Hubrecht Institute, Royal Netherlands Academy of Arts and Sciences (KNAW) and University Medical Center Utrecht, Utrecht, the Netherlands; Oncode Institute, the Netherlands.
Hubrecht Institute, Royal Netherlands Academy of Arts and Sciences (KNAW) and University Medical Center Utrecht, Utrecht, the Netherlands.
Mol Cell. 2022 May 19;82(10):1956-1970.e14. doi: 10.1016/j.molcel.2022.03.009. Epub 2022 Apr 1.
Recent advances in single-cell sequencing technologies have enabled simultaneous measurement of multiple cellular modalities, but the combined detection of histone post-translational modifications and transcription at single-cell resolution has remained limited. Here, we introduce EpiDamID, an experimental approach to target a diverse set of chromatin types by leveraging the binding specificities of single-chain variable fragment antibodies, engineered chromatin reader domains, and endogenous chromatin-binding proteins. Using these, we render the DamID technology compatible with the genome-wide identification of histone post-translational modifications. Importantly, this includes the possibility to jointly measure chromatin marks and transcription at the single-cell level. We use EpiDamID to profile single-cell Polycomb occupancy in mouse embryoid bodies and provide evidence for hierarchical gene regulatory networks. In addition, we map H3K9me3 in early zebrafish embryogenesis, and detect striking heterochromatic regions specific to notochord. Overall, EpiDamID is a new addition to a vast toolbox to study chromatin states during dynamic cellular processes.
单细胞测序技术的最新进展使得同时测量多个细胞状态成为可能,但在单细胞分辨率下联合检测组蛋白翻译后修饰和转录仍受到限制。在这里,我们介绍了 EpiDamID,这是一种通过利用单链可变片段抗体、工程化的染色质读域和内源性染色质结合蛋白的结合特异性来靶向多种染色质类型的实验方法。利用这些,我们使 DamID 技术能够与全基因组鉴定组蛋白翻译后修饰兼容。重要的是,这包括在单细胞水平上联合测量染色质标记和转录的可能性。我们使用 EpiDamID 来描绘小鼠胚胎体中的单个细胞多梳占据情况,并提供了层次化基因调控网络的证据。此外,我们还绘制了早期斑马鱼胚胎发生过程中的 H3K9me3,并检测到了脊索特有的显著异染色质区域。总的来说,EpiDamID 是研究动态细胞过程中染色质状态的庞大工具包中的一个新成员。