School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China; Innovation Center NPU Chongqing, Northwestern Polytechnical University, Chongqing 400000, China.
School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China; Innovation Center NPU Chongqing, Northwestern Polytechnical University, Chongqing 400000, China.
Int J Biol Macromol. 2023 Mar 31;232:123450. doi: 10.1016/j.ijbiomac.2023.123450. Epub 2023 Jan 26.
Sodium alginate (SA) is an inexpensive and biocompatible biomaterial with fast and gentle crosslinking that has been widely used in biological soft tissue repair/regeneration. Especially with the advent of 3D bioprinting technology, SA hydrogels have been applied more deeply in tissue engineering due to their excellent printability. Currently, the research on material modification, molding process and application of SA-based composite hydrogels has become a hot topic in tissue engineering, and a lot of fruitful results have been achieved. To better help readers have a comprehensive understanding of the development status of SA based hydrogels and their molding process in tissue engineering, in this review, we summarized SA modification methods, and provided a comparative analysis of the characteristics of various SA based hydrogels. Secondly, various molding methods of SA based hydrogels were introduced, the processing characteristics and the applications of different molding methods were analyzed and compared. Finally, the applications of SA based hydrogels in tissue engineering were reviewed, the challenges in their applications were also analyzed, and the future research directions were prospected. We believe this review is of great helpful for the researchers working in biomedical and tissue engineering.
海藻酸钠(SA)是一种廉价且生物相容的生物材料,具有快速温和的交联特性,已被广泛应用于生物软组织修复/再生领域。特别是随着 3D 生物打印技术的出现,由于其出色的打印性能,SA 水凝胶在组织工程中的应用更加深入。目前,基于 SA 的复合水凝胶的材料改性、成型工艺和应用研究已成为组织工程领域的热门话题,取得了丰硕的成果。为了帮助读者更好地全面了解基于 SA 的水凝胶及其在组织工程中的成型工艺的发展现状,在本文中,我们总结了 SA 的修饰方法,并对各种基于 SA 的水凝胶的特性进行了比较分析。其次,介绍了基于 SA 的水凝胶的各种成型方法,分析和比较了不同成型方法的加工特点及其应用。最后,综述了基于 SA 的水凝胶在组织工程中的应用,分析了其应用中存在的挑战,并对未来的研究方向进行了展望。我们相信,这篇综述对从事生物医学和组织工程研究的人员具有重要的参考价值。