Literature DB >> 34342981

Capturing Magnesium Ions via Microfluidic Hydrogel Microspheres for Promoting Cancellous Bone Regeneration.

Zhenyu Zhao1,2, Gen Li2, Huitong Ruan2, Keyi Chen1, Zhengwei Cai2, Guanghua Lu1, Runmin Li1, Lianfu Deng2, Ming Cai1, Wenguo Cui2.   

Abstract

Metal ions are important trace elements in the human body, which directly affect the human metabolism and the regeneration of damaged tissues. For instance, the advanced combination of magnesium ions (Mg2+) and bone repair materials make the composite materials have the function of promoting vascular repair and enhancing the adhesion of osteoblasts. Herein, inspired by magnets to attract metals, we utilized the coordination reaction of metal ion ligand to construct a bisphosphonate-functionalized injectable hydrogel microsphere (GelMA-BP-Mg) which could promote cancellous bone reconstruction of osteoporotic bone defect via capturing Mg2+. By grafting bisphosphonate (BP) on GelMA microspheres, GelMA-BP microspheres could produce powerful Mg2+ capture ability and sustained release performance through coordination reaction, while sustained release BP has bone-targeting properties. In the injectable GelMA-BP-Mg microsphere system, the atomic percentage of captured Mg2+ was 0.6%, and the captured Mg2+ could be effectively released for 18 days. These proved that the composite microspheres could effectively capture Mg2+ and provided the basis for the composite microspheres to activate osteoblasts and endothelial cells and inhibit osteoclasts. Both in vivo and in vitro experimental results revealed that the magnet-inspired Mg2+-capturing composite microspheres are beneficial to osteogenesis and angiogenesis by stimulating osteoblasts and endothelial cells while restraining osteoclasts, and ultimately effectively promote cancellous bone regeneration. This study could provide some meaningful conceptions for the treatment of osteoporotic bone defects on the basis of metal ions.

Entities:  

Keywords:  bone regeneration; capturing; hydrogel microspheres; magnesium ions; microfluidic

Year:  2021        PMID: 34342981     DOI: 10.1021/acsnano.1c02147

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  11 in total

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4.  Bisphosphonate-based hydrogel mediates biomimetic negative feedback regulation of osteoclastic activity to promote bone regeneration.

Authors:  Zhuo Li; Haixing Wang; Kunyu Zhang; Boguang Yang; Xian Xie; Zhengmeng Yang; Lingchi Kong; Peng Shi; Yuan Zhang; Yi-Ping Ho; Zhi-Yong Zhang; Gang Li; Liming Bian
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9.  Rotator cuff repair with biodegradable high-purity magnesium suture anchor in sheep model.

Authors:  Yudie Chen; Yu Sun; Xinhui Wu; Jie Lou; Xiaonong Zhang; Zhaoxiang Peng
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10.  Encapsulated vaterite-calcite CaCO3 particles loaded with Mg2+ and Cu2+ ions with sustained release promoting osteogenesis and angiogenesis.

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