Lin Yongning, Wu Zengnan, Zheng Yajing, Wang Xiaorui, Lin Jin-Ming, Hou Ying, Li Nan, Xing Gaowa, Lin Ling
Beijing Key Laboratory of Microanalytical Methods and Instrumentation, Key Laboratory of Bioorganic Phosphorus Chemistry and Chemical Biology (Ministry of Education), Department of Chemistry, Tsinghua University, Beijing, 100084, China.
MOE Key Laboratory of Nutrition and Health for the elderly, Department of Bioengineering, Beijing Technology and Business University, Beijing, 100048, China.
Anal Chem. 2024 Aug 16. doi: 10.1021/acs.analchem.4c03544.
With the advantages of high-throughput manufacturing and customizability, on-microsphere construction of in vitro multicellular analytical systems has garnered significant attention. However, achieving a precise, biocompatible cell arrangement and spatial signal analysis in hydrogel microspheres remains challenging. In this work, a microfluidic method is reported for the biocompatible generation of addressable supersegmented multicompartmental microspheres. Additionally, these microspheres are developed as novel label-free multicellular systems. In the microfluidic approach, controllable microfluidics is used to finely tune the internal microstructure of the microspheres, and the gas ejector ensures the biocompatibility of the preparation process. As a proof of concept, six- and twenty-compartment microspheres were obtained without the addition of any biohazardous reagents. For microsphere decoding, the visualization of two basic compartments can provide clues for identifying label-free cells due to the structural regularity of the microspheres. Finally, by encapsulating cells of different types, these microspheres as multicellular systems were successfully used for cell coculture and drug testing. These biocompatible, scalable, and analyzable microspheres will open up new prospects for biomedical analysis.
凭借高通量制造和可定制性的优势,体外多细胞分析系统的微球构建已引起广泛关注。然而,在水凝胶微球中实现精确、生物相容的细胞排列和空间信号分析仍然具有挑战性。在这项工作中,报道了一种微流控方法,用于生物相容地生成可寻址的超细分多隔室微球。此外,这些微球被开发为新型无标记多细胞系统。在微流控方法中,可控微流控用于微调微球的内部微观结构,气体喷射器确保制备过程的生物相容性。作为概念验证,在不添加任何生物危害试剂的情况下获得了六隔室和二十隔室微球。对于微球解码,由于微球的结构规则性,两个基本隔室的可视化可为识别无标记细胞提供线索。最后,通过封装不同类型的细胞,这些作为多细胞系统的微球成功用于细胞共培养和药物测试。这些生物相容、可扩展且可分析的微球将为生物医学分析开辟新的前景。