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Multifunctional Exosomes Derived from M2 Macrophages with Enhanced Odontogenesis, Neurogenesis and Angiogenesis for
Yujie Wang1,2,3, Jing Mao1,2,3, Yifan Wang1,2,3
1Center of Stomatology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.
Introduction:
Exosomes derived from M2 macrophages (M2-Exos) exhibit tremendous potential for inducing tissue repair and regeneration. Herein, this study was designed to elucidate the biological roles of M2-Exos in regenerative endodontic therapy (RET) compared with exosomes from M1 macrophages (M1-Exos).
Methods:
The internalization of M1-Exos and M2-Exos by dental pulp stem cells (DPSCs) and human umbilical vein endothelial cells (HUVECs) was detected by uptake assay. The effects of M1-Exos and M2-Exos on DPSC and HUVEC behaviors, including migration, proliferation, odonto/osteogenesis, neurogenesis, and angiogenesis were determined in vitro. Then, Matrigel plugs incorporating M2-Exos were transplanted subcutaneously into nude mice. Immunostaining for vascular endothelial growth factor (VEGF) and CD31 was performed to validate capillary-like networks.
Results:
M1-Exos and M2-Exos were effectively absorbed by DPSCs and HUVECs. Compared with M1-Exos, M2-Exos considerably facilitated the proliferation and migration of DPSCs and HUVECs. Furthermore, M2-Exos robustly promoted ALP activity, mineral nodule deposition, and the odonto/osteogenic marker expression of DPSCs, indicating the powerful odonto/osteogenic potential of M2-Exos. In sharp contrast with M1-Exos, which inhibited the neurogenic capacity of DPSCs, M2-Exos contributed to a significantly augmented expression of neurogenic genes and the stronger immunostaining of Nestin. Consistent with remarkably enhanced angiogenic markers and tubular structure formation in DPSCs and HUVECs in vitro, the employment of M2-Exos gave rise to more abundant vascular networks, dramatically higher VEGF expression, and widely spread CD31+ tubular lumens in vivo, supporting the enormous pro-angiogenic capability of M2-Exos.
Conclusions:
The multifaceted roles of M2-Exos in ameliorating DPSC and HUVEC functions potentially contribute to complete functional pulp-dentin complex regeneration.
Insights
M2 exosomes significantly enhance dental pulp stem cell and endothelial cell functions, promoting proliferation, migration, odonto/osteogenesis, neurogenesis, and angiogenesis for regenerative endodontic therapy.
Area of Science:
- Regenerative Medicine
- Cell Biology
- Biotechnology
Background:
- Exosomes from M2 macrophages (M2-Exos) show promise in tissue repair and regeneration.
- This study compares M2-Exos with M1-Exos (exosomes from M1 macrophages) for regenerative endodontic therapy (RET).
Purpose of the Study:
- To elucidate the biological roles of M2-Exos in RET.
- To compare the regenerative potential of M2-Exos versus M1-Exos on dental pulp stem cells (DPSCs) and human umbilical vein endothelial cells (HUVECs).
Main Methods:
- Assessed internalization of M1-Exos and M2-Exos by DPSCs and HUVECs.
- Evaluated effects on cell proliferation, migration, odonto/osteogenesis, neurogenesis, and angiogenesis in vitro.
- Transplanted M2-Exos in Matrigel plugs into nude mice and assessed vascularization via immunostaining for VEGF and CD31.
Main Results:
- M2-Exos significantly enhanced DPSC and HUVEC proliferation and migration compared to M1-Exos.
- M2-Exos promoted DPSC odonto/osteogenesis and neurogenesis, while M1-Exos inhibited neurogenesis.
- In vivo studies showed M2-Exos significantly increased vascular network formation, VEGF expression, and CD31+ lumens.
Conclusions:
- M2-Exos exhibit potent pro-regenerative capabilities.
- M2-Exos effectively promote DPSC and HUVEC functions crucial for pulp-dentin complex regeneration.
- M2-Exos represent a promising therapeutic agent for regenerative endodontic therapy.
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