School of Pharmacy, Faculty of Medical and Health Sciences, University of Auckland, Private Bag 92019, Auckland, New Zealand.
Department of Anatomy and Medical Imaging, School of Medical Sciences, Faculty of Medical and Health Sciences, University of Auckland, Private Bag 92019, Auckland, New Zealand.
J Control Release. 2021 Apr 10;332:74-95. doi: 10.1016/j.jconrel.2021.02.015. Epub 2021 Feb 16.
Tissue regeneration aims to achieve functional restoration following injury by creating an environment to enable the body to self-repair. Strategies for regeneration rely on the introduction of biomaterial scaffolding, cells and bioactive molecules into the body, at or near the injury site. Of these bioactive molecules, growth factors (GFs) play a pivotal role in directing regenerative pathways for many cell populations. However, the therapeutic use of GFs has been limited by the complexity of biological injury and repair, and the properties of the GFs themselves, including their short half-life, poor tissue penetration, and off-target side effects. Externally triggered delivery systems have the potential to facilitate the delivery of GFs into the target tissues with considerations of the timing, sequence, amount, and location of GF presentation. This review briefly discusses the challenges facing the therapeutic use of GFs, then, we discuss approaches to externally trigger GF release from delivery systems categorised by stimulation type; ultrasound, temperature, light, magnetic fields and electric fields. Overall, while the use of GFs for tissue regeneration is still in its infancy, externally controlled GF delivery technologies have the potential to achieve robust and effective solutions to present GFs to injured tissues. Future technological developments must occur in conjunction with a comprehensive understanding of the biology at the injury site to ensure translation of promising technologies into real world benefit.
组织再生旨在通过创造一个使身体能够自我修复的环境,实现损伤后的功能恢复。再生策略依赖于将生物材料支架、细胞和生物活性分子引入体内,即在损伤部位或其附近。在这些生物活性分子中,生长因子(GFs)在指导许多细胞群体的再生途径方面起着关键作用。然而,GFs 的治疗应用受到生物损伤和修复的复杂性以及 GFs 本身的性质的限制,包括其半衰期短、组织穿透性差和脱靶副作用。外部触发的输送系统有可能考虑 GF 呈现的时间、顺序、数量和位置,将 GFs 递送到靶组织中。这篇综述简要讨论了 GF 治疗应用面临的挑战,然后我们讨论了根据刺激类型对从输送系统中外触发 GF 释放的方法进行分类;超声波、温度、光、磁场和电场。总的来说,虽然 GF 用于组织再生仍处于起步阶段,但外部控制的 GF 输送技术有可能为受损组织提供强大而有效的 GF 解决方案。未来的技术发展必须与对损伤部位生物学的全面理解相结合,以确保有前途的技术转化为实际的效益。