功能材料表面修饰用于循环肿瘤细胞的捕获
Functional Materials Surface Modified for the Capture of Circulating Tumor Cells
DOI: 10.12677/NAT.2021.111001, PDF,  被引量    科研立项经费支持
作者: 张正涛, 陈朝会, 何荣祥*:江汉大学交叉学科研究院,湖北 武汉;阮梅林:华中科技大学化学与化工学院,湖北 武汉
关键词: 微流控芯片循环肿瘤细胞抗体修饰静电纺丝捕获 Micro-Fluidic Chip Circulating Tumor Cells Antibody Modification Electr-Ostatic Spinning Capture
摘要: 本研究以循环肿瘤细胞(MCF-7)为研究对象,利用软光刻技术制备了微米尺寸的微柱,利用静电纺丝技术在含有微柱结构的基底上面纺上PLGA纳米纤维,形成一种微米和纳米复合尺寸的生物界面,在纳米纤维上修饰特异性抗体,实现肿瘤细胞(MCF-7)的捕获。这种研究方法结合了微流控技术和静电纺丝技术,制备出一种三维微柱网络支架结构,增大了细胞的捕获空间,再通过对微结构上的纳米纤维进行改性,提高了循环肿瘤细胞检测的灵敏度,这种研究方法大大提高了循环肿瘤细胞检测的效率,为临床癌症检测提供了新的研究方向。
Abstract: In this study, circulating tumor cells (McF-7) were used as the research object. Microcolumns of micron size were prepared by soft photolithography. Using electrostatic spinning technology, PLGA nanofibers were spun on the microcolumnar substrates, then a micron-nanocomposite biological interface was prepared. Specific antibodies were modified on nanofibers, circulating tumor cells can be captured at this time. This research method combines microfluidic technology and electrostatic spinning technology. The three-dimensional microcolumn network scaffold structure is prepared to increase the capture space of cells, and the sensitivity of detection of circulating tumor cells was improved by modifying the nanofibers on the microstructure. This method greatly improves the detection efficiency of circulating tumor cells, and also provides a new research direction for clinical cancer detection.
文章引用:张正涛, 阮梅林, 陈朝会, 何荣祥. 功能材料表面修饰用于循环肿瘤细胞的捕获[J]. 纳米技术, 2021, 11(1): 1-7. https://doi.org/10.12677/NAT.2021.111001

参考文献

[1] Zhao, Y., Xu, D. and Tan, W. (2017) Aptamer-Functionalized Nano/Micro-Materials for Clinical Diagnosis: Isolation, Release and Bioanalysis of Circulating Tumor Cells. Integrative Biology, 9, 188-205. [Google Scholar] [CrossRef] [PubMed]
[2] Hyun, K.-A., Lee, T.Y., Lee, S.H. and Jung, H.-I. (2015) Two-Stage Mi-crofluidic Chip for Selective Isolation of Circulating Tumor Cells (CTCs). Biosensors and Bioelectronics, 67, 86-92. [Google Scholar] [CrossRef] [PubMed]
[3] Fitzgerald, R.C. (2020) Big Data Is Crucial to the Early Detection of Cancer. Nature Medicine, 26, 19-20. [Google Scholar] [CrossRef] [PubMed]
[4] Yang, C.G., Zhang, N.G., Wang, S.Y., Shi, D.D., Zhang, C.X., Liu, K., et al. (2018) Wedge-Shaped Microfluidic Chip for Circulating Tumor Cells Isolation and Its Clinical Significance in Gastric Cancer. Journal of Translational Medicine, 16, Article No. 139. [Google Scholar] [CrossRef] [PubMed]
[5] Tulley, S., Zhao, Q., Dong, H., Pearl, M.L. and Chen, W.-T. (2016) Vita-AssayTM Method of Enrichment and Identification of Circulating Cancer Cells/Circulating Tumor Cells (CTCs). In: Cao, J., Ed., Breast Cancer, Humana Press, New York, 107-119. [Google Scholar] [CrossRef] [PubMed]
[6] Zhang, L., Li, X.S. and Zhou, L.Q. (2016) Renal Tumor Biop-sy Technique. Chinese Medical Journal, 129, 1236-1240. [Google Scholar] [CrossRef] [PubMed]
[7] Zhou, Y., Liu, C.H., Li, J., Li, Z.W., Zhou, L.X., Chen, K., et al. (2014) Tumor Margin Detection Using Optical Biopsy Techniques. Optical Biopsy 12th International Society for Optics and Photonics, San Francisco, 17 March 2014, Article ID: 894014. [Google Scholar] [CrossRef
[8] Schulte, T.H., Bardell, R.L. and Weigl, B.H. (2002) Microfluidic Tech-nologies in Clinical Diagnostics. Clinica Chimica Acta, 321, 1-10. [Google Scholar] [CrossRef
[9] Squires, T.M. and Quake, S.R. (2005) Micro-Fluidics: Fluid Physics at the Nanoliter Scale. Reviews of Modern Physics, 77, 977-1026. [Google Scholar] [CrossRef
[10] Kalish, H. (2011) Application of Micro-Fluidic Devices for Biomarker Analysis in Human Biological Fluids. In: Olsztynska, S., Ed., Biomedical Engineering: Trends, Research and Technologies, IntechOpen, London, 121-140. [Google Scholar] [CrossRef
[11] Marimuthu, M. and Kim, S. (2011) Microfluidic Cell Coculture Methods for Understanding Cell Biology, Analyzing Bio/Pharmaceuticals, and Developing Tissue Constructs. Analytical Biochemis-try, 413, 81-89. [Google Scholar] [CrossRef] [PubMed]
[12] Hynes, R.O., Begum, S. and Labelle, M. (2013) Platelets, Tumor Cell Invasiveness, and Metastasis. Blood, 122, SCI-31. [Google Scholar] [CrossRef
[13] Rodríguez-San-Miguel, D., Abrishamkar, A., Navarro, J.A.R., Rodriguez-Trujillo, R., Amabilino, D.B., Mas-Ballesté, R., et al. (2016) Crystalline Fibres of a Covalent Organic Framework through Bottom-up Microfluidic Synthesis. Chemical Communications, 52, 9212-9215. [Google Scholar] [CrossRef
[14] Zhao, Z., Yang, Y., Zeng, Y. and He, M. (2016) A microfluidic Ex-oSearch Chip for Multiplexed Exosome Detection towards Blood-Based Ovarian Cancer Diagnosis. Lab on a Chip, 16, 489-496. [Google Scholar] [CrossRef
[15] Zhang, H., Yang, Y., Li, X., Shi, Y.Z., Hu, B., An, Y., et al. (2018) Frequency-Enhanced Transferrin Receptor Antibody-Labelled Microfluidic Chip (FETAL-Chip) Enables Efficient Enrichment of Circulating Nucleated Red Blood Cells for Non-Invasive Prenatal Diagnosis. Lab on a Chip, 18, 2749-2756. [Google Scholar] [CrossRef
[16] Zhao, W., Liu, Y., Jenkins, B.D., Cheng, R., Harris, B.N., Zhang, W.Z., et al. (2019) Tumor Antigen-Independent and Cell Size Variation-Inclusive Enrichment of Viable Circulat-ing Tumor Cells. Lab on a Chip, 19, 1860-1876. [Google Scholar] [CrossRef
[17] Bein, A., Shin, W., Jalili-Firoozinezhad, S., Park, M.H., Son-theimer-Phelps, A., Tovaglieri, A., et al. (2018) Microfluidic Organ-on-a-Chip Models of Human Intestine. Cellular and Molecular Gastroenterology and Hepatology, 5, 659-668. [Google Scholar] [CrossRef] [PubMed]
[18] Sequist, L.V., Louis, D.N., Morgan, B.P., Emmink, B.L., Miyamoto, D.T., Brachtel, E., et al. (2013) Inertial Focusing for Tumor Antigen-Dependent and -Independent Sorting of Rare Circulating Tumor Cells. Science Translational Medicine, 5, 179ra47. [Google Scholar] [CrossRef] [PubMed]
[19] Sheng, W., Ogunwobi, O.O., Chen, T., Zhang, J.L., George, T.J., Liu, C., et al. (2014) Capture, Release and Culture of Circulating Tumor Cells from Pancreatic Cancer Patients Us-ing an Enhanced Mixing Chip. Lab on a chip, 14, 89-98. [Google Scholar] [CrossRef
[20] Han, X., Liu, Z. and Zhao, L. (2020) Preparation of Optically Func-tional Nanofibres and Their Optical Properties under Electrospinning Technology. International Journal of Nanotech-nology, 17, Article No. 308. [Google Scholar] [CrossRef
[21] 李娜. 微纳结构与纳米材料在肿瘤检测及心肌分化中的应用研究[D]: [硕士学位论文]. 武汉: 江汉大学, 2016.