Tao Yang, Dong Li, Zisheng Luo, Jingjing Wang, Fangbin Xiao, Yanqun Xu, Xingyu Lin
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引用次数: 0
摘要
直接对生物样本上的核酸进行原位成像,有利于在不提取 DNA 的情况下进行快速分析。然而,由于分子的高流动性,传统的水溶液核酸扩增往往会丢失空间信息。与细胞基质类似,具有仿生三维纳米封闭空间的水凝胶可以限制核酸的自由扩散,从而实现超快的原位酶反应。本研究开发了基于水凝胶的原位空间封闭界面扩增(iSCIA)技术,可直接对生物样本上的单个核酸和单个病原体进行成像,而无需甲醛固定。在聚乙二醇水凝胶涂层的作用下,样品上的核酸被纳米封闭,移动受到限制,同时原位扩增可以成功进行。因此,核酸在 20 分钟内就能在大尺度表面发光,检测限低至 1 个拷贝/10 平方厘米。此外,还利用深度学习模型建立了多重成像,可自动分析多个目标。此外,iSCIA 对植物叶片和食品上病原体的成像成功用于监测植物健康和食品安全。所提出的技术是一种快速灵活的原位成像系统,在食品、环境和临床应用方面具有巨大潜力。
Space-Confined Amplification for In Situ Imaging of Single Nucleic Acid and Single Pathogen on Biological Samples
Direct in situ imaging of nucleic acids on biological samples is advantageous for rapid analysis without DNA extraction. However, traditional nucleic acid amplification in aqueous solutions tends to lose spatial information because of the high mobility of molecules. Similar to a cellular matrix, hydrogels with biomimetic 3D nanoconfined spaces can limit the free diffusion of nucleic acids, thereby allowing for ultrafast in situ enzymatic reactions. In this study, hydrogel-based in situ space-confined interfacial amplification (iSCIA) is developed for direct imaging of single nucleic acid and single pathogen on biological samples without formaldehyde fixation. With a polyethylene glycol hydrogel coating, nucleic acids on the sample are nanoconfined with restricted movement, while in situ amplification can be successfully performed. As a result, the nucleic acids are lighted-up on the large-scale surface in 20 min, with a detection limit as low as 1 copy/10 cm2. Multiplex imaging with a deep learning model is also established to automatically analyze multiple targets. Furthermore, the iSCIA imaging of pathogens on plant leaves and food is successfully used to monitor plant health and food safety. The proposed technique, a rapid and flexible system for in situ imaging, has great potential for food, environmental, and clinical applications.
期刊介绍:
Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.