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用于软组织工程应用的含纳米黏土和氧化石墨烯的可生物降解聚(癸二酸丙二醇酯-共-明胶)的制备和性能研究。

Preparation and properties investigation of biodegradable poly (glycerol sebacate-co-gelatin) containing nanoclay and graphene oxide for soft tissue engineering applications.

机构信息

School of Chemical Engineering, College of Engineering, University of Tehran, Tehran, Iran.

Applied Biotechnology Research Center, Baqiyatallah University of Medical Sciences, Tehran, Iran.

出版信息

J Biomed Mater Res B Appl Biomater. 2022 Oct;110(10):2241-2257. doi: 10.1002/jbm.b.35073. Epub 2022 Apr 25.

Abstract

This study has attempted to systematically investigate the influence of nanoclay and graphene oxide (GO) on thermal, mechanical, hydrophobic, and, most importantly, biological properties of poly(glycerol sebacate)/gelatin (PGS/gel) nanocomposites. The PGS/gel copolymer nanocomposites were successfully synthesized via in situ polymerization, approved by rudimentary characterization methods. The nanofillers were appropriately dispersed within the elastomeric matrix according to morphological studies. Also, the fillers posed as a hydrophobic entity that slightly decreased the hydrophilic properties of PGS/gel. This could be sensed clearly in hybrid composite due to the robust network of GO and clay. Water contact angle values for gelatin-contained nanocomposites were reported in the range of 38.42° to 66.7°, indicating the hydrophilic nature of the prepared samples. Thermal and mechanical studies of nanocomposites displayed rather contradicting results as the former improved while a slight decrease in the latter was noticed compared to the pristine specimens. In dry conditions, their storage modulus was in the range of 0.94-6.4 MPa, making them suitable for mimicking some soft tissues. The swelling ratio for nanocomposites containing nanoparticles was associated with an ascending trend so that GO improved the swelling rate by up to 45%. Biological analyses, such as Ames and in vitro cell viability tests, exhibited promising outcomes. As for the mutagenesis effect, the PGS and hybrid samples showed negative results. The presence of functional groups on the nanofillers' surface positively influenced the cells' metabolic activity as well as its attachment to the matrix. After 7 days, the cell proliferation rate resulted in an 82% improvement for the GO-containing nanocomposite, significantly higher than its neat counterpart (65%). This study has shown the feasibility of the prepared bio-elastomer nanocomposites for diverse tissue engineering applications.

摘要

本研究试图系统地研究纳米粘土和氧化石墨烯 (GO) 对聚(丙交酯二酸甘油酯)/明胶 (PGS/gel) 纳米复合材料的热性能、力学性能、疏水性以及最重要的生物性能的影响。通过原位聚合成功合成了 PGS/gel 共聚物纳米复合材料,通过初步的表征方法进行了验证。根据形态学研究,纳米填料在弹性体基质中得到了适当的分散。此外,由于 GO 和粘土的强网络,填料表现为疏水性实体,略微降低了 PGS/gel 的亲水性。由于复合材料中含有明胶,因此水接触角值在 38.42°至 66.7°范围内,表明所制备样品的亲水性。纳米复合材料的热学和力学研究结果相互矛盾,前者有所提高,而后者与原始样品相比略有下降。在干燥条件下,它们的储能模量在 0.94-6.4 MPa 范围内,使它们适合模拟某些软组织。含有纳米颗粒的纳米复合材料的溶胀比呈上升趋势,GO 可将溶胀率提高 45%。生物分析,如 Ames 和体外细胞活力测试,显示出了有希望的结果。就诱变效应而言,PGS 和杂化样品显示出阴性结果。纳米填料表面上的官能团对细胞的代谢活性及其与基质的附着产生了积极的影响。7 天后,GO 含量纳米复合材料的细胞增殖率提高了 82%,明显高于其纯样品(65%)。本研究表明,所制备的生物弹性体纳米复合材料具有用于各种组织工程应用的可行性。

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