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聚左旋乳酸(PLLA)/聚右旋乳酸(PDLA)立体复合物与表面改性氢氧化镁纳米颗粒增强聚左旋乳酸的机械性能和抗炎作用

Enhanced Mechanical Properties and Anti-Inflammation of Poly(L-Lactic Acid) by Stereocomplexes of PLLA/PDLA and Surface-Modified Magnesium Hydroxide Nanoparticles.

作者信息

Baek Seung-Woon, Kim Jun Hyuk, Song Duck Hyun, Kim Da-Seul, Park Chun Gwon, Han Dong Keun

机构信息

Department of Biomedical Science, CHA University, 335 Pangyo-ro, Bundang-gu, Seongnam-si 13488, Korea.

Department of Biomedical Engineering, SKKU Institute for Convergence, Sungkyunkwan University (SKKU), 2066 Seobu-ro, Jangan-gu, Suwon-si 16419, Korea.

出版信息

Polymers (Basel). 2022 Sep 10;14(18):3790. doi: 10.3390/polym14183790.

Abstract

Poly(L-lactic acid) (PLLA), as a biodegradable polymer, has attracted attention for use as a biomaterial. In order to apply PLLA as a cardiovascular stent, stronger mechanical properties and anti-inflammatory effects against acidic by-products are required. In this study, PLLA/PDLA stereocomplex microparticles (SC) were developed and surface-modified magnesium hydroxide (MH) nanoparticles with oligolactide were combined with these PLLA composites. The SC improved the mechanical properties of the PLLA composites through the formation of stereocomplex structures. The surface-modified MH nanoparticles showed enhanced mechanical properties due to the stereocomplex structures formed by PLLA chains and inhibited inflammatory responses by pH neutralization as a result of MH. Additionally, the MH nanoparticles containing PLLA composites had antibacterial effects and increased the viability of human vascular endothelial cells. This technology is expected to have great potential in the development of PLLA composite materials for the production of various medical devices, such as cardiovascular stents.

摘要

聚(L-乳酸)(PLLA)作为一种可生物降解的聚合物,作为生物材料已引起关注。为了将PLLA用作心血管支架,需要更强的机械性能和对酸性副产物的抗炎作用。在本研究中,开发了PLLA/PDLA立体复合物微粒(SC),并将用低聚丙交酯进行表面改性的氢氧化镁(MH)纳米颗粒与这些PLLA复合材料相结合。SC通过形成立体复合物结构改善了PLLA复合材料的机械性能。表面改性的MH纳米颗粒由于PLLA链形成的立体复合物结构而表现出增强的机械性能,并通过MH进行pH中和抑制炎症反应。此外,含MH纳米颗粒的PLLA复合材料具有抗菌作用,并提高了人血管内皮细胞的活力。这项技术有望在开发用于生产各种医疗设备(如心血管支架)的PLLA复合材料方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/648e/9504497/34a0e6005a48/polymers-14-03790-g001.jpg

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