Bhavsar Aashwini, Pati Falguni, Chakraborty Priyadarshi
Centre for Interdisciplinary Programs, Indian Institute of Technology Hyderabad, Kandi, 502284, Sangareddy, Telangana, India.
Department of Biomedical Engineering, Indian Institute of Technology Hyderabad, Kandi, 502284, Sangareddy, Telangana, India.
Chembiochem. 2025 Jan 2;26(1):e202400733. doi: 10.1002/cbic.202400733. Epub 2024 Nov 23.
Owing to their unique attributes, including reversibility, specificity, directionality, and tunability, supramolecular biomaterials have evolved as an excellent alternative to conventional biomaterials like polymers, ceramics, and metals. Supramolecular hydrogels, in particular, have garnered significant interest because their fibrous architecture, high water content, and interconnected 3D network resemble the extracellular matrix to some extent. Consequently, supramolecular hydrogels have been used to develop biomaterials for tissue engineering. Supramolecular conductive hydrogels combine the advantages of supramolecular soft materials with the electrical properties of metals, making them highly relevant for electrogenic tissue engineering. Given the versatile applications of these hydrogels, it is essential to periodically review high-quality research in this area. In this review, we focus on recent advances in supramolecular conductive hydrogels, particularly their applications in tissue engineering. We discuss the conductive components of these hydrogels and highlight notable reports on their use in cardiac, skin, and neural tissue engineering. Additionally, we outline potential future developments in this field.
由于其独特的属性,包括可逆性、特异性、方向性和可调性,超分子生物材料已发展成为聚合物、陶瓷和金属等传统生物材料的优秀替代品。特别是超分子水凝胶,因其纤维结构、高含水量和相互连接的三维网络在一定程度上类似于细胞外基质而备受关注。因此,超分子水凝胶已被用于开发组织工程生物材料。超分子导电水凝胶结合了超分子软材料的优点和金属的电学特性,使其与电生成组织工程高度相关。鉴于这些水凝胶的广泛应用,定期回顾该领域的高质量研究至关重要。在本综述中,我们关注超分子导电水凝胶的最新进展,特别是它们在组织工程中的应用。我们讨论了这些水凝胶的导电成分,并重点介绍了它们在心脏、皮肤和神经组织工程中应用的显著报告。此外,我们概述了该领域未来潜在的发展。