Abu Nahia Karim, Sulej Agata, Migdał Maciej, Ochocka Natalia, Ho Richard, Kamińska Bożena, Zagorski Marcin, Winata Cecilia Lanny
International Institute of Molecular and Cell Biology, Warsaw, Poland.
Laboratory of Molecular Neurobiology, Nencki Institute of Experimental Biology, Warsaw, Poland.
iScience. 2024 May 22;27(6):110083. doi: 10.1016/j.isci.2024.110083. eCollection 2024 Jun 21.
We utilized scRNA-seq to delineate the diversity of cell types in the zebrafish heart. Transcriptome profiling of over 50,000 cells at 48 and 72 hpf defined at least 18 discrete cell lineages of the developing heart. Utilizing well-established gene signatures, we identified a population of cells likely to be the primary pacemaker and characterized the transcriptome profile defining this critical cell type. Two previously uncharacterized genes, and , were found to be enriched in the sinoatrial cardiomyocytes. CRISPR/Cas9-mediated knockout of these two genes significantly reduced heart rate, implicating their role in cardiac development and conduction. Additionally, we describe other cardiac cell lineages, including the endothelial and neural cells, providing their expression profiles as a resource. Our results established a detailed atlas of the developing heart, providing valuable insights into cellular and molecular mechanisms, and pinpointed potential new players in heart rhythm regulation.
我们利用单细胞RNA测序来描绘斑马鱼心脏中细胞类型的多样性。在受精后48小时和72小时对超过50000个细胞进行转录组分析,确定了发育中心脏至少18个离散的细胞谱系。利用成熟的基因特征,我们鉴定出了一群可能是主要起搏点的细胞,并对定义这一关键细胞类型的转录组特征进行了表征。发现两个先前未被表征的基因在窦房结心肌细胞中富集。CRISPR/Cas9介导的这两个基因敲除显著降低了心率,暗示它们在心脏发育和传导中的作用。此外,我们描述了其他心脏细胞谱系,包括内皮细胞和神经细胞,并提供了它们的表达谱作为资源。我们的结果建立了发育中心脏的详细图谱,为细胞和分子机制提供了有价值的见解,并确定了心律调节中潜在的新参与者。