Lin Gaolong, Li Xiaolin, Nowaczyk Grzegorz, Wang Wei
College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, Zhejiang 310027, China.
ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 310027, China.
Chem Bio Eng. 2025 Feb 18;2(5):283-302. doi: 10.1021/cbe.4c00173. eCollection 2025 May 22.
Injectable hydrogels (IHs) have garnered significant attention in biomedical applications due to their minimally invasive nature, adaptability, and high degree of customization. However, traditional design methods of IHs have limitations in addressing complex clinical needs, such as precise regulation of the gelation time and mechanical strength within a wide window. Hyperbranched polymers (HBPs), due to their unique highly branched structures and abundant functional sites, can be easily prepared and functionalized to enable decoupled modulation of mechanical properties of IHs and address the clinical challenges of IHs. Our research group developed a library of HBPs via a dynamically controllable polymerization method and built a series of adjustable, controllable, and responsive IHs based on the resulting HBPs. The prepared IHs fed by HBPs demonstrate an adjustable gelation process, a wide-range tuning of mechanical properties, and responsiveness on demand, which show the capabilities in the various biomedical applications. In this review, we summarize the role of HBPs in the gelation process, mechanical properties, self-healing ability, and responsiveness of IHs. However, achieving IHs through HBPs and extending them to a broad range of biomedical applications are still in its infancy. This review provides an overview of IHs fabricated by a variety of multifunctional HBPs, and their biomedical applications in diverse fields are also presented. Meanwhile, we point out the future development of IHs based on HBPs and their potential challenges.
可注射水凝胶(IHs)因其微创性、适应性和高度可定制性,在生物医学应用中受到了广泛关注。然而,传统的IHs设计方法在满足复杂的临床需求方面存在局限性,例如在较宽范围内精确调节凝胶化时间和机械强度。超支化聚合物(HBPs)由于其独特的高度支化结构和丰富的功能位点,易于制备和功能化,能够实现对IHs机械性能的解耦调节,并解决IHs的临床挑战。我们的研究小组通过动态可控聚合方法开发了一系列HBPs,并基于所得的HBPs构建了一系列可调节、可控且具有响应性的IHs。由HBPs制备的IHs表现出可调节的凝胶化过程、广泛的机械性能调节范围以及按需响应性,这显示了其在各种生物医学应用中的能力。在这篇综述中,我们总结了HBPs在IHs的凝胶化过程、机械性能、自愈能力和响应性方面的作用。然而,通过HBPs实现IHs并将其扩展到广泛的生物医学应用仍处于起步阶段。本文综述了由多种多功能HBPs制备的IHs,并介绍了它们在不同领域的生物医学应用。同时,我们指出了基于HBPs的IHs的未来发展及其潜在挑战。