Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model

Abstract Background Although increasing evidence has demonstrated that human dental pulp stem cells (hDPSCs) are efficacious for the clinical treatment of skeletal disorders, the underlying mechanisms remain incompletely understood. Osteoarthritis (OA) is one of the most common degenerative disorder...

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Main Authors: Pei-Lin Li, Yu-Xing Wang, Zhi-Dong Zhao, Zhi-Ling Li, Jia-Wu Liang, Qian Wang, Bo-Feng Yin, Rui-Cong Hao, Meng-Yue Han, Li Ding, Chu-Tse Wu, Heng Zhu
Format: Article
Language:English
Published: BMC 2021-05-01
Series:Stem Cell Research & Therapy
Subjects:
Online Access:https://doi.org/10.1186/s13287-021-02353-2
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spelling doaj-e2ad25e0f7ea40f9bd001f66cf3306d92021-05-02T11:10:01ZengBMCStem Cell Research & Therapy1757-65122021-05-0112111510.1186/s13287-021-02353-2Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis modelPei-Lin Li0Yu-Xing Wang1Zhi-Dong Zhao2Zhi-Ling Li3Jia-Wu Liang4Qian Wang5Bo-Feng Yin6Rui-Cong Hao7Meng-Yue Han8Li Ding9Chu-Tse Wu10Heng Zhu11Beijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineBeijing Institute of Radiation MedicineAbstract Background Although increasing evidence has demonstrated that human dental pulp stem cells (hDPSCs) are efficacious for the clinical treatment of skeletal disorders, the underlying mechanisms remain incompletely understood. Osteoarthritis (OA) is one of the most common degenerative disorders in joints and is characterized by gradual and irreversible cartilaginous tissue damage. Notably, immune factors were newly identified to be closely related to OA development. In this study, we explored the modulatory effects of clinical-grade hDPSCs on osteoarthritic macrophages and their protective effects on cartilaginous tissues in OA joints. Methods The cell morphology, immunophenotype, and inflammatory factor expression of osteoarthritic macrophages were explored by phase contrast microscope, transmission electron microscopy, immunostaining, flow cytometry, quantitative polymerase chain reaction, and enzyme linked immunosorbent assay, respectively. Additionally, the factors and signaling pathways that suppressed macrophage activation by hDPSCs were determined by enzyme-linked immunosorbent assay and western-blotting. Furthermore, hDPSCs were administered to a rabbit knee OA model via intra-articular injection. Macrophage activation in vivo and cartilaginous tissue damage were also evaluated by pathological analysis. Results We found that hDPSCs markedly inhibited osteoarthritic macrophage activation in vitro. The cell morphology, immunophenotype, and inflammatory factor expression of osteoarthritic macrophages changed into less inflammatory status in the presence of hDPSCs. Mechanistically, we observed that hDPSC-derived hepatocyte growth factor and transforming growth factor β1 mediated the suppressive effects on osteoarthritic macrophages. Moreover, phosphorylation of MAPK pathway proteins contributed to osteoarthritic macrophage activation, and hDPSCs suppressed their activation by partially inactivating those pathways. Most importantly, injected hDPSCs inhibited macrophage activation in osteochondral tissues in a rabbit knee OA model in vivo. Further histological analysis showed that hDPSCs alleviated cartilaginous damage to knee joints. Conclusions In summary, our findings reveal a novel function for hDPSCs in suppressing osteoarthritic macrophages and suggest that macrophages are efficient cellular targets of hDPSCs for alleviation of cartilaginous damage in OA. Graphical abstract hDPSCs treat OA via an osteoarthritic macrophages-dependent mechanisms. hDPSCs suppress the activation of osteoarthritic macrophages in vitro and in vivo and alleviate cartilaginous lesions in OA models.https://doi.org/10.1186/s13287-021-02353-2Human dental pulp stem cellsOsteoarthritic macrophagesCartilaginous damageOsteoarthritis
collection DOAJ
language English
format Article
sources DOAJ
author Pei-Lin Li
Yu-Xing Wang
Zhi-Dong Zhao
Zhi-Ling Li
Jia-Wu Liang
Qian Wang
Bo-Feng Yin
Rui-Cong Hao
Meng-Yue Han
Li Ding
Chu-Tse Wu
Heng Zhu
spellingShingle Pei-Lin Li
Yu-Xing Wang
Zhi-Dong Zhao
Zhi-Ling Li
Jia-Wu Liang
Qian Wang
Bo-Feng Yin
Rui-Cong Hao
Meng-Yue Han
Li Ding
Chu-Tse Wu
Heng Zhu
Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
Stem Cell Research & Therapy
Human dental pulp stem cells
Osteoarthritic macrophages
Cartilaginous damage
Osteoarthritis
author_facet Pei-Lin Li
Yu-Xing Wang
Zhi-Dong Zhao
Zhi-Ling Li
Jia-Wu Liang
Qian Wang
Bo-Feng Yin
Rui-Cong Hao
Meng-Yue Han
Li Ding
Chu-Tse Wu
Heng Zhu
author_sort Pei-Lin Li
title Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
title_short Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
title_full Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
title_fullStr Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
title_full_unstemmed Clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
title_sort clinical-grade human dental pulp stem cells suppressed the activation of osteoarthritic macrophages and attenuated cartilaginous damage in a rabbit osteoarthritis model
publisher BMC
series Stem Cell Research & Therapy
issn 1757-6512
publishDate 2021-05-01
description Abstract Background Although increasing evidence has demonstrated that human dental pulp stem cells (hDPSCs) are efficacious for the clinical treatment of skeletal disorders, the underlying mechanisms remain incompletely understood. Osteoarthritis (OA) is one of the most common degenerative disorders in joints and is characterized by gradual and irreversible cartilaginous tissue damage. Notably, immune factors were newly identified to be closely related to OA development. In this study, we explored the modulatory effects of clinical-grade hDPSCs on osteoarthritic macrophages and their protective effects on cartilaginous tissues in OA joints. Methods The cell morphology, immunophenotype, and inflammatory factor expression of osteoarthritic macrophages were explored by phase contrast microscope, transmission electron microscopy, immunostaining, flow cytometry, quantitative polymerase chain reaction, and enzyme linked immunosorbent assay, respectively. Additionally, the factors and signaling pathways that suppressed macrophage activation by hDPSCs were determined by enzyme-linked immunosorbent assay and western-blotting. Furthermore, hDPSCs were administered to a rabbit knee OA model via intra-articular injection. Macrophage activation in vivo and cartilaginous tissue damage were also evaluated by pathological analysis. Results We found that hDPSCs markedly inhibited osteoarthritic macrophage activation in vitro. The cell morphology, immunophenotype, and inflammatory factor expression of osteoarthritic macrophages changed into less inflammatory status in the presence of hDPSCs. Mechanistically, we observed that hDPSC-derived hepatocyte growth factor and transforming growth factor β1 mediated the suppressive effects on osteoarthritic macrophages. Moreover, phosphorylation of MAPK pathway proteins contributed to osteoarthritic macrophage activation, and hDPSCs suppressed their activation by partially inactivating those pathways. Most importantly, injected hDPSCs inhibited macrophage activation in osteochondral tissues in a rabbit knee OA model in vivo. Further histological analysis showed that hDPSCs alleviated cartilaginous damage to knee joints. Conclusions In summary, our findings reveal a novel function for hDPSCs in suppressing osteoarthritic macrophages and suggest that macrophages are efficient cellular targets of hDPSCs for alleviation of cartilaginous damage in OA. Graphical abstract hDPSCs treat OA via an osteoarthritic macrophages-dependent mechanisms. hDPSCs suppress the activation of osteoarthritic macrophages in vitro and in vivo and alleviate cartilaginous lesions in OA models.
topic Human dental pulp stem cells
Osteoarthritic macrophages
Cartilaginous damage
Osteoarthritis
url https://doi.org/10.1186/s13287-021-02353-2
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