• 首 页
  • 实验室概况
  • 研究队伍
    • 研究员
    • 副研究员
    • 助理研究员
    • 特别研究助理(博士后)
  • 研究成果
    • 期刊论文
    • 专利
    • 审定品种
  • 科研动态
    • 实验室研究进展
    • 学术活动
  • 研究生教育
    • 学科与学位点
    • 研究生导师
    • 在读博士
    • 已毕业研究生
  • 联系我们
  • 首页
  • 实验室概况
  • 研究队伍
    • 研究员
    • 副研究员
    • 助理研究员
    • 特别研究助理(博士后)
  • 研究成果
    • 期刊论文
    • 专利
    • 审定品种
  • 科研动态
    • 实验室研究进展
    • 学术活动
  • 研究生教育
    • 学科与学位点
    • 研究生导师
    • 在读博士
    • 已毕业研究生
  • 联系我们
  1. 当前位置:首页    新闻动态    发表文章
发表文章

Expand detection windows for identifying single nucleotide polymorphisms using a   competitive toehold-mediated strand displacement ratiometric sensing platform

来源:

来源:   |  发布时间:2025-05-06   |  【 大  中  小 】

题目

Expand detection windows for identifying single nucleotide polymorphisms using a competitive toehold-mediated strand displacement ratiometric sensing platform

作者

Zhang Y,Bu S,Yang F,Huang T,Dong H,Ye J,Xie W,Feng X*,Zhang D*

发表年度

2025

刊物名称

Sensors and Actuators B: Chemical

摘要

The subtle free energy difference introduced by a single nucleotide mutation results in   poor specificity of almost all DNA hybridization probe-based single nucleotide polymorphism (SNP) detection techniques. The development of SNP biosensing strategies with both specificity and sensitivity is a hot and difficult issue in the current field. In this study, we creatively constructed a competitive toehold-mediated strand displacement sensing platform (CTMSD) based on the traditional TMSD reaction, which increased the energy barrier through the intrinsic competition mechanism and expanded the detection window of SNPs. Furthermore, based on the characteristics of the CTMSD platform, the dual-signal detection mode was introduced to change the function model of the detection curve through reporting internal reference ratio signal. The new detection curve model not only compensated for sensitivity, significantly enhanced the discrimination factor, but also greatly expanded the detection window with infinite robustness factor over the detection range. The expansion of the detection window and the improvement of specificity of CTMSD for SNP recognition based on the ratiometric signal output model were verified by computer simulations and experiments. In addition, as a deformation of the strand displacement reaction, the CTMSD was readily adaptable to commonly used signal amplification techniques, such as catalytic hairpin assembly (CHA). Through the CTMSD-CHA performance analysis and real testing of cell genomic samples, the practical application value of CTMSD with the ratiometric signal output model was confirmed. This study provides an important reference for the design and improvement of SNP biosensors and even for all nucleic acid biosensors.




附件下载:

版权所有 © 中国科学院大豆分子设计育种重点实验室 吉ICP备05002032号-1 吉公网安备22017302000214号
地址:吉林省长春市高新北区盛北大街4888号 邮编:130102
电话:+86 431 85542266   Email:iga@iga.ac.cn