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分形在组织工程学中的应用:仿生细胞培养基质、微系统和微结构植入物。

Fractals in tissue engineering: toward biomimetic cell-culture matrices, microsystems and microstructured implants.

机构信息

Mechanical Engineering & Manufacturing Department, Product Development Laboratory, UPM Machine Engineering Research Group, School of Industrial Engineering, Universidad Politécnica de Madrid (UPM), Spain.

出版信息

Expert Rev Med Devices. 2013 Sep;10(5):629-48. doi: 10.1586/17434440.2013.827506. Epub 2013 Aug 23.

Abstract

Tissue engineering is a rapidly evolving field in which the complexity of biomaterials and biostructures, with typically non-Euclidean or fractal-like geometries, has to be adequately taken into account for the promotion of enhanced and even personalized diagnostic and therapeutic solutions. This study covers the main applications of fractals in the field of tissue engineering, including their advantages for modeling biological processes and cell-culture procedures, but specially focusing on their benefits for describing the complex geometries and structures of biomaterials (both natural and synthetic), many of which have potential uses for the development of cell culture microsystems, scaffolds for tissue repair and implants for tissue repair in general. We also explore the main supporting design, simulation and manufacturing technologies, as well as the most remarkable difficulties and limitations linked to the generalized use of fractals in engineering design, and also detail some current solution proposals and future directions.

摘要

组织工程学是一个快速发展的领域,其中生物材料和生物结构的复杂性,通常具有非欧几里得或分形样的几何形状,必须得到充分考虑,以促进增强甚至个性化的诊断和治疗解决方案。本研究涵盖了分形在组织工程学领域的主要应用,包括它们在模拟生物过程和细胞培养程序方面的优势,但特别侧重于它们在描述生物材料(天然和合成)的复杂几何形状和结构方面的优势,其中许多材料具有开发细胞培养微系统、组织修复支架和一般组织修复植入物的潜力。我们还探讨了主要的支持设计、模拟和制造技术,以及与分形在工程设计中的广泛应用相关的主要困难和限制,并详细介绍了一些当前的解决方案提案和未来的发展方向。

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