癌细胞
癌症
细胞骨架
单元格排序
癌症研究
生物
循环肿瘤细胞
细胞
细胞生物学
微流控
癌症生物标志物
细胞培养
计算生物学
分类
液体活检
化学
电池类型
生物标志物
乳腺癌
转移
癌细胞系
肌动蛋白
转移性乳腺癌
作者
Xiaoyan Liu,Yuanchao Liu,Junwei Li,Z. Wang,Mui Hoon Nai,Qian Chen,Haodong Li,Xingyu Jiang,Shaofei Shen,Chwee Teck Lim
标识
DOI:10.1073/pnas.2604094123
摘要
The deformability of cancer cells is a critical indicator of their malignancy, as this mechanical property of cancer cells can reflect various biostructural and biochemical changes such as the cytoskeletons and protein expressions. However, selectively isolating and analyzing cell subpopulations with differing deformability and their associated biological properties remains challenging, especially at high throughput. Here, we introduce a microstructure-assisted spiral microfluidic platform that sorts cancer cells based on their deformability at ultrahigh throughput (>2,000,000 cells min −1 ) and couples the workflow to real-time, image-based phenotyping of cell parameters. We profile the sorted fractions and investigate a tripartite correlation between the deformability of cancer cells, the expression of proteins in different subpopulations, and the metastatic ability of cancer cells. This tripartite correlation has been confirmed in human breast cancer cell lines with metastatic potential (including MDA-MB-231 cells and BT-549 cells), where these cells are classified into subpopulations based on their deformability. The more deformable subpopulation exhibits increased invasiveness and distinct cytoskeletal remodeling and epithelial-to-mesenchymal transition (EMT)-associated protein signatures. Leveraging these deformability differences, our label-free platform enables high-throughput enrichment of aggressive cancer subpopulations and provides a scalable front end for liquid biopsy workflows. More broadly, deformability-based sorting may support improved analysis of rare metastasis-prone cells and accelerate high-throughput screening for mechano-targeted therapeutic strategies, offering a practical route to integrate cell deformability into precision oncology and therapy.
科研通智能强力驱动
Strongly Powered by AbleSci AI