Humidity-Responsive Amorphous Calcium–Magnesium Pyrophosphate/Cassava Starch Scaffold for Enhanced Neurovascular Bone Regeneration

材料科学 再生(生物学) 脚手架 骨生长 无定形磷酸钙 骨愈合 生物物理学 背根神经节 生物医学工程 冶金 细胞生物学 解剖 生物 内分泌学 医学
作者
Mengmeng Yang,Xiang Cai,Cheng Wang,Pengyin Li,Shaoqing Chen,Chun Liu,Yao Wang,Kun Qian,Qiangsheng Dong,Feng Xue,Chenglin Chu,Jing Bai,Qizhan Liu,Xinye Ni
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (28): 35964-35984 被引量:2
标识
DOI:10.1021/acsami.4c03204
摘要

Developing a neurovascular bone repair scaffold with an appropriate mechanical strength remains a challenge. Calcium phosphate (CaP) is similar to human bone, but its scaffolds are inherently brittle and inactive, which require recombination with active ions and polymers for bioactivity and suitable strength. This work discussed the synthesis of amorphous magnesium-calcium pyrophosphate (AMCP) and the subsequent development of a humidity-responsive AMCP/cassava starch (CS) scaffold. The scaffold demonstrated enhanced mechanical properties by strengthening the intermolecular hydrogen bonds and ionic bonds between AMCP and CS during the gelatinization and freeze-thawing processes. The release of active ions was rapid initially and stabilized into a long-term stable release after 3 days, which is well-matched with new bone growth. The release of pyrophosphate ions endowed the scaffold with antibacterial properties. At the cellular level, the released active ions simultaneously promoted the proliferation and mineralization of osteoblasts, the proliferation and migration of endothelial cells, and the proliferation of Schwann cells. At the animal level, the scaffold was demonstrated to promote vascular growth and peripheral nerve regeneration in a rat skull defect experiment, ultimately resulting in the significant and rapid repair of bone defects. The construction of the AMCP/CS scaffold offers practical suggestions and references for neurovascular bone repair.
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