Kumari Meena, Prasad Suchita, Fruk Ljiljana, Parshad Badri
Department of Chemistry, Government College for Women, Badhra, Ch. Dadri, Haryana 127308, India.
Department of Chemistry, University of Delhi, Delhi 110007, India.
Future Med Chem. 2021 Feb;13(4):419-438. doi: 10.4155/fmc-2020-0205. Epub 2021 Jan 6.
Hydrogels and nanogels have emerged as promising materials for biomedical applications owing to their large surface area and tunable mechanical and chemical properties. Their large surface area is well suited for bioconjugation, whilst the interior porous network can be utilized for the transport of valuable biomolecules. The use of biocompatible hydrophilic building blocks/linkers for the preparation of hydrogels and nanogels not only avoids undesired side effects within the biological system, but also retains high water content, thereby creating an environment which is very similar to extracellular matrix. Their tunable multivalency and hydrophilicity and excellent biocompatibility, together with ease of functionalization, makes polyglycerol macromonomers well suited for synthesizing cross-linked networks that can be used as extracellular matrix mimics. Here we provide an overview of the synthesis of polyglycerol-based hydrogels and nanogels for various biomedical applications.
水凝胶和纳米凝胶因其大表面积以及可调节的机械和化学性质,已成为生物医学应用中很有前景的材料。它们的大表面积非常适合生物共轭,而内部多孔网络可用于运输有价值的生物分子。使用生物相容性亲水性构建块/连接体来制备水凝胶和纳米凝胶,不仅可避免生物系统内的不良副作用,还能保持高含水量,从而营造出与细胞外基质非常相似的环境。它们可调节的多价性、亲水性以及出色的生物相容性,再加上易于功能化,使得聚甘油大分子单体非常适合合成可用作细胞外基质模拟物的交联网络。在此,我们概述了用于各种生物医学应用的聚甘油基水凝胶和纳米凝胶的合成。