Biomedical Engineering, Boston University, Boston, MA 02155, USA.
Electrical and Computer Engineering, Boston University, Boston, MA 02155, USA.
Sci Adv. 2023 Aug 18;9(33):eadg6061. doi: 10.1126/sciadv.adg6061. Epub 2023 Aug 16.
Metabolic reprogramming in a subpopulation of cancer cells is a hallmark of tumor chemoresistance. However, single-cell metabolic profiling is difficult because of the lack of a method that can simultaneously detect multiple metabolites at the single-cell level. In this study, through hyperspectral stimulated Raman scattering (hSRS) imaging in the carbon-hydrogen (C-H) window and sparsity-driven hyperspectral image decomposition, we demonstrate a high-content hSRS (hSRS) imaging approach that enables the simultaneous mapping of five major biomolecules, including proteins, carbohydrates, fatty acids, cholesterol, and nucleic acids at the single-cell level. hSRS imaging of brain and pancreatic cancer cells under chemotherapy revealed acute and adapted chemotherapy-induced metabolic reprogramming and the unique metabolic features of chemoresistance. Our approach is expected to facilitate the discovery of therapeutic targets to combat chemoresistance. This study illustrates a high-content, label-free chemical imaging approach that measures metabolic profiles at the single-cell level and warrants further research on cellular metabolism.
肿瘤细胞亚群中的代谢重编程是肿瘤化疗耐药的一个标志。然而,由于缺乏一种能够在单细胞水平同时检测多种代谢物的方法,单细胞代谢谱分析一直存在困难。在这项研究中,我们通过在碳氢(C-H)窗口的超光谱受激拉曼散射(hSRS)成像和稀疏驱动的超光谱图像分解,展示了一种高内涵 hSRS(hSRS)成像方法,该方法能够在单细胞水平上同时绘制包括蛋白质、碳水化合物、脂肪酸、胆固醇和核酸在内的五种主要生物分子。对化疗下的脑癌细胞和胰腺癌细胞进行 hSRS 成像,揭示了急性和适应性化疗诱导的代谢重编程以及耐药性的独特代谢特征。我们的方法有望促进发现对抗化疗耐药性的治疗靶点。本研究说明了一种高内涵、无标记的化学成像方法,可在单细胞水平上测量代谢谱,并需要进一步研究细胞代谢。