Molecular NanoFabrication Group, Department of Molecules & Materials, MESA+ Institute, Faculty of Science and Technology, University of Twente, P.O. Box 217, 7500 AE, Enschede, The Netherlands.
Mater Horiz. 2022 Mar 7;9(3):892-907. doi: 10.1039/d1mh01431e.
The construction of artificial cells with specific cell-mimicking functions helps to explore complex biological processes and cell functions in natural cell systems and provides an insight into the origins of life. Bottom-up methods are widely used for engineering artificial cells based on vesicles by the assembly of biomimetic materials. In this review, the design of artificial cells with a specific function is discussed, by considering the selection of synthetic materials and construction technologies. First, a range of biomimetic materials for artificial cells is reviewed, including lipid, polymeric and hybrid lipid/copolymer materials. Biomaterials extracted from natural cells are also covered in this part. Then, the formation of microscale, giant unilamellar vesicles (GUVs) is reviewed based on different technologies, including gentle hydration, electro-formation, phase transfer and microfluidic methods. Subsequently, applications of artificial cells based on single vesicles or vesicle networks are addressed for mimicking cell behaviors and signaling processes. Microreactors for synthetic biology and cell-cell communication are highlighted here as well. Finally, current challenges and future trends for the development and applications of artificial cells are described.
人工细胞的构建具有特定的细胞模拟功能,有助于探索自然细胞系统中的复杂生物过程和细胞功能,并深入了解生命的起源。基于囊泡的仿生材料组装的自下而上方法被广泛用于工程人工细胞。在这篇综述中,通过考虑合成材料和构建技术的选择,讨论了具有特定功能的人工细胞的设计。首先,综述了一系列用于人工细胞的仿生材料,包括脂质、聚合物和混合脂质/共聚物材料。这部分还涵盖了从天然细胞中提取的生物材料。然后,根据不同的技术,综述了微尺度、大单室囊泡(GUV)的形成,包括温和水合、电形成、相转移和微流控方法。随后,讨论了基于单个囊泡或囊泡网络的人工细胞在模拟细胞行为和信号转导过程中的应用。这里还强调了用于合成生物学和细胞间通信的微反应器。最后,描述了人工细胞的发展和应用所面临的当前挑战和未来趋势。