Immune Cells and Antibody Engineering Research Center in University of Guizhou Province, Key Laboratory of Biology and Medical Engineering, School of Biology and Engineering (School of Modern Industry for Health and Medicine), Guizhou Medical University, Guiyang 550025, China.
Immune Cells and Antibody Engineering Research Center in University of Guizhou Province, Key Laboratory of Biology and Medical Engineering, School of Biology and Engineering (School of Modern Industry for Health and Medicine), Guizhou Medical University, Guiyang 550025, China.
Biosens Bioelectron. 2023 Oct 15;238:115564. doi: 10.1016/j.bios.2023.115564. Epub 2023 Aug 3.
The identification and detection of mesenchymal circulating tumor cells (mCTCs) is important for early warning of tumor metastasis. The majority of conventional detection methods for CTCs rely on the recognition of epithelial biomarkers, which is technically challenging for detecting CTCs with epithelial-mesenchymal transition (EMT)-induced phenotypic alteration. In this work, we have constructed a label-free biosensor for sensitive electrochemical assay of mCTCs. In our design, the capture probe can recognize the vimentin overexpressed on the surface of mCTCs with high specificity. Meantime, the network-like DNA nanoprobes with multiple G-quadruplex/hemin complexes and multiple cholesterol molecules can be grafted to the cell surface based on the high affinity between cholesterol molecules and cell membrane. Owing to the mimic horseradish peroxidase of G-quadruplex/hemin complexes, strong electrochemical responses will be obtained for sensitive quantification of mCTCs with a detection limit of 8 cell mL. Moreover, the biosensor can effectively overcome the interference of vimentin negative cells or secretory vimentin, and realize the recovery tests in whole blood with high accuracy, thereby may further promoting the diagnosis and personalized treatment of cancer in clinic.
间充质循环肿瘤细胞(mCTC)的鉴定和检测对于肿瘤转移的早期预警非常重要。大多数用于 CTC 检测的传统方法都依赖于上皮生物标志物的识别,而对于具有上皮-间充质转化(EMT)诱导表型改变的 CTC 的检测,这在技术上具有挑战性。在这项工作中,我们构建了一种无标记的生物传感器,用于敏感的电化学分析 mCTC。在我们的设计中,捕获探针可以高度特异性地识别表面上过表达的波形蛋白。同时,具有多个 G-四链体/血红素复合物和多个胆固醇分子的网络状 DNA 纳米探针可以基于胆固醇分子与细胞膜之间的高亲和力被接枝到细胞表面上。由于 G-四链体/血红素复合物模拟辣根过氧化物酶,因此可以获得强的电化学响应,从而可以对 mCTC 进行敏感的定量,检测限为 8 个细胞 mL。此外,该生物传感器可以有效地克服波形蛋白阴性细胞或分泌波形蛋白的干扰,并在全血中实现高准确性的恢复测试,从而可能进一步促进癌症的临床诊断和个性化治疗。