Pavillon Nicolas, Smith Nicholas I
Osaka University, Immunology Frontier Research Center (IFReC), Biophotonics Laboratory, Suita, Osaka 565-0871, Japan.
Osaka University, Immunology Frontier Research Center (IFReC), Biophotonics Laboratory, Suita, Osaka 565-0871, JapanbPRESTO, Japan Science and Technology Agency (JST), Chiyodaku, Tokyo 102-0076, Japan.
J Biomed Opt. 2015 Jan;20(1):016007. doi: 10.1117/1.JBO.20.1.016007.
Raman spectroscopy is an optical method providing sample molecular composition, which can be analyzed (by point measurements) or spatially mapped by Raman imaging. These provide different information, signal-to-noise ratios, and require different acquisition times. Here, we quantitatively assess Raman spectral features and compare the two measurement methods by multivariate analysis. We also propose a hybrid method: scanning the beam through the sample but optically binning the signal at one location on the detector. This approach generates significantly more useful spectral signals in terms of peak visibility and statistical information. Additionally, by combination with a complementary imaging mode such as quantitative phase microscopy, hybrid imaging allows high throughput and robust spectral analysis while retaining sample spatial information. We demonstrate the improved ability to discriminate between cell lines when using hybrid scanning compared to typical point mode measurements, by quantitatively evaluating spectra taken from two macrophage-like cell lines. Hybrid scanning also provides better classification capability than the full Raman imaging mode, while providing higher signal-to-noise signals with shorter acquisition times. This hybrid imaging approach is suited for various applications including cytometry, cancer versus noncancer detection, and label-free discrimination of cell types or tissues.
拉曼光谱是一种提供样品分子组成的光学方法,它可以(通过点测量)进行分析,也可以通过拉曼成像进行空间映射。这两种方法提供不同的信息、信噪比,并且需要不同的采集时间。在这里,我们通过多变量分析定量评估拉曼光谱特征并比较这两种测量方法。我们还提出了一种混合方法:让光束扫描样品,但在探测器上的一个位置对信号进行光学合并。这种方法在峰可见性和统计信息方面产生了明显更多有用的光谱信号。此外,通过与定量相显微镜等互补成像模式相结合,混合成像在保留样品空间信息的同时,实现了高通量和稳健的光谱分析。通过定量评估取自两种巨噬细胞样细胞系的光谱,我们证明了与典型的点模式测量相比,使用混合扫描时区分细胞系的能力有所提高。混合扫描还提供了比全拉曼成像模式更好的分类能力,同时在更短的采集时间内提供更高的信噪比信号。这种混合成像方法适用于各种应用,包括细胞计数、癌症与非癌症检测以及细胞类型或组织的无标记区分。