A novel electrochemiluminescent cytosensor using dual-target magnetic probe recognition and nanozymes-catalyzed cascade signal amplification for precise phenotypic enumeration of CTCs

IF 5.3 2区 化学 Q1 CHEMISTRY, ANALYTICAL
Congcong Shen, Simin Fan, Xiaoqing Li, Fanshu Guo, Junru Li, Minghui Yang
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引用次数: 0

Abstract

The inability of surgical biopsy to monitor the dynamic evolution of cancer cells hampers its capacity to reflect real-time tumor heterogeneity. Circulating tumor cells (CTCs), as a crucial target in liquid biopsy, offer a novel approach for accurate monitoring of tumors. However, the rarity and complex phenotype resulting from epithelial-mesenchymal transition pose challenges for conventional methods such as CellSearch and immunohistochemistry, which have insufficient ability for simultaneous phenotyping and enumeration of CTCs. The enumeration of a single phenotype CTCs is insufficient for accurately assessing disease progression. Herein, we propose a strategy to address this issue by fabricating an electrochemiluminescence cytosensor via the integration of dual-target enrichment and nanozymes-catalyzed cascade signal amplification. The graphene oxide@hollow mesoporous Prussian blue/Pt (GO@HMPB/Pt) complex, possessing a large specific surface area and exceptional catalytic activity, is employed for loading a substantial amount of luminol as the signal probe. Dual-target magnetic PPy@Fe3O4/Au-antibody/aptamer is utilized for the magnetic capture of both epithelial and interstitial CTCs. Glutathione (GSH) can disrupt the Au–S bond on aptamer by a thiol exchange reaction and selectively releases a specific subset of phenotypic CTCs, thereby facilitating the efficient capture, accurate classification, and ultrasensitive detection of CTCs in peripheral blood. Using the epithelial MCF-7 and mesenchymal Hela cells as models, the ECL cytosensor demonstrates excellent performance in identifying cells spiked into whole blood. This study presents a novel approach for early detection of metastasis, tracking tumor recurrence, and monitoring therapeutic efficacy.

Graphical abstract

一种新型电化学发光细胞传感器,利用双目标磁性探针识别和纳米酶催化的级联信号放大技术对 CTC 进行精确表型计数
手术活检无法监测癌细胞的动态演变,这阻碍了其实时反映肿瘤异质性的能力。循环肿瘤细胞(CTCs)作为液体活检的重要目标,为准确监测肿瘤提供了一种新方法。然而,上皮-间质转化过程中产生的CTC细胞稀少且表型复杂,这给CellSearch和免疫组化等传统方法带来了挑战,因为这些方法无法同时对CTC细胞进行表型和计数。单一表型 CTC 的计数不足以准确评估疾病进展。在此,我们提出了一种解决这一问题的策略,即通过整合双目标富集和纳米酶催化级联信号放大,制造一种电化学发光细胞传感器。氧化石墨烯@中空介孔普鲁士蓝/铂(GO@HMPB/Pt)复合物具有较大的比表面积和优异的催化活性,可用于装载大量的发光酚作为信号探针。双目标磁性 PPy@Fe3O4/Au 抗体/aptamer 用于上皮和间质 CTC 的磁性捕获。谷胱甘肽(GSH)可通过硫醇交换反应破坏aptamer 上的 Au-S 键,并选择性地释放特定表型的 CTC 子集,从而促进外周血中 CTC 的高效捕获、准确分类和超灵敏检测。以上皮细胞 MCF-7 和间质细胞 Hela 为模型,ECL 细胞传感器在识别全血中的细胞方面表现出卓越的性能。这项研究为早期检测转移、跟踪肿瘤复发和监测疗效提供了一种新方法。
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来源期刊
Microchimica Acta
Microchimica Acta 化学-分析化学
CiteScore
9.80
自引率
5.30%
发文量
410
审稿时长
2.7 months
期刊介绍: As a peer-reviewed journal for analytical sciences and technologies on the micro- and nanoscale, Microchimica Acta has established itself as a premier forum for truly novel approaches in chemical and biochemical analysis. Coverage includes methods and devices that provide expedient solutions to the most contemporary demands in this area. Examples are point-of-care technologies, wearable (bio)sensors, in-vivo-monitoring, micro/nanomotors and materials based on synthetic biology as well as biomedical imaging and targeting.
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