Cargando…

Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1

Rationale: The hematopoietic system and skeletal system have a close relationship, and megakaryocytes (MKs) may be involved in maintaining bone homeostasis. However, the exact role and underlying mechanism of MKs in bone formation during steady-state and stress conditions are still unclear. Methods:...

Descripción completa

Detalles Bibliográficos
Autores principales: Tang, Yong, Hu, Mengjia, Xu, Yang, Chen, Fang, Chen, Shilei, Chen, Mo, Qi, Yan, Shen, Mingqiang, Wang, Cheng, Lu, Yukai, Zhang, Zihao, Zeng, Hao, Quan, Yong, Wang, Fengchao, Su, Yongping, Zeng, Dongfeng, Wang, Song, Wang, Junping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7019172/
https://www.ncbi.nlm.nih.gov/pubmed/32104505
http://dx.doi.org/10.7150/thno.40559
_version_ 1783497465343770624
author Tang, Yong
Hu, Mengjia
Xu, Yang
Chen, Fang
Chen, Shilei
Chen, Mo
Qi, Yan
Shen, Mingqiang
Wang, Cheng
Lu, Yukai
Zhang, Zihao
Zeng, Hao
Quan, Yong
Wang, Fengchao
Su, Yongping
Zeng, Dongfeng
Wang, Song
Wang, Junping
author_facet Tang, Yong
Hu, Mengjia
Xu, Yang
Chen, Fang
Chen, Shilei
Chen, Mo
Qi, Yan
Shen, Mingqiang
Wang, Cheng
Lu, Yukai
Zhang, Zihao
Zeng, Hao
Quan, Yong
Wang, Fengchao
Su, Yongping
Zeng, Dongfeng
Wang, Song
Wang, Junping
author_sort Tang, Yong
collection PubMed
description Rationale: The hematopoietic system and skeletal system have a close relationship, and megakaryocytes (MKs) may be involved in maintaining bone homeostasis. However, the exact role and underlying mechanism of MKs in bone formation during steady-state and stress conditions are still unclear. Methods: We first evaluated the bone phenotype with MKs deficiency in bone marrow by using c-Mpl-deficient mice and MKs-conditionally deleted mice. Then, osteoblasts (OBs) proliferation and differentiation and CD31(hi)Emcn(hi) tube formation were assessed. The expression of growth factors related to bone formation in MKs was detected by RNA-sequencing and enzyme-linked immunosorbent assays (ELISAs). Mice with specific depletion of TGF-β1 in MKs were used to further verify the effect of MKs on osteogenesis and angiogenesis. Finally, MKs treatment of irradiation-induced bone injury was tested in a mouse model. Results: We found that MKs deficiency significantly impaired bone formation. Further investigations revealed that MKs could promote OBs proliferation and differentiation, as well as CD31(hi)Emcn(hi) vessels formation, by secreting high levels of TGF-β1. Consistent with these findings, mice with specific depletion of TGF-β1 in MKs displayed significantly decreased bone mass and strength. Importantly, treatment with MKs or thrombopoietin (TPO) substantially attenuated radioactive bone injury in mice by directly or indirectly increasing the level of TGF-β1 in bone marrow. MKs-derived TGF-β1 was also involved in suppressing apoptosis and promoting DNA damage repair in OBs after irradiation exposure. Conclusions: Our findings demonstrate that MKs contribute to bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1, which may offer a potential therapeutic strategy for the treatment of irradiation-induced osteoporosis.
format Online
Article
Text
id pubmed-7019172
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-70191722020-02-26 Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1 Tang, Yong Hu, Mengjia Xu, Yang Chen, Fang Chen, Shilei Chen, Mo Qi, Yan Shen, Mingqiang Wang, Cheng Lu, Yukai Zhang, Zihao Zeng, Hao Quan, Yong Wang, Fengchao Su, Yongping Zeng, Dongfeng Wang, Song Wang, Junping Theranostics Research Paper Rationale: The hematopoietic system and skeletal system have a close relationship, and megakaryocytes (MKs) may be involved in maintaining bone homeostasis. However, the exact role and underlying mechanism of MKs in bone formation during steady-state and stress conditions are still unclear. Methods: We first evaluated the bone phenotype with MKs deficiency in bone marrow by using c-Mpl-deficient mice and MKs-conditionally deleted mice. Then, osteoblasts (OBs) proliferation and differentiation and CD31(hi)Emcn(hi) tube formation were assessed. The expression of growth factors related to bone formation in MKs was detected by RNA-sequencing and enzyme-linked immunosorbent assays (ELISAs). Mice with specific depletion of TGF-β1 in MKs were used to further verify the effect of MKs on osteogenesis and angiogenesis. Finally, MKs treatment of irradiation-induced bone injury was tested in a mouse model. Results: We found that MKs deficiency significantly impaired bone formation. Further investigations revealed that MKs could promote OBs proliferation and differentiation, as well as CD31(hi)Emcn(hi) vessels formation, by secreting high levels of TGF-β1. Consistent with these findings, mice with specific depletion of TGF-β1 in MKs displayed significantly decreased bone mass and strength. Importantly, treatment with MKs or thrombopoietin (TPO) substantially attenuated radioactive bone injury in mice by directly or indirectly increasing the level of TGF-β1 in bone marrow. MKs-derived TGF-β1 was also involved in suppressing apoptosis and promoting DNA damage repair in OBs after irradiation exposure. Conclusions: Our findings demonstrate that MKs contribute to bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1, which may offer a potential therapeutic strategy for the treatment of irradiation-induced osteoporosis. Ivyspring International Publisher 2020-01-12 /pmc/articles/PMC7019172/ /pubmed/32104505 http://dx.doi.org/10.7150/thno.40559 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Tang, Yong
Hu, Mengjia
Xu, Yang
Chen, Fang
Chen, Shilei
Chen, Mo
Qi, Yan
Shen, Mingqiang
Wang, Cheng
Lu, Yukai
Zhang, Zihao
Zeng, Hao
Quan, Yong
Wang, Fengchao
Su, Yongping
Zeng, Dongfeng
Wang, Song
Wang, Junping
Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title_full Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title_fullStr Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title_full_unstemmed Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title_short Megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting TGF-β1
title_sort megakaryocytes promote bone formation through coupling osteogenesis with angiogenesis by secreting tgf-β1
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7019172/
https://www.ncbi.nlm.nih.gov/pubmed/32104505
http://dx.doi.org/10.7150/thno.40559
work_keys_str_mv AT tangyong megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT humengjia megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT xuyang megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT chenfang megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT chenshilei megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT chenmo megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT qiyan megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT shenmingqiang megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT wangcheng megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT luyukai megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT zhangzihao megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT zenghao megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT quanyong megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT wangfengchao megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT suyongping megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT zengdongfeng megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT wangsong megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1
AT wangjunping megakaryocytespromoteboneformationthroughcouplingosteogenesiswithangiogenesisbysecretingtgfb1