Hu Hao, Guo Songcheng, Li Yiyuan, Dong Kejun, Lu Yan, Ye Keyi, Li Longjie, Zhou Xiaoyu, Cheng Liming, Xiao Xianjin
Department of laboratory medicine, Tongji hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430030, China.
Institute of Reproductive Health, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430030, China.
Nat Commun. 2025 May 30;16(1):5035. doi: 10.1038/s41467-025-60265-8.
Detecting small molecules is pivotal across fields like clinical diagnostics, environmental monitoring, and food safety. The CRISPR-Cas12a system, known for its simplicity and sensitivity, offers a promising basis for small molecule detection. However, current CRISPR-based detection methods face challenges, including complex design requirements, high background noise, and limited adaptability to different targets. In our study, we introduce the SBS-Cas system, leveraging a split crRNA mode to induce spatial hindrance on the scaffold strand through molecular binding. This approach prevents the assembly with Cas12a, effectively masking its trans-cleavage activity. By introducing small molecules that competitively bind to the macromolecule, we eliminate this spatial hindrance, activating Cas12a. Our results demonstrate high sensitivity, versatility, and adaptability in small molecule detection across multiple reactions, with successful intracellular imaging and responsive fluctuations in complex environments underscoring the system's robustness. This innovative CRISPR-Cas12a-based approach establishes a low-background, highly sensitive platform for small molecule detection. SBS-Cas promises not only to enhance tools for clinical, environmental, and food safety applications but also to advance CRISPR research, providing insights and expanding possibilities in molecular detection science.
检测小分子在临床诊断、环境监测和食品安全等领域至关重要。以其简单性和敏感性而闻名的CRISPR-Cas12a系统为小分子检测提供了一个有前景的基础。然而,当前基于CRISPR的检测方法面临挑战,包括复杂的设计要求、高背景噪声以及对不同靶标的适应性有限。在我们的研究中,我们引入了SBS-Cas系统,利用分裂crRNA模式通过分子结合在支架链上诱导空间位阻。这种方法阻止了与Cas12a的组装,有效地掩盖了其反式切割活性。通过引入与大分子竞争性结合的小分子,我们消除了这种空间位阻,激活了Cas12a。我们的结果表明,该系统在多种反应的小分子检测中具有高灵敏度、多功能性和适应性,细胞内成像的成功以及复杂环境中的响应波动突出了该系统的稳健性。这种基于CRISPR-Cas12a的创新方法建立了一个用于小分子检测的低背景、高灵敏度平台。SBS-Cas不仅有望增强临床、环境和食品安全应用的工具,还将推动CRISPR研究,为分子检测科学提供见解并拓展可能性。