Recent Advances in 3D Bioprinting of Porous Scaffolds for Tissue Engineering: A Narrative and Critical Review.

IF 5.2 3区 医学 Q1 ENGINEERING, BIOMEDICAL
David Picado-Tejero, Laura Mendoza-Cerezo, Jesús M Rodríguez-Rego, Juan P Carrasco-Amador, Alfonso C Marcos-Romero
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Abstract

3D bioprinting has emerged as a key tool in tissue engineering by facilitating the creation of customized scaffolds with properties tailored to specific needs. Among the design parameters, porosity stands out as a determining factor, as it directly influences critical mechanical and biological properties such as nutrient diffusion, cell adhesion and structural integrity. This review comprehensively analyses the state of the art in scaffold design, emphasizing how porosity-related parameters such as pore size, geometry, distribution and interconnectivity affect cellular behavior and mechanical performance. It also addresses advances in manufacturing methods, such as additive manufacturing and computer-aided design (CAD), which allow the development of scaffolds with hierarchical structures and controlled porosity. In addition, the use of computational modelling, in particular finite element analysis (FEA), as an essential predictive tool to optimize the design of scaffolds under physiological conditions is highlighted. This narrative review analyzed 112 core articles retrieved primarily from Scopus (2014-2025) to provide a comprehensive and up-to-date synthesis. Despite recent progress, significant challenges persist, including the lack of standardized methodologies for characterizing and comparing porosity parameters across different studies. This review identifies these gaps and suggests future research directions, such as the development of unified characterization and classification systems and the enhancement of nanoscale resolution in bioprinting technologies. By integrating structural design with biological functionality, this review underscores the transformative potential of porosity research applied to 3D bioprinting, positioning it as a key strategy to meet current clinical needs in tissue engineering.

组织工程用多孔支架生物3D打印技术的最新进展:综述与评述。
3D生物打印已经成为组织工程中的一个关键工具,它促进了根据特定需求定制特性的定制支架的创建。在设计参数中,孔隙率作为一个决定性因素脱颖而出,因为它直接影响关键的机械和生物特性,如营养物质扩散、细胞粘附和结构完整性。这篇综述全面分析了支架设计的现状,强调了孔隙率相关参数,如孔隙大小、几何形状、分布和互联性如何影响细胞行为和力学性能。它还涉及制造方法的进步,例如增材制造和计算机辅助设计(CAD),这些方法允许开发具有分层结构和控制孔隙度的支架。此外,还强调了利用计算建模,特别是有限元分析(FEA)作为生理条件下支架优化设计的重要预测工具。这篇叙述性综述分析了主要从Scopus检索的112篇核心文章(2014-2025),以提供一个全面和最新的综合。尽管最近取得了进展,但仍然存在重大挑战,包括缺乏标准化的方法来表征和比较不同研究中的孔隙度参数。本文指出了这些差距,并提出了未来的研究方向,如发展统一的表征和分类系统以及提高生物打印技术的纳米级分辨率。通过将结构设计与生物功能相结合,本综述强调了孔隙度研究应用于3D生物打印的变革潜力,将其定位为满足当前组织工程临床需求的关键策略。
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
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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