Department of Tissue Engineering and Applied Cell Sciences, School of Advanced Medical Sciences and Technologies, Shiraz University of Medical Sciences, Shiraz, Iran.
Department of Medical Nanotechnology, School of Advanced Medical Sciences and Technologies, Shiraz University of Medical Sciences, Shiraz, Iran.
J Microencapsul. 2024 Sep;41(6):479-501. doi: 10.1080/02652048.2024.2382744. Epub 2024 Jul 30.
One of the goals of tissue engineering and regenerative medicine is restoring primary living tissue function by manufacturing a 3D microenvironment. One of the main challenges is protecting implanted non-autologous cells or tissues from the host immune system. Cell encapsulation has emerged as a promising technique for this purpose. It involves entrapping cells in biocompatible and semi-permeable microcarriers made from natural or synthetic polymers that regulate the release of cellular secretions. In recent years, droplet-based microfluidic systems have emerged as powerful tools for cell encapsulation in tissue engineering and regenerative medicine. These systems offer precise control over droplet size, composition, and functionality, allowing for creating of microenvironments that closely mimic native tissue. Droplet-based microfluidic systems have extensive applications in biotechnology, medical diagnosis, and drug discovery. This review summarises the recent developments in droplet-based microfluidic systems and cell encapsulation techniques, as well as their applications, advantages, and challenges in biology and medicine. The integration of these technologies has the potential to revolutionise tissue engineering and regenerative medicine by providing a precise and controlled microenvironment for cell growth and differentiation. By overcoming the immune system's challenges and enabling the release of cellular secretions, these technologies hold great promise for the future of regenerative medicine.
组织工程和再生医学的目标之一是通过制造 3D 微环境来恢复主要的活组织功能。其中一个主要挑战是保护植入的非自体细胞或组织免受宿主免疫系统的攻击。细胞包封技术为此目的应运而生。它涉及将细胞困在由天然或合成聚合物制成的生物相容性和半透性微载体中,这些微载体可以调节细胞分泌物的释放。近年来,基于液滴的微流控系统已成为组织工程和再生医学中细胞包封的有力工具。这些系统可以精确控制液滴的大小、组成和功能,从而创建更接近天然组织的微环境。基于液滴的微流控系统在生物技术、医学诊断和药物发现等领域有广泛的应用。本文综述了基于液滴的微流控系统和细胞包封技术的最新发展,以及它们在生物学和医学中的应用、优点和挑战。这些技术的整合有可能通过为细胞生长和分化提供精确和可控的微环境来彻底改变组织工程和再生医学。通过克服免疫系统的挑战和促进细胞分泌物的释放,这些技术为再生医学的未来带来了巨大的希望。