Liu Jing, Cho Il-Hoon, Cui Yi, Irudayaraj Joseph
Department of Agricultural and Biological Engineering, Bindley Bioscience Center, Birck Nanotechnology Center, Purdue University , West Lafayette, Indiana 47907, United States.
ACS Nano. 2014 Dec 23;8(12):12418-27. doi: 10.1021/nn505096t. Epub 2014 Dec 12.
Cell-specific information on the quantity and localization of key mRNAs at single copy sensitivity in single cells is critical for evaluating basic cellular process, disease risk, and efficacy of therapy. Quantification of overexpressed mRNAs beyond the diffraction limit is constrained by the optical property of the probes and microscopy techniques. In this report, nanosized barium titanium oxide (BaTiO3, BTO) crystals were utilized as probes for mRNA quantification by a second harmonic super-resolution microscopy (SHaSM). The SHaSM was able to detect a single copy of the human epidermal growth factor receptor 2 (Her2) mRNA at a resolution of 55.6 nm with the ability to resolve multiple mRNA copies in a diffraction-limited spot. Her2 mRNA per cell was counted in SK-BR-3, MCF-7, and HeLa cell lines as 595±79.1, 38.9±8.26, and 1.5±2.8, respectively. Our single-cell quantification results were validated with the fluorescence in situ hybridization studies and quantitative PCR, showing better specificity and selectivity over current single-molecule approaches for transcript detection. The SHaSM is expected to have an upper limit of resolving ∼10(4) transcripts in a single cell with the ability to monitor intracellular transcriptional dynamics at video rate. The developed approach has strong potential in clinical research and in the early diagnosis of life-threatening diseases such as cancer.
在单细胞水平上以单拷贝灵敏度获取关键mRNA的数量和定位的细胞特异性信息,对于评估基本细胞过程、疾病风险和治疗效果至关重要。超过衍射极限的过表达mRNA的定量受到探针光学特性和显微镜技术的限制。在本报告中,纳米尺寸的钛酸钡(BaTiO3,BTO)晶体被用作通过二次谐波超分辨率显微镜(SHaSM)进行mRNA定量的探针。SHaSM能够以55.6 nm的分辨率检测单拷贝的人表皮生长因子受体2(Her2)mRNA,并能够在衍射极限光斑中分辨多个mRNA拷贝。在SK-BR-3、MCF-7和HeLa细胞系中,每个细胞的Her2 mRNA计数分别为595±79.1、38.9±8.26和1.5±2.8。我们的单细胞定量结果通过荧光原位杂交研究和定量PCR得到验证,显示出比当前用于转录本检测的单分子方法更好的特异性和选择性。预计SHaSM在单细胞中分辨约10(4)个转录本的上限,具有以视频速率监测细胞内转录动力学的能力。所开发的方法在临床研究和癌症等危及生命疾病的早期诊断中具有强大的潜力。