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组织工程中支架的胜任加工技术。

Competent processing techniques for scaffolds in tissue engineering.

机构信息

ExCel Matrix Biological Devices (P) Ltd, Hyderabad, India; Laboratory for Biomaterilas, Materials Research Centre, Indian Institute of Science, Bangalore, India.

Laboratory for Biomaterilas, Materials Research Centre, Indian Institute of Science, Bangalore, India.

出版信息

Biotechnol Adv. 2017 Mar-Apr;35(2):240-250. doi: 10.1016/j.biotechadv.2017.01.001. Epub 2017 Jan 14.

Abstract

Engineering a functional tissue ex vivo requires a synchronized effort towards developing technologies for ECM mimicking scaffold and cultivating tissue-specific cells in an integrated and controlled manner. Cell-interactive scaffolds in three dimensions (3D), designed and processed appropriately with an apt biomaterial to yield optimal porosity and mechanical strength is the key in tissue engineering (TE). In order to accomplish these facets in a 3D scaffold, multiple techniques and processes have been explored by researchers all over the world. New techniques offering reasonable flexibility to use blends of different materials for integrated tissue-specific mechanical strength and biocompatibility have an edge over conventional methods. They may allow a combinatorial approach with a mix of materials while incorporating multiple processing techniques for successful creation of tissue-specific ECM mimics. In this review, we analyze the material requirement from different TE perspectives, while discussing pros and cons of advanced fabrication techniques for scale-up manufacturing.

摘要

工程化功能性组织离体需要同步开发用于模拟细胞外基质的支架技术,并以集成和可控的方式培养组织特异性细胞。设计和适当处理与合适生物材料结合以产生最佳孔隙率和机械强度的三维(3D)细胞相互作用支架是组织工程(TE)的关键。为了在 3D 支架中实现这些方面,世界各地的研究人员已经探索了多种技术和工艺。新技术为使用不同材料的混合物提供了合理的灵活性,以获得集成的组织特异性机械强度和生物相容性,优于传统方法。它们可能允许采用组合方法,混合多种材料,同时结合多种加工技术,成功创建组织特异性细胞外基质模拟物。在这篇综述中,我们从不同的 TE 角度分析了材料要求,同时讨论了先进制造技术在规模化制造方面的优缺点。

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