflight- or bedrest-induced bone loss and age-related osteoporosis. |
Author | Du, Ruikai Yuan, Guodong Xing, Wenjuan Wang, Yanqing Li, Qi Wang, Yinbo Xu, Youjia Sun, Weijia Zhong, Guohui Ling, Shukuan Liu, Zizhong Zhao, Yinlong Li, Yuheng Li, Youyou Li, Yingxian Kan, Guanghan Gao, Xingcheng Pan, Junjie Li, Jianwei Han, Xuan Yuan, Xinxin Tan, Yingjun Zhao, Dingsheng Jin, Xiaoyan Liu, Caizhi |
Author_xml | – sequence: 1 givenname: Caizhi surname: Liu fullname: Liu, Caizhi organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 2 givenname: Xingcheng surname: Gao fullname: Gao, Xingcheng organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 3 givenname: Yuheng surname: Li fullname: Li, Yuheng organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, The Key Laboratory of Aerospace Medicine, Ministry of Education, The Fourth Military Medical University – sequence: 4 givenname: Weijia surname: Sun fullname: Sun, Weijia organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 5 givenname: Youjia orcidid: 0000-0002-9826-4324 surname: Xu fullname: Xu, Youjia organization: The Second Affiliated Hospital of Soochow University – sequence: 6 givenname: Yingjun surname: Tan fullname: Tan, Yingjun organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 7 givenname: Ruikai surname: Du fullname: Du, Ruikai organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 8 givenname: Guohui surname: Zhong fullname: Zhong, Guohui organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, The Key Laboratory of Aerospace Medicine, Ministry of Education, The Fourth Military Medical University – sequence: 9 givenname: Dingsheng surname: Zhao fullname: Zhao, Dingsheng organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 10 givenname: Zizhong surname: Liu fullname: Liu, Zizhong organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 11 givenname: Xiaoyan surname: Jin fullname: Jin, Xiaoyan organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 12 givenname: Yinlong surname: Zhao fullname: Zhao, Yinlong organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, College of Life Sciences, Hebei Normal University – sequence: 13 givenname: Yinbo surname: Wang fullname: Wang, Yinbo organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, The Key Laboratory of Aerospace Medicine, Ministry of Education, The Fourth Military Medical University – sequence: 14 givenname: Xinxin surname: Yuan fullname: Yuan, Xinxin organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 15 givenname: Junjie surname: Pan fullname: Pan, Junjie organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, Medical College of Soochow University – sequence: 16 givenname: Guodong surname: Yuan fullname: Yuan, Guodong organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, Medical School of Southeast University – sequence: 17 givenname: Youyou surname: Li fullname: Li, Youyou organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, The Key Laboratory of Aerospace Medicine, Ministry of Education, The Fourth Military Medical University – sequence: 18 givenname: Wenjuan surname: Xing fullname: Xing, Wenjuan organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center, The Key Laboratory of Aerospace Medicine, Ministry of Education, The Fourth Military Medical University – sequence: 19 givenname: Guanghan surname: Kan fullname: Kan, Guanghan organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 20 givenname: Yanqing surname: Wang fullname: Wang, Yanqing organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 21 givenname: Qi surname: Li fullname: Li, Qi organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 22 givenname: Xuan surname: Han fullname: Han, Xuan organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 23 givenname: Jianwei surname: Li fullname: Li, Jianwei email: skylightning@126.com organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 24 givenname: Shukuan surname: Ling fullname: Ling, Shukuan email: sh2ling@126.com organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center – sequence: 25 givenname: Yingxian surname: Li fullname: Li, Yingxian email: yingxianli@aliyun.com organization: State Key Laboratory of Space Medicine Fundamentals and Application, China Astronaut Research and Training Center |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/35210394$$D View this record in MEDLINE/PubMed |
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Snippet | Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical unloading... Abstract Mechanical stimulation plays an important role in bone remodeling. Exercise-induced mechanical loading enhances bone strength, whereas mechanical... |
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Title | The mechanosensitive lncRNA Neat1 promotes osteoblast function through paraspeckle-dependent Smurf1 mRNA retention |
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