Hefei National Laboratory for Physical Sciences at the Microscale, School of Chemistry and Materials Science , University of Science and Technology of China , 230026 Hefei , China.
School of Pharmacy , University of Wisconsin-Madison , Madison , Wisconsin 53705 , United States.
Anal Chem. 2019 Aug 20;91(16):10441-10447. doi: 10.1021/acs.analchem.9b00716. Epub 2019 Jun 27.
Direct chemical profiling and protein identification from living single cells using mass spectrometry (MS) have been demonstrated to further our understanding of biological variability and differential susceptibility to several diseases and treatments. Despite the great challenge from extremely complicated cytoplasm, we recently proposed a versatile MS strategy to achieve direct mass spectrometric characterization of both proteins and metabolite-like small molecules directly from living cells or single cells. Although the capability to directly handle cell cytoplasm was presumably attributed to microelectrophoresis in our previous studies, the assumption had only been partially explored by some preliminary experiments. To better understand the mechanism, herein, we systematically characterized its separation behavior with a series of model compounds covering a wide range of molecular size. With the merit of in situ separation, microelectrophoresis herein has been further demonstrated as an attractive and alternative tool, which can potentially contribute to direct MS measurements of more protein interactions or metabolic pathways in living single cells or a few cells.
利用质谱(MS)直接对活单细胞进行化学分析和蛋白质鉴定,进一步加深了我们对生物变异性和对多种疾病及治疗方法的不同敏感性的理解。尽管来自极其复杂的细胞质的挑战巨大,但我们最近提出了一种通用的 MS 策略,可直接从活细胞或单细胞中对蛋白质和代谢物样小分子进行直接质谱表征。尽管在我们之前的研究中,推测微电泳是直接处理细胞质的能力的原因,但这一假设仅通过一些初步实验进行了部分探索。为了更好地理解这一机制,在此,我们使用一系列涵盖广泛分子量范围的模型化合物系统地对其分离行为进行了表征。微电泳具有原位分离的优点,在此进一步被证明是一种有吸引力的替代工具,它有可能有助于直接测量活单细胞或少量细胞中的更多蛋白质相互作用或代谢途径的 MS。