Synergistic effects of Psidium guajava and copper nanoparticles reinforced hybrid Hydrogel for tissue engineering

IF 9.9 Q1 MATERIALS SCIENCE, COMPOSITES
D.V. Krishna , M.R. Sankar , P.V.G.K. Sarma , E.L. Samundeshwari
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引用次数: 0

Abstract

Hydrogels are biopolymers proficient in engrossing much water in their 3D network structure. However, single-polymer hydrogels frequently experience poor physio-mechanical properties, confining their border applications. The present work concentrated on developing chemically crosslinked hydrogels using the terpolymerization of gelatin (GEL), guar gum (GGM), and polyvinyl alcohol (PVA). Ethanolic extract of Psidium guajava leaf (EPG) and copper nanoparticles (CuNPs) were added to enhance the biomechanical properties of the developed hydrogels. Hydrogels' viscoelastic, mechanical, swelling, and cytotoxicity properties were assessed. All the hydrogels exhibited a porous-like structure with a swelling index of 230–280 %. A compressive strength of 5 MPa with splendid chondrocyte viability was noticed in the hydrogels comprised of EPG and CuNPs. The multiple interactions among the polymer chains impart better frequency and shear strain-dependent behavior. The time-dependent frictional behavior of hydrogel under the lubrication of artificial synovial fluid reveals the decreased coefficient of friction over time. The performance of the hybrid hydrogel enhanced with EPG and CuNPs was superior, making it a promising material for tissue engineering applications.

Abstract Image

瓜爪哇紫金与铜纳米粒子增强杂化水凝胶在组织工程中的协同效应
水凝胶是一种生物聚合物,能够在其三维网络结构中吸附大量水分。然而,单一聚合物水凝胶的物理机械性能往往较差,限制了其在边境地区的应用。本研究的重点是利用明胶(GEL)、瓜尔豆胶(GGM)和聚乙烯醇(PVA)的三元共聚,开发化学交联水凝胶。为了增强所开发水凝胶的生物力学特性,还添加了瓜蒌叶乙醇提取物(EPG)和纳米铜粒子(CuNPs)。对水凝胶的粘弹性、机械、膨胀和细胞毒性特性进行了评估。所有水凝胶都呈现多孔状结构,溶胀指数为 230-280%。由 EPG 和 CuNPs 组成的水凝胶具有 5 兆帕的抗压强度和出色的软骨细胞活力。聚合物链之间的多重相互作用带来了更好的频率和剪切应变行为。水凝胶在人工滑液润滑下随时间变化的摩擦行为表明,摩擦系数会随着时间的推移而降低。使用 EPG 和 CuNPs 增强的混合水凝胶性能优越,是一种很有希望应用于组织工程的材料。
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来源期刊
Advanced Industrial and Engineering Polymer Research
Advanced Industrial and Engineering Polymer Research Materials Science-Polymers and Plastics
CiteScore
26.30
自引率
0.00%
发文量
38
审稿时长
29 days
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