Spatially resolved single-molecule profiling of microRNAs in migrating cells driven by microconfinement.
Zihui FanBin LiYa-Jun WangXuedong HuangBinxiao LiShurong WangYixin LiuYan-Jun LiuBao-Hong LiuPublished in: Chemical science (2022)
Cancer cells utilize a range of migration modes to navigate through a confined tissue microenvironment in vivo , while regulatory roles of key microRNAs (miRNAs) remain unclear. Precisely engineered microconfinement and the high spatial-resolution imaging strategy offer a promising avenue for deciphering the molecular mechanisms that drive cell migration. Here, enzyme-free signal-amplification nanoprobes as an effective tool are developed for three-dimensional (3D) high-resolution profiling of key miRNA molecules in single migrating cells, where distinct migration modes are precisely driven by microconfinement-engineered microchips. The constructed nanoprobes exhibit intuitive and ultrasensitive miRNA characterization in vitro by virtue of a single-molecule imaging microscope, and the differential expression and intracellular locations in different cell lines are successfully monitored. Furthermore, 3D spatial distribution of miR-141 at high resolution in flexible phenotypes of migrating cells is reconstructed in the engineered biomimetic microenvironment. The results indicate that miR-141 may be involved in the metastatic transition from a slow to a fast migration state. This work offers a new opportunity for investigating regulatory mechanisms of intracellular key biomolecules during cell migration in biomimetic microenvironments, which may advance in-depth understanding of cancer metastasis in vivo .
Keyphrases
- single molecule
- high resolution
- cell migration
- induced apoptosis
- cell cycle arrest
- cell proliferation
- living cells
- long non coding rna
- stem cells
- small cell lung cancer
- atomic force microscopy
- mass spectrometry
- squamous cell carcinoma
- fluorescence imaging
- long noncoding rna
- endoplasmic reticulum stress
- signaling pathway
- gold nanoparticles
- optical coherence tomography
- high speed
- quantum dots
- fluorescent probe
- photodynamic therapy
- nucleic acid