Single Cell Analysis of Inertial Migration by Circulating Tumor Cells and Clusters.
Jian ZhouAlexandra VorobyevaQiyue LuanIan PapautskyPublished in: Micromachines (2023)
Single-cell analysis provides a wealth of information regarding the molecular landscape of the tumor cells responding to extracellular stimulations, which has greatly advanced the research in cancer biology. In this work, we adapt such a concept for the analysis of inertial migration of cells and clusters, which is promising for cancer liquid biopsy, by isolation and detection of circulating tumor cells (CTCs) and CTC clusters. Using high-speed camera tracking live individual tumor cells and cell clusters, the behavior of inertial migration was profiled in unprecedented detail. We found that inertial migration is heterogeneous spatially, depending on the initial cross-sectional location. The lateral migration velocity peaks at about 25% of the channel width away from the sidewalls for both single cells and clusters. More importantly, while the doublets of the cell clusters migrate significantly faster than single cells (~two times faster), cell triplets unexpectedly have similar migration velocities to doublets, which seemingly disagrees with the size-dependent nature of inertial migration. Further analysis indicates that the cluster shape or format (for example, triplets can be in string format or triangle format) plays a significant role in the migration of more complex cell clusters. We found that the migration velocity of a string triplet is statistically comparable to that of a single cell while the triangle triplets can migrate slightly faster than doublets, suggesting that size-based sorting of cells and clusters can be challenging depending on the cluster format. Undoubtedly, these new findings need to be considered in the translation of inertial microfluidic technology for CTC cluster detection.
Keyphrases
- single cell
- circulating tumor cells
- rna seq
- induced apoptosis
- high speed
- cell cycle arrest
- high throughput
- cross sectional
- cell therapy
- circulating tumor
- endoplasmic reticulum stress
- papillary thyroid
- signaling pathway
- squamous cell carcinoma
- oxidative stress
- deep learning
- loop mediated isothermal amplification
- lymph node metastasis