DNA-Programmed Orientation-Ordered Multivalent Microfluidic Interface for Liquid Biopsy.
Jiao PengYilong LiuRui SuLiuqing ZengZixuan HuoRuixiao PengXiyuan YuHuimin ZhangChaoyong James YangLiu YangZhi ZhuPublished in: Analytical chemistry (2022)
Aptamer-functionalized microfluidic interfaces hold great potential for liquid biopsies owing to their programmable nature. However, most previous studies have focused on development of multivalent aptamers to improve binding affinity, while ignoring aptamer orientation on microfluidic interfaces, resulting in suboptimal accessibility and affinity. Herein, we report a C ubic D NA N anostructure ( CDN )-programmed strategy to precisely control the orientation and valency of the Apt amer on a microfluidic interface (CDN-Apt-Chip) for enhancing the capture and release of circulating tumor cells (CTCs). We demonstrate that the ordered orientation and multivalent configuration can synergistically increase the binding affinity of aptamers toward CTCs. By using CDN-Apt-Chip, we successfully isolated CTCs from the peripheral blood of T-cell leukemia patients and discriminated T-cell leukemia patients from healthy volunteers. Furthermore, the captured CTCs were nondestructively released via nuclease treatment. We then performed T-cell receptor sequencing on the released cells to demonstrate the compatibility with downstream analysis. Overall, this study provides a new paradigm for interface regulation of functional microfluidic chips and advances the clinical translation of aptamer-based liquid biopsy.
Keyphrases
- circulating tumor cells
- circulating tumor
- end stage renal disease
- peripheral blood
- ejection fraction
- newly diagnosed
- gold nanoparticles
- acute myeloid leukemia
- prognostic factors
- peritoneal dialysis
- bone marrow
- single cell
- ultrasound guided
- induced apoptosis
- sensitive detection
- dna binding
- oxidative stress
- quantum dots
- nucleic acid
- signaling pathway
- magnetic nanoparticles
- cell free
- data analysis