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Detection of circulating tumor cells in blood by shell-isolated nanoparticle – enhanced Raman spectroscopy (SHINERS) in microfluidic device

机译:壳分离纳米颗粒-微流控设备中的增强拉曼光谱(SHINERS)检测血液中循环的肿瘤细胞

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摘要

Isolation and detection of circulating tumor cells (CTCs) from human blood plays an important role in non- invasive screening of cancer evolution and in predictive therapeutic treatment. Here, we present the novel tool utilizing: (i) the microfluidic device with (ii) incorporated photovoltaic (PV) based SERS-active platform, and (iii) shell-isolated nanoparticles (SHINs) for simultaneous separation and label-free analysis of circulating tumour cells CTCs in the blood specimens with high specificity and sensitivity. The proposed microfluidic chip enables the efficient size – based inertial separation of circulating cancer cells from the whole blood samples. The SERS-active platform incorporated into the microfluidic device permits the label-free detection and identification of isolated cells through the insight into their molecular and biochemical structure. Additionally, the silver nanoparticles coated with an ultrathin shell of silica (Ag@SiO2) was used to improve the detection accuracy and sensitivity of analysed tumor cells via taking advantages of shell-isolated nanoparticle-enhanced Raman spectroscopy (SHINERS). The empirical analysis of SHINERS spectra revealed that there are some differences among studied (HeLa), renal cell carcinoma (Caki-1), and blood cells. Unique SHINERS features and differences in bands intensities between healthy and cancer cells might be associated with the variations in the quantity and quality of molecules such as lipid, protein, and DNA or their structure during the metastasis cancer formation. To demonstrate the statistical efficiency of the developed method and improve the differentiation for circulating tumors cells detection the principal component analysis (PCA) has been performed for all SHINERS data. PCA method has been applied to recognize the most significant differences in SHINERS data among the three analyzed cells: Caki-1, HeLa, and blood cells. The proposed approach challenges the current multi-steps CTCs detection methods in the terms of simplicity, sensitivity, invasiveness, destructivity, time and cost of analysis, and also prevents the defragmentation/damage of tumor cells and thus leads to improving the accuracy of analysis. The results of this research work show the potential of developed SERS based tool for the separation of tumor cells from whole blood samples in a simple and minimally invasive manner, their detection and molecular characterization using one single technology.
机译:从人血中分离和检测循环肿瘤细胞(CTC)在无创筛查癌症进展和预测性治疗中起着重要作用。在这里,我们介绍了利用以下工具的新型工具:(i)具有(ii)基于光伏(PV)的SERS活性平台的微流控设备,以及(iii)壳分离的纳米颗粒(SHIN),用于同时分离和无标签分析在血液标本中循环的肿瘤细胞四氯化碳具有高度的特异性和敏感性。拟议中的微流控芯片可实现基于大小的高效惯性分离,从全血样本中分离循环中的癌细胞。结合到微流控设备中的SERS活性平台可通过深入了解其分子和生化结构,实现无标记检测和鉴定分离细胞。此外,通过利用壳分离的纳米颗粒增强拉曼光谱(SHINERS)的优势,使用涂有二氧化硅超薄壳(Ag @ SiO2)的银纳米颗粒来提高检测的肿瘤细胞的检测准确性和灵敏度。 SHINERS光谱的经验分析表明,所研究的(HeLa),肾细胞癌(Caki-1)和血细胞之间存在一些差异。 SHINERS的独特特征和健康细胞与癌细胞之间的条带强度差异可能与转移癌形成过程中诸如脂质,蛋白质和DNA等分子的数量和质量的变化或其结构有关。为了证明所开发方法的统计效率并改善循环肿瘤细胞检测的分化,已对所有SHINERS数据进行了主成分分析(PCA)。 PCA方法已被用于识别三种分析的细胞:Caki-1,HeLa和血细胞之间的SHINERS数据的最显着差异。提出的方法在简单性,敏感性,侵袭性,破坏性,分析时间和成本方面挑战了当前的多步CTC检测方法,还防止了肿瘤细胞的碎片整理/损坏,从而提高了分析的准确性。这项研究工作的结果表明,开发的基于SERS的工具具有以简单且微创的方式从全血样品中分离肿瘤细胞,使用一种技术对其进行检测和分子表征的潜力。

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