Department of Molecular Biology, Faculty of Science, Radboud University, Radboud Institute for Molecular Life Sciences (RIMLS), 6525GA Nijmegen, the Netherlands.
Fluidigm Corporation, South San Francisco, California 94080, USA.
Genome Res. 2021 May;31(5):919-933. doi: 10.1101/gr.260745.120. Epub 2021 Mar 11.
Epigenetic profiling by chromatin immunoprecipitation followed by sequencing (ChIP-seq) has become a powerful tool for genome-wide identification of regulatory elements, for defining transcriptional regulatory networks, and for screening for biomarkers. However, the ChIP-seq protocol for low-input samples is laborious and time-consuming and suffers from experimental variation, resulting in poor reproducibility and low throughput. Although prototypic microfluidic ChIP-seq platforms have been developed, these are poorly transferable as they require sophisticated custom-made equipment and in-depth microfluidic and ChIP expertise, while lacking parallelization. To enable standardized, automated ChIP-seq profiling of low-input samples, we constructed microfluidic PDMS-based plates capable of performing 24 sensitive ChIP reactions within 30 min of hands-on time and 4.5 h of machine-running time. These disposable plates can be conveniently loaded into a widely available controller for pneumatics and thermocycling. In light of the plug and play (PnP) ChIP plates and workflow, we named our procedure PnP-ChIP-seq. We show high-quality ChIP-seq on hundreds to a few thousand of cells for all six post-translational histone modifications that are included in the International Human Epigenome Consortium set of reference epigenomes. PnP-ChIP-seq robustly detects epigenetic differences on promoters and enhancers between naive and more primed mouse embryonic stem cells (mESCs). Furthermore, we used our platform to generate epigenetic profiles of rare subpopulations of mESCs that resemble the two-cell stage of embryonic development. PnP-ChIP-seq allows nonexpert laboratories worldwide to conveniently run robust, standardized ChIP-seq, whereas its high throughput, consistency, and sensitivity pave the way toward large-scale profiling of precious sample types such as rare subpopulations of cells or biopsies.
通过染色质免疫沉淀 followed by sequencing(ChIP-seq)进行表观遗传谱分析已成为鉴定调控元件、定义转录调控网络以及筛选生物标志物的强大工具。然而,用于低输入样本的 ChIP-seq 方案繁琐且耗时,并受到实验变异性的影响,导致重现性差且通量低。尽管已经开发出了原型微流控 ChIP-seq 平台,但由于需要复杂的定制设备和深入的微流控和 ChIP 专业知识,同时缺乏并行化,因此这些平台难以转移。为了实现低输入样本的标准化、自动化 ChIP-seq 分析,我们构建了基于 PDMS 的微流控板,这些板能够在 30 分钟的手工操作时间和 4.5 小时的机器运行时间内完成 24 次敏感的 ChIP 反应。这些一次性的板子可以方便地装入广泛可用的气动和热循环控制器中。鉴于即插即用(PnP)ChIP 板和工作流程,我们将我们的程序命名为 PnP-ChIP-seq。我们展示了适用于数百到数千个细胞的六种翻译后组蛋白修饰的高质量 ChIP-seq,这些细胞都包含在国际人类表观基因组协会(International Human Epigenome Consortium)的参考表观基因组集中。PnP-ChIP-seq 能够在原始和更诱导的小鼠胚胎干细胞(mESCs)之间的启动子和增强子上稳健地检测到表观遗传差异。此外,我们还使用我们的平台生成了类似于胚胎发育两细胞阶段的 mESC 稀有亚群的表观遗传图谱。PnP-ChIP-seq 允许全球非专业实验室方便地运行稳健、标准化的 ChIP-seq,而其高通量、一致性和敏感性为大规模分析珍贵样本类型(如稀有细胞亚群或活检)铺平了道路。