Li Ying, Chu Zhaowei, Li Xiaoming, Ding Xili, Guo Meng, Zhao Haoran, Yao Jie, Wang Lizhen, Cai Qiang, Fan Yubo
School of Biological Science and Medical Engineering, Key Laboratory for Biomechanics and Mechanobiology of Ministry of Education, International Research Center for Implantable and Interventional Medical Devices, Beihang University, Beijing 100191, People's Republic of China.
Department of Biomedical Engineer, University of Cincinnati, Cincinnati, OH 45221, USA.
Regen Biomater. 2017 Jun;4(3):179-190. doi: 10.1093/rb/rbx009. Epub 2017 Apr 17.
Aliphatic biodegradable polyesters have been the most widely used synthetic polymers for developing biodegradable devices as alternatives for the currently used permanent medical devices. The performances during biodegradation process play crucial roles for final realization of their functions. Because physiological and biochemical environment significantly affects biodegradation process, large numbers of studies on effects of mechanical loads on the degradation of aliphatic biodegradable polyesters have been launched during last decades. In this review article, we discussed the mechanism of biodegradation and several different mechanical loads that have been reported to affect the biodegradation process. Other physiological and biochemical factors related to mechanical loads were also discussed. The mechanical load could change the conformational strain energy and morphology to weaken the stability of the polymer. Besides, the load and pattern could accelerate the loss of intrinsic mechanical properties of polymers. This indicated that investigations into effects of mechanical loads on the degradation should be indispensable. More combination condition of mechanical loads and multiple factors should be considered in order to keep the degradation rate controllable and evaluate the degradation process accurately. Only then can the degradable devise achieve the desired effects and further expand the special applications of aliphatic biodegradable polyesters.
脂肪族可生物降解聚酯是开发可生物降解装置最广泛使用的合成聚合物,可作为目前使用的永久性医疗装置的替代品。生物降解过程中的性能对其功能的最终实现起着关键作用。由于生理和生化环境会显著影响生物降解过程,在过去几十年中,人们开展了大量关于机械负荷对脂肪族可生物降解聚酯降解影响的研究。在这篇综述文章中,我们讨论了生物降解的机制以及据报道会影响生物降解过程的几种不同机械负荷。还讨论了与机械负荷相关的其他生理和生化因素。机械负荷会改变构象应变能和形态,从而削弱聚合物的稳定性。此外,负荷和模式会加速聚合物固有机械性能的丧失。这表明对机械负荷对降解影响的研究不可或缺。为了使降解速率可控并准确评估降解过程,应考虑更多机械负荷与多种因素的组合情况。只有这样,可降解装置才能达到预期效果,并进一步拓展脂肪族可生物降解聚酯的特殊应用。