Advanced Polymer Materials Group, University Politehnica of Bucharest, SplaiulIndependenței, 313, 060042, Bucharest, Romania.
Advanced Polymer Materials Group, University Politehnica of Bucharest, SplaiulIndependenței, 313, 060042, Bucharest, Romania; Faculty of Medical Engineering, University Politehnica of Bucharest, Bucharest 011061, Romania.
Carbohydr Polym. 2023 Jun 1;309:120676. doi: 10.1016/j.carbpol.2023.120676. Epub 2023 Feb 8.
With the advancement of enhanced fabrication technologies, specifically 3D printing, it is now possible to build artificial tissue for personalized healing. However, inks developed from polymers often fail to meet expectations in terms of mechanical strength, scaffold integrity, and the stimulation of tissue formation. Developing new printable formulations as well as adapting existing printing methods is an essential aspect of contemporary biofabrication research. In order to push the boundaries of the printability window, various strategies have been developed employing gellan gum. This has resulted in major breakthroughs in the development of 3D hydrogels scaffolds that exhibit significant resemblance to genuine tissues and enables the fabrication of more complex systems. In light of the many uses of gellan gum, the purpose of this paper is to provide a synopsis of the printable ink designs drawing attention to the various compositions and fabrication approaches that may be used for tuning the properties of 3D printed hydrogels for tissue engineering applications. The purpose of this article is to outline the development of gellan-based 3D printing inks and to encourage research by highlighting the possible applications of gellan gum.
随着增材制造技术的进步,特别是 3D 打印技术的发展,现在已经可以制造用于个性化治疗的人工组织。然而,由聚合物制成的墨水在机械强度、支架完整性和组织形成刺激方面往往达不到预期。开发新的可打印配方以及调整现有打印方法是当代生物制造研究的一个重要方面。为了扩大可打印性窗口的边界,已经开发了各种使用结冷胶的策略。这在开发 3D 水凝胶支架方面取得了重大突破,这些支架与真正的组织非常相似,并能够制造更复杂的系统。鉴于结冷胶的多种用途,本文的目的是概述可印刷墨水的设计,重点介绍各种组成和制造方法,这些方法可用于调整 3D 打印水凝胶的性能,以满足组织工程应用的需求。本文的目的是概述基于结冷胶的 3D 打印墨水的发展,并通过突出结冷胶的可能应用来鼓励研究。