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用于再生医学的聚左旋乳酸(PLLA)基生物材料:加工与应用综述

Poly-l-Lactic Acid (PLLA)-Based Biomaterials for Regenerative Medicine: A Review on Processing and Applications.

作者信息

Capuana Elisa, Lopresti Francesco, Ceraulo Manuela, La Carrubba Vincenzo

机构信息

Department of Engineering, University of Palermo, RU INSTM, Viale delle Scienze, 90128 Palermo, Italy.

ATeN Center, University of Palermo, Viale delle Scienze, 90128 Palermo, Italy.

出版信息

Polymers (Basel). 2022 Mar 14;14(6):1153. doi: 10.3390/polym14061153.

Abstract

Synthetic biopolymers are effective cues to replace damaged tissue in the tissue engineering (TE) field, both for in vitro and in vivo application. Among them, poly-l-lactic acid (PLLA) has been highlighted as a biomaterial with tunable mechanical properties and biodegradability that allows for the fabrication of porous scaffolds with different micro/nanostructures via various approaches. In this review, we discuss the structure of PLLA, its main properties, and the most recent advances in overcoming its hydrophobic, synthetic nature, which limits biological signaling and protein absorption. With this aim, PLLA-based scaffolds can be exposed to surface modification or combined with other biomaterials, such as natural or synthetic polymers and bioceramics. Further, various fabrication technologies, such as phase separation, electrospinning, and 3D printing, of PLLA-based scaffolds are scrutinized along with the in vitro and in vivo applications employed in various tissue repair strategies. Overall, this review focuses on the properties and applications of PLLA in the TE field, finally affording an insight into future directions and challenges to address an effective improvement of scaffold properties.

摘要

合成生物聚合物是组织工程(TE)领域中替代受损组织的有效线索,适用于体外和体内应用。其中,聚左旋乳酸(PLLA)作为一种生物材料受到关注,它具有可调节的机械性能和生物降解性,能够通过多种方法制造具有不同微/纳米结构的多孔支架。在本综述中,我们讨论了PLLA的结构、主要特性以及在克服其疏水性和合成性质方面的最新进展,这些特性限制了生物信号传导和蛋白质吸收。为此,基于PLLA的支架可以进行表面改性或与其他生物材料结合,如天然或合成聚合物以及生物陶瓷。此外,还仔细研究了基于PLLA的支架的各种制造技术,如相分离、静电纺丝和3D打印,以及各种组织修复策略中采用的体外和体内应用。总体而言,本综述重点关注PLLA在TE领域的特性和应用,最终深入探讨未来的方向和挑战,以有效改善支架性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8982/8955974/ceddce51cd07/polymers-14-01153-g001.jpg

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