微流控
封装(网络)
材料科学
纳米技术
细胞包封
光致聚合物
细胞
自愈水凝胶
单细胞分析
微流控芯片
细胞功能
生物物理学
实验室晶片
作者
Shiqi Lei,Xingdan Wang,Liu, Yan, 1975-,Yuheng Du,Zhihuan Li,Yajuan Guo,Renmeng Liu,Kaiwen Chen,Edward Ramsey,Kun Jiang,John Oakey,Zhongliang Jiang
摘要
Molecular investigation of specific gene expression patterns at the single-cell level reveals the heterogeneity of bulk cell populations, facilitating the understanding of interactive regulatory pathways that are hidden. However, this understanding has been constrained for decades by the length scale differences between traditional macroscopic tools and the size of a single cell. Additionally, these tools are inadequate in efficiently manipulating millions of individual cells within a reasonably short time period. Therefore, issues associated with the above limitations represent a challenge for single-cell encapsulation and subsequent analysis. This review highlights recent developments in droplet-microfluidic techniques that have enabled the high throughput fabrication of cell-laden picoliter droplets, which can be subsequently photopolymerized into microgels for further analytical assessment or bottom-up tissue engineering practices. Novel microfluidic droplet techniques developed for single-cell screening, analysis, and scaffold assembly for tissue engineering are introduced. Meanwhile, the constraints and challenges encountered in microfluidic droplet miniaturization processing are discussed in the context of enabling single-cell manipulation. In the end, an emerging alternative material, which holds great promise for single-cell encapsulation in miniaturized hydrogels, is introduced as a cell carrier with biocompatible polymerization kinetics and cytocompatibility.
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