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细胞周期驱动的转录组成熟赋予心脏咽祖细胞多谱系分化能力。

Cell cycle-driven transcriptome maturation confers multilineage competence to cardiopharyngeal progenitors.

作者信息

Bernadskaya Yelena Y, Kuan Ariel, Tjärnberg Andreas, Brandenburg Jonas, Zheng Ping, Wiechecki Keira, Kaplan Nicole, Failla Margaux, Bikou Maria, Madilian Oliver, Wang Wei, Christiaen Lionel

机构信息

Department of Biology, New York University, New York, NY, USA.

Michael Sars Centre, University of Bergen, Bergen, Norway.

出版信息

bioRxiv. 2024 Jul 23:2024.07.23.604718. doi: 10.1101/2024.07.23.604718.

Abstract

During development, stem and progenitor cells divide and transition through germ layer- and lineage-specific multipotent states to generate the diverse cell types that compose an animal. Defined changes in biomolecular composition underlie the progressive loss of potency and acquisition of lineage-specific characteristics. For example, multipotent cardiopharyngeal progenitors display multilineage transcriptional priming, whereby both the cardiac and pharyngeal muscle programs are partially active and coexist in the same progenitor cells, while their daughter cells engage in a cardiac or pharyngeal muscle differentiation path only after cell division. Here, using the tunicate Ciona, we studied the acquisition of multilineage competence and the coupling between fate decisions and cell cycle progression. We showed that multipotent cardiopharyngeal progenitors acquire the competence to produce distinct (+) and (-) daughter cells shortly before mitosis, which is necessary for activation. By combining transgene-based sample barcoding with single cell RNA-seq (scRNA-seq), we uncovered transcriptome-wide dynamics in migrating cardiopharyngeal progenitors as cells progress through G1, S and G2 phases. We termed this process "transcriptome maturation", and identified candidate "mature genes", including the Rho GAP-coding gene , which peak in late G2. Functional assays indicated that transcriptome maturation fosters cardiopharyngeal competence, in part through multilineage priming and proper oriented and asymmetric division that influences subsequent fate decisions, illustrating the concept of "behavioral competence". Both classic feedforward circuits and coupling with cell cycle progression drive transcriptome maturation, uncovering distinct levels of coupling between cell cycle progression and fateful molecular transitions. We propose that coupling competence and fate decision with the G2 and G1 phases, respectively, ensures the timely deployment of lineage-specific programs.

摘要

在发育过程中,干细胞和祖细胞通过胚层和谱系特异性多能状态进行分裂和转变,以生成构成动物体的各种细胞类型。生物分子组成的特定变化是细胞潜能逐渐丧失和获得谱系特异性特征的基础。例如,多能心咽祖细胞表现出多谱系转录起始,即心脏和咽肌程序均部分激活并共存于同一祖细胞中,而它们的子细胞仅在细胞分裂后才进入心脏或咽肌分化途径。在这里,我们利用被囊动物海鞘研究了多谱系能力的获得以及命运决定与细胞周期进程之间的耦合关系。我们发现,多能心咽祖细胞在有丝分裂前不久获得产生不同(+)和(-)子细胞的能力,这是激活所必需的。通过将基于转基因的样本条形码技术与单细胞RNA测序(scRNA-seq)相结合,我们揭示了心咽祖细胞在经历G1、S和G2期迁移过程中的全转录组动态变化。我们将这个过程称为“转录组成熟”,并鉴定出候选“成熟基因”,包括在G2晚期达到峰值的Rho GAP编码基因。功能分析表明,转录组成熟促进了心咽能力,部分是通过多谱系起始以及影响后续命运决定的正确定向和不对称分裂来实现的,这阐明了“行为能力”的概念。经典的前馈回路以及与细胞周期进程的耦合都驱动了转录组成熟,揭示了细胞周期进程与决定性分子转变之间不同层次的耦合关系。我们提出,分别将能力和命运决定与G2期和G1期耦合,确保了谱系特异性程序的及时部署。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfdb/11291048/446809d4e9ca/nihpp-2024.07.23.604718v1-f0001.jpg

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