生物多尺度计算建模:3D生物打印和组织工程的一个有前途的工具

Q1 Computer Science
Bianca Cristina dos Santos, Pedro Yoshito Noritomi, Jorge Vicente Lopes da Silva, Izaque Alves Maia, Bruna Maria Manzini
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引用次数: 1

摘要

三维(3D)生物打印技术的进步推动了组织工程(TE)的几项进展,这使得人们可以观察到类似于天然组织的生物结构。这些方法导致结构的发展,可以与宿主组织的细胞外基质结合,促进植入物在受伤部位更好的同化。然而,再生医学领域的基础和临床前研究仍然存在局限性。试剂、动物模型的高成本和完成周期长是需要克服的一些挑战。因此,多尺度生物模拟激发了研究人员的兴趣;它们允许模拟接近自然系统的条件。然后,使用计算工具,生物系统可以在不同的组织和大小尺度上建模,创建多细胞模型,并允许它们应用于复杂的组织。虽然用于多尺度生物模拟的软件需要很高的计算能力,但与硅分析相关的优势引起了极大的兴趣。通过这种方式,模拟有助于实验室的实验结果,因为在建模阶段开始预见某些情况,后来减少了材料的时间和费用。这篇综述提供了3D生物打印技术的概述,指出了它们在TE发展中的重要性。此外,强调了生物工程的主要方面,重点是多尺度建模和用于生物计算建模的领先软件,当与3D生物打印和TE集成时,这可能是一个强大的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biological multiscale computational modeling: A promising tool for 3D bioprinting and tissue engineering

The progress of three-dimensional (3D) bioprinting techniques has driven several advances in tissue engineering (TE), which allow the obtention of biological constructs analogous to native tissues. These methods lead to the development of structures that can integrate with the extracellular matrix of the host tissue, promoting better assimilation of the implant in the injured spot. However, primary and pre-clinical researches in the regenerative medicine area still have limitations. The high cost of reagents, animal models, and the long period for completion are some challenges to be overcome. Consequently, multiscale biological simulations have stimulated researchers’ interest; they allow simulation conditions close to natural systems. Then, using computational tools, biological systems can be modeled at different scales of organization and size, creating multicellular models and allowing their application to complex tissues. Although software for multiscale biological simulations demands a high computational power, the advantages associated with in silico analysis are of great interest. In this way, the simulation contributes to the experimental results in laboratories because certain situations start to be foreseen during the modeling stages, later reducing the time and expense of materials. This review provides an overview of 3D bioprinting techniques, addressing their importance in TE development. Moreover, the main aspects of bioengineering are highlighted, focusing on multiscale modeling and the leading software used for biological computational modeling, which could be a powerful tool when integrated with 3D bioprinting and TE.

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来源期刊
Bioprinting
Bioprinting Computer Science-Computer Science Applications
CiteScore
11.50
自引率
0.00%
发文量
72
审稿时长
68 days
期刊介绍: Bioprinting is a broad-spectrum, multidisciplinary journal that covers all aspects of 3D fabrication technology involving biological tissues, organs and cells for medical and biotechnology applications. Topics covered include nanomaterials, biomaterials, scaffolds, 3D printing technology, imaging and CAD/CAM software and hardware, post-printing bioreactor maturation, cell and biological factor patterning, biofabrication, tissue engineering and other applications of 3D bioprinting technology. Bioprinting publishes research reports describing novel results with high clinical significance in all areas of 3D bioprinting research. Bioprinting issues contain a wide variety of review and analysis articles covering topics relevant to 3D bioprinting ranging from basic biological, material and technical advances to pre-clinical and clinical applications of 3D bioprinting.
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