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Published on: December 30, 2017
In Situ Proefferocytosis Microspheres as Macrophage Polarity Converters Accelerate Osteoarthritis Treatment
Yong Wang1,2, Chaoyu Pu1, Zeyu Han2
1Department of Orthopedics, Laboratory of Biological Tissue Engineering and Digital Medicine, Affiliated Hospital of North Sichuan Medical College, No. 1 The South of Maoyuan Road, Nanchong, Sichuan, 637000, P. R. China.
Abstract:
Efferocytosis in macrophages typically engages an anti-inflammatory positive feedback regulatory mechanism. In osteoarthritis (OA), characterized by imbalanced inflammatory homeostasis, the proinflammatory state of macrophages in the immune microenvironment can be reversed through enhanced efferocytosis. This study develops an in situ proefferocytosis hydrogel microsphere (macrophage polarity converter, H-C@IL) for OA treatment. Immunoliposomes (IL), CD16/32 antibody-modified clodronate liposomes, are initially prepared using the Re-emulsion method. Then, the IL is loaded into CCL19-modified HAMA microspheres through microfluidic technology. In vitro, H-C@IL can specifically recruit M0 and M1 macrophages via CCL19, induce apoptosis in M1 macrophages through secondary targeting with IL, and provide "Find/Eat-me" signals to enhance in situ efferocytosis. Additionally, it promotes macrophage polarization toward the M2 phenotype. In vivo, behavioral, imaging, and histological analyses demonstrate that H-C@IL effectively facilitates macrophage polarization toward M2, inhibits inflammation, and promotes cartilage regeneration. Mechanistically, H-C@IL enhances efferocytosis by activating proteins such as PROS1 and TIMD4 in M0 macrophages. Concurrently, signaling pathways, including PQLC2-Arg-Rac1 and Pbx1/IL-10, are activated to drive the polarization of macrophages from M0 to M2. In summary, H-C@IL promotes M0 macrophage efferocytosis in situ, facilitates macrophage polarization toward M2, restores inflammatory homeostasis, and promotes cartilage regeneration, offering a comprehensive treatment strategy for OA.
Insights
This study introduces a novel hydrogel microsphere (H-C@IL) that enhances efferocytosis in macrophages, promoting anti-inflammatory responses and cartilage regeneration for osteoarthritis (OA) treatment.
Area of Science:
- Biomaterials Science
- Immunology
- Regenerative Medicine
Background:
- Osteoarthritis (OA) is characterized by inflammatory imbalance, where pro-inflammatory macrophages contribute to disease progression.
- Enhancing efferocytosis, the process of clearing apoptotic cells, can reverse macrophage pro-inflammatory states and restore immune homeostasis.
Purpose of the Study:
- To develop an in situ proefferocytosis hydrogel microsphere (H-C@IL) for osteoarthritis treatment.
- To investigate the mechanism by which H-C@IL promotes efferocytosis, M2 macrophage polarization, and cartilage regeneration.
Main Methods:
- Preparation of H-C@IL using microfluidic technology, incorporating immunoliposomes (IL) into CCL19-modified HAMA microspheres.
- In vitro assessment of macrophage recruitment, M1 apoptosis induction, efferocytosis enhancement, and M2 polarization.
- In vivo evaluation using behavioral, imaging, and histological analyses in an OA model.
Main Results:
- H-C@IL specifically recruited M0 and M1 macrophages, induced M1 apoptosis, and enhanced efferocytosis.
- In vivo studies showed H-C@IL effectively promoted M2 macrophage polarization, reduced inflammation, and stimulated cartilage regeneration.
- Mechanistic studies revealed H-C@IL activates PROS1 and TIMD4 for efferocytosis and PQLC2-Arg-Rac1 and Pbx1/IL-10 pathways for M2 polarization.
Conclusions:
- H-C@IL effectively promotes in situ efferocytosis by M0 macrophages and facilitates M2 polarization.
- This approach restores inflammatory homeostasis and promotes cartilage regeneration, offering a comprehensive therapeutic strategy for OA.
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