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平行多步数字分析 SlilpChip 通过数字 LAMP-CRISPR 对核酸进行定量分析得到验证。

Parallel multistep digital analysis SlipChip demonstrated with the quantification of nucleic acid by digital LAMP-CRISPR.

机构信息

School of Biomedical Engineering, Shanghai Jiao Tong University, 1954 Hua Shan Road, Shanghai, 200030, China.

MineBio Technology LLC, 333 Gui Ping Road, Shanghai, 200233, China.

出版信息

Lab Chip. 2022 Aug 9;22(16):2954-2961. doi: 10.1039/d2lc00284a.

Abstract

Digital biological analysis compartmentalizes targets of interest, such as nucleic acids, proteins, and cells, to a single event level and performs detection and further investigation. Microfluidic-based digital biological analysis methods, including digital PCR, digital protein analysis, and digital cell analysis, have demonstrated superior advantages in research applications and clinical diagnostics. However, most of the methods are still based on a one-step "divide and detect" strategy, and it is challenging for these methods to perform further parallel manipulation of reaction partitions to achieve "divide, manipulate, and analyze" capabilities. Here, we present a parallel multistep digital analysis (PAMDA) SlipChip for the parallel multistep manipulation of a large number of droplets for digital biological analysis, demonstrated by the quantification of SARS-CoV-2 nucleic acids by a two-step digital isothermal amplification combined with clustered regularly interspaced short palindromic repeats (CRISPR). This PAMDA SlipChip utilizes a "chain-of-pearl" channel with a self-partitioning droplet formation mechanism that does not require the precise alignment of microfeatures for fluidic loading as the traditional SlipChip design. This device can first generate 2400 3.2 nanoliter droplets to perform digital loop-mediated isothermal amplification (LAMP) and then deliver reagents containing Cas12a protein and crRNA to each individual partition in parallel to simultaneously initiate digital CRISPR detection by a simple multistep slipping operation. This PAMDA SlipChip not only provides a promising tool to perform digital CRISPR with a flexible assay and workflow design but can also be applied for a broad range of applications in digital biological analysis that require multistep manipulation of partitions in parallel.

摘要

数字生物分析将感兴趣的目标(如核酸、蛋白质和细胞)分隔到单个事件水平,并进行检测和进一步研究。基于微流控的数字生物分析方法,包括数字 PCR、数字蛋白质分析和数字细胞分析,在研究应用和临床诊断中显示出了卓越的优势。然而,大多数方法仍然基于一步“分而析之”的策略,这些方法很难对反应分区进行进一步的并行操作,以实现“分而析之”的能力。在这里,我们提出了一种并行多步数字分析(PAMDA)SlipChip,用于对大量液滴进行并行多步操作,用于数字生物分析,通过两步数字等温扩增与簇状规则间隔短回文重复(CRISPR)相结合对 SARS-CoV-2 核酸进行定量来证明。这种 PAMDA SlipChip 利用了一种具有自分隔液滴形成机制的“珍珠链”通道,不需要像传统的 SlipChip 设计那样对微特征进行精确对准即可进行流体加载。该装置首先可以生成 2400 个 3.2 纳升的液滴,以进行数字环介导等温扩增(LAMP),然后并行地将包含 Cas12a 蛋白和 crRNA 的试剂输送到每个单独的分区中,通过简单的多步滑动操作同时启动数字 CRISPR 检测。这种 PAMDA SlipChip 不仅为数字 CRISPR 提供了一种具有灵活的分析和工作流程设计的有前途的工具,而且还可以应用于需要并行对分区进行多步操作的数字生物分析的广泛应用中。

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