Evaluating visco-hyperelastic mechanical responses of hydrogel-based scaffolds and their potential for biomechanical restoration of the human mandibular joint.

IF 6.3 2区 医学 Q1 BIOLOGY
Daniel Fidalgo, Pedro Rebolo, Marcelo Costa, João Maia, Nilza Ramião, Rita Sobreiro-Almeida, Bruno Areias, Ana Guerra, Catarina Custódio, Paula Torres, Nilza Ribeiro, Susana Olhero, João Mano, Marco Parente
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Abstract

This study researches the viscous and hyperelastic mechanical behaviors of hydrogel-based nanocomposite materials, including: (i) a composite of human methacryloyl platelet lysate (hPLMA), human platelet lysates (hPL), and nanohydroxyapatite (nHA); (ii) bovine serum albumin methacryloyl (BSAMA); and (iii) hyaluronic acid methacryloyl (HAMA). These materials stand out for their enhanced bioactivity and mechanical strength compared to traditional hydrogels. Their potential applications in various scaffold architectures and the biomechanical restoration of the mandibular joint are investigated. Mechanical compression and relaxation tests are performed on the hydrogel-based samples, with varying nHA content (0%, 1%, and 5%) in the hPL/hPLMA composite, to characterize their visco-hyperelastic behavior. Mechanical parameters are optimized using a micro-genetic algorithm. Results show that increasing nHA content raises compressive stress and intensifies the viscoelastic response. Besides, higher strut density and staggered orthogonal patterns produce more uniform stress distribution despite a less stable viscous response. In in silico simulations of the human mandible, a multimaterial scaffold was created, featuring a hydrogel core with ceramic-based scaffold ends (hydroxyapatite-based cement enriched with hPL). The ceramic phase provided effective mechanical protection for the hydrogel. Besides, substituting the hPL/hPLMA core with HAMA reduced the stress values in the hydrogel phase, while using BSAMA led to increased stress. This study introduces a novel framework integrating experimental data, mechanical optimization, and numerical simulations to elucidate the viscoelastic behavior of hydrogel-based nanocomposite inks and multimaterial scaffolds. This research advances the development of next-generation biomaterials with improved durability and functionality, promoting regenerative medicine and personalized tissue engineering.

评估水凝胶基支架的粘弹性力学反应及其在人类下颌关节生物力学修复中的潜力。
本研究研究了水凝胶基纳米复合材料的粘性和超弹性力学行为,包括:(i)人甲基丙烯酰血小板裂解液(hPLMA)、人血小板裂解液(hPL)和纳米羟基磷灰石(nHA)的复合材料;牛血清甲基丙烯酰白蛋白(BSAMA);(iii)透明质酸甲基丙烯酰(HAMA)。与传统的水凝胶相比,这些材料以其增强的生物活性和机械强度而脱颖而出。研究了其在各种支架结构和下颌关节生物力学修复中的潜在应用。在hPL/hPLMA复合材料中,对不同nHA含量(0%、1%和5%)的水凝胶样品进行机械压缩和弛豫测试,以表征其粘超弹性行为。采用微遗传算法对机械参数进行优化。结果表明,nHA含量的增加使压应力升高,粘弹性响应增强。此外,较高的支撑密度和交错正交模式使应力分布更加均匀,但粘性响应稳定性较差。在人类下颌骨的计算机模拟中,创建了一个多材料支架,其特点是水凝胶核心与陶瓷基支架末端(羟基磷灰石基水泥富含hPL)。陶瓷相为水凝胶提供了有效的机械保护。此外,用HAMA代替hPL/hPLMA岩心降低了水凝胶相的应力值,而使用BSAMA则导致应力增加。本研究引入了一个结合实验数据、力学优化和数值模拟的新框架来阐明水凝胶基纳米复合油墨和多材料支架的粘弹性行为。该研究促进了下一代生物材料的发展,提高了耐用性和功能性,促进了再生医学和个性化组织工程的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Computers in biology and medicine
Computers in biology and medicine 工程技术-工程:生物医学
CiteScore
11.70
自引率
10.40%
发文量
1086
审稿时长
74 days
期刊介绍: Computers in Biology and Medicine is an international forum for sharing groundbreaking advancements in the use of computers in bioscience and medicine. This journal serves as a medium for communicating essential research, instruction, ideas, and information regarding the rapidly evolving field of computer applications in these domains. By encouraging the exchange of knowledge, we aim to facilitate progress and innovation in the utilization of computers in biology and medicine.
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