Laboratory of Chemical Biology and State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Science, Changchun, Jilin 130022, P. R. China.
Chem Soc Rev. 2018 Nov 26;47(23):8639-8684. doi: 10.1039/c8cs00053k.
The cell microenvironment choreographs the behaviors of cells through multiple well-controlled signals. For basic biological study and cell-based therapies, it is essential to decipher the complicated cell-matrix interactions, and to develop ways to mimic the dynamic microenvironment so that desired biological functions of cells can be guided. For this, biomaterials with the ability to spatiotemporally impart biochemical and biophysical cues to manipulate cell fate have been developed recently. The dynamic property and programmable features of stimuli-responsive biointerfaces endow them with the outstanding ability to develop advanced biological systems. In this review, we illustrate the recent progress of stimuli-responsive biosystems with a particular emphasis on their explorations for cell-based fundamental studies, disease diagnosis and regenerative therapy. Some basic principles and strategies for the design of dynamic platforms are also discussed in this review. Finally, we conclude with an outlook on current challenges and future of dynamic platforms for cell study and biomedical applications. Overall, we anticipate that this review will boost the development of dynamic and multifunctional biosystems by inspiring interest from various disciplines, including chemistry, materials science, cell biology, nanotechnology, biomedical engineering, as well as clinical research.
细胞微环境通过多种精心控制的信号来协调细胞的行为。对于基础生物学研究和基于细胞的治疗,解析复杂的细胞-基质相互作用并开发模拟动态微环境的方法至关重要,这样才能指导细胞的预期生物学功能。为此,最近已经开发出了具有时空赋予细胞命运的生物化学和生物物理线索的能力的生物材料。刺激响应生物界面的动态特性和可编程特性赋予了它们开发先进生物系统的卓越能力。在本综述中,我们特别强调了用于基于细胞的基础研究、疾病诊断和再生治疗的细胞刺激响应生物系统的最新进展,同时也讨论了动态平台设计的一些基本原则和策略。最后,我们对细胞研究和生物医学应用的动态平台的当前挑战和未来进行了展望。总的来说,我们预计通过激发化学、材料科学、细胞生物学、纳米技术、生物医学工程以及临床研究等多个学科的兴趣,本综述将推动动态多功能生物系统的发展。