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Modulating macrophage activities to promote endogenous bone regeneration: Biological mechanisms and engineering approaches 被引量:16

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摘要 A coordinated interaction between osteogenesis and osteoimmune microenvironment is essential for successful bone healing.In particular,macrophages play a central regulatory role in all stages of bone repair.Depending on the signals they sense,these highly plastic cells can mediate the host immune response against the exterior signals of molecular stimuli and implanted scaffolds,to exert regenerative potency to a varying extent.In this article,we first encapsulate the immunomodulatory functions of macrophages during bone regeneration into three aspects,as sweeper,mediator and instructor.We introduce the phagocytic role of macrophages in different bone healing periods(‘sweeper’)and overview a variety of paracrine cytokines released by macrophages either mediating cell mobilisation,vascularisation and matrix remodelling(‘mediator’),or directly driving the osteogenic differentiation of bone progenitors and bone repair(‘instructor’).Then,we systematically classify and discuss the emerging engineering strategies to recruit,activate and modulate the phenotype transition of macrophages,to exploit the power of endogenous macrophages to enhance the performance of engineered bone tissue.
出处 《Bioactive Materials》 SCIE 2021年第1期244-261,共18页 生物活性材料(英文)
基金 the funding grants from Fundo para o Desenvolvimento das Ciencias e da Tecnologia,Macao SAR(0018/2019/AFJ) the University of Macao(MYRG2019-00080-ICMS).
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