用于神经组织工程的石墨烯和羟基磷灰石增强明胶/PGS电纺纳米复合材料支架

IF 5 3区 工程技术 Q2 ENGINEERING, ENVIRONMENTAL
Zahra Sokhani-Dastjerdi, Mehdi Ebrahimian-Hosseinabadi, Anousheh Zargar Kharazi
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引用次数: 0

摘要

由于神经组织的再生能力有限,神经组织损伤仍然是一个重大的临床挑战。因此,开发具有生物相容性、导电性和机械坚固性的支架对于支持神经再生至关重要。本研究考察了由明胶/聚甘油癸二酸酯(凝胶/PGS)及其含有石墨烯(Gr)和羟基磷灰石纳米颗粒(HA)的纳米复合材料变体制成的电纺丝支架的机械性能、电导率、降解行为和细胞毒性。石墨烯的加入显著提高了支架的抗拉强度和刚度。凝胶/PGS/1Gr/3HA支架的力学性能最高,抗拉强度为36.15 MPa,断裂拉伸应变为7.11%。电阻抗测量显示,石墨烯的加入显著提高了导电性能,而羟基磷灰石的添加量分别为3%和6%,由于羟基磷灰石的绝缘性能,降低了导电性能。降解测试表明,与凝胶/PGS支架相比,石墨烯和透明质酸支架的降解速度较慢,这是由于石墨烯的亲水性降低和透明质酸的晶体结构。纳米复合材料支架具有较高的生物相容性,无细胞毒性作用,且与PC12细胞具有良好的粘附性。综上所述,凝胶/PGS/1Gr/3HA电纺丝纳米复合材料作为神经组织工程的功能平台具有很大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Graphene and Hydroxyapatite-Enhanced Gelatin/PGS Electrospun Nanocomposite Scaffolds for Neural Tissue Engineering

Neural tissue damage remains a significant clinical challenge due to the limited regenerative capacity of nervous tissues. Therefore, the development of biocompatible, conductive, and mechanically robust scaffolds is crucial to support neural regeneration. This study investigates the mechanical properties, electrical conductivity, degradation behavior, and cytotoxicity of electrospun scaffolds made from gelatin/poly (glycerol sebacate) (Gel/PGS) and their nanocomposite variants incorporating graphene (Gr) and hydroxyapatite nanoparticles (HA). The addition of graphene significantly enhanced the tensile strength and stiffness of the scaffolds. The Gel/PGS/1Gr/3HA scaffold exhibited the highest mechanical performance, with a tensile strength of 36.15 MPa and a tensile strain at break of 7.11%. Electrical impedance measurements revealed a notable increase in electrical conductivity with the incorporation of graphene, while the addition of hydroxyapatite at 3% and 6% by weight reduced electrical conductivity due to the insulating properties of HA. Degradation tests showed that scaffolds with graphene and HA exhibited slower degradation rates compared to Gel/PGS scaffolds, attributed to the reduced hydrophilicity of graphene and the crystalline structure of HA. The nanocomposite scaffolds demonstrated high biocompatibility, evidenced by the absence of cytotoxic effects and suitable adhesion of PC12 cells. Overall, Gel/PGS/1Gr/3HA electrospun nanocomposite scaffolds show great potential as functional platforms for neural tissue engineering.

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来源期刊
Journal of Polymers and the Environment
Journal of Polymers and the Environment 工程技术-高分子科学
CiteScore
9.50
自引率
7.50%
发文量
297
审稿时长
9 months
期刊介绍: The Journal of Polymers and the Environment fills the need for an international forum in this diverse and rapidly expanding field. The journal serves a crucial role for the publication of information from a wide range of disciplines and is a central outlet for the publication of high-quality peer-reviewed original papers, review articles and short communications. The journal is intentionally interdisciplinary in regard to contributions and covers the following subjects - polymers, environmentally degradable polymers, and degradation pathways: biological, photochemical, oxidative and hydrolytic; new environmental materials: derived by chemical and biosynthetic routes; environmental blends and composites; developments in processing and reactive processing of environmental polymers; characterization of environmental materials: mechanical, physical, thermal, rheological, morphological, and others; recyclable polymers and plastics recycling environmental testing: in-laboratory simulations, outdoor exposures, and standardization of methodologies; environmental fate: end products and intermediates of biodegradation; microbiology and enzymology of polymer biodegradation; solid-waste management and public legislation specific to environmental polymers; and other related topics.
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