State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences, Nanjing University, Nanjing, 210023, People's Republic of China.
Department of Anesthesiology, The First Affiliated Hospital of Nanjing Medical University, Nanjing, 210029, People's Republic of China.
Mikrochim Acta. 2021 Jun 2;188(6):220. doi: 10.1007/s00604-021-04856-4.
Efficient capture and release of circulating tumor cells play an important role in cancer diagnosis, but the limited affinity of monovalent adhesion molecules in existing capture technologies leads to low capture efficiency, and the captured cells are difficult to be separated. Inspired by the phenomenon that the long tentacles of jellyfish contain multiple adhesion domains and can effectively capture moving food, we have constructed a biomimetic recognition strategy to capture and release tumor cells. In details, gold-coated magnetic nanomaterials (Au@FeO NPs) were first prepared and characterized by scanning electron microscopy, UV-vis absorption spectra, and Zeta potential. Then, the DNA primers modified on Au@FeO nanoparticles can be extended to form many radialized DNA products by rolling circle amplification. These long DNA products resemble jellyfish tentacles and contain multivalent aptamers that can be extended into three dimensions to increase the accessibility of target cells, resulting in efficient, simple, rapid, and specific cells capture. The capture efficiencies are no less than 92% in PBS buffer and 77% in blood. Subsequently, DNase I was selected to degrade biomimetic tentacles to release the captured tumor cells with high viability. This release strategy can not only improve cell viability, but also reduce a tedious release process and unnecessary costs. We believe that the proposed method can be expanded for the capture and release of various tumor cells and will inspire the development of circulating tumor cells analysis. A biomimetic recognition strategy for capture and release of circulating tumor cells has been developed. This method modified specific P1 DNA primers on Au@FeO NPs to form many radialized DNA products by rolling circle amplification. These products can efficiently capture CTCs since it contains multiple aptamers with a multivalent binding capacity. This make it a promising tool to capture and release of other tumor cells, and will inspire the development of CTC analysis.
高效捕获和释放循环肿瘤细胞在癌症诊断中起着重要作用,但现有捕获技术中单价黏附分子的亲和力有限,导致捕获效率低,且捕获的细胞难以分离。受水母长触须中含有多个黏附结构域,可有效捕获移动食物的现象启发,我们构建了一种仿生识别策略来捕获和释放肿瘤细胞。具体而言,首先制备并通过扫描电子显微镜、紫外-可见吸收光谱和 Zeta 电位对金包覆的磁性纳米材料(Au@FeO NPs)进行了表征。然后,修饰在 Au@FeO 纳米颗粒上的 DNA 引物可通过滚环扩增延伸形成许多辐射状的 DNA 产物。这些长的 DNA 产物类似于水母触须,含有多价适体,可以延伸到三维空间,增加靶细胞的可及性,从而实现高效、简单、快速和特异性的细胞捕获。在 PBS 缓冲液中的捕获效率不低于 92%,在血液中的捕获效率不低于 77%。随后,选择 DNase I 降解仿生触手以释放具有高活力的捕获的肿瘤细胞。这种释放策略不仅可以提高细胞活力,还可以减少繁琐的释放过程和不必要的成本。我们相信,所提出的方法可以扩展到用于捕获和释放各种肿瘤细胞,并将启发循环肿瘤细胞分析的发展。开发了一种用于捕获和释放循环肿瘤细胞的仿生识别策略。该方法通过滚环扩增将特定的 P1 DNA 引物修饰在 Au@FeO NPs 上,形成许多辐射状的 DNA 产物。这些产物可以通过含有多价结合能力的多个适体高效地捕获 CTC,因此它是一种有前途的捕获和释放其他肿瘤细胞的工具,并将启发循环肿瘤细胞分析的发展。