生物相容性
腐蚀
材料科学
生物降解
吻合
生物医学工程
机械强度
复合材料
冶金
外科
化学
医学
有机化学
作者
Lin Mao,Xue Cai,Zhongxin Hu,Yujie Zhou,Zhiwei Dai,Yilong Chen,Hua Huang,Rui Zan,Chengli Song
标识
DOI:10.1021/acsabm.5c00143
摘要
Magnesium (Mg) and its alloys, as next-generation materials for anastomosis staples, offer promising advantages such as biodegradability, biocompatibility, and reduced risk of long-term complications compared to traditional titanium materials. However, the performance of biodegradable staples is highly dependent on their structure. In this study, a biodegradable high-purity (HP) Mg staple with an optimized structure intended for small intestine anastomosis was developed and evaluated in vitro. The designed staple, with a diameter of 0.3 mm, featured an interior angle of 100° and a height of 3.8 mm. This design exhibited a maximum effective stress of approximately 170 MPa and an effective strain of 1.63. The staple could maintain structural integrity without fracture after 7 days of in vitro corrosion testing and exhibited a relatively high burst pressure of approximately 54.70 ± 2.51 mmHg. These findings indicate that the newly designed HP Mg staple combines superior corrosion resistance and anastomosis strength, confirming its potential for clinical application.
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