Suppr超能文献

发育中鸡肢的单细胞转录组图谱。

A single-cell transcriptomic atlas of the developing chicken limb.

机构信息

DUW Zoology, University of Basel, Vesalgasse 1, CH-4051, Basel, Switzerland.

Klarman Cell Observatory, Broad Institute of MIT and Harvard, Cambridge, MA, 02142, USA.

出版信息

BMC Genomics. 2019 May 22;20(1):401. doi: 10.1186/s12864-019-5802-2.

Abstract

BACKGROUND

Through precise implementation of distinct cell type specification programs, differentially regulated in both space and time, complex patterns emerge during organogenesis. Thanks to its easy experimental accessibility, the developing chicken limb has long served as a paradigm to study vertebrate pattern formation. Through decades' worth of research, we now have a firm grasp on the molecular mechanisms driving limb formation at the tissue-level. However, to elucidate the dynamic interplay between transcriptional cell type specification programs and pattern formation at its relevant cellular scale, we lack appropriately resolved molecular data at the genome-wide level. Here, making use of droplet-based single-cell RNA-sequencing, we catalogue the developmental emergence of distinct tissue types and their transcriptome dynamics in the distal chicken limb, the so-called autopod, at cellular resolution.

RESULTS

Using single-cell RNA-sequencing technology, we sequenced a total of 17,628 cells coming from three key developmental stages of chicken autopod patterning. Overall, we identified 23 cell populations with distinct transcriptional profiles. Amongst them were small, albeit essential populations like the apical ectodermal ridge, demonstrating the ability to detect even rare cell types. Moreover, we uncovered the existence of molecularly distinct sub-populations within previously defined compartments of the developing limb, some of which have important signaling functions during autopod pattern formation. Finally, we inferred gene co-expression modules that coincide with distinct tissue types across developmental time, and used them to track patterning-relevant cell populations of the forming digits.

CONCLUSIONS

We provide a comprehensive functional genomics resource to study the molecular effectors of chicken limb patterning at cellular resolution. Our single-cell transcriptomic atlas captures all major cell populations of the developing autopod, and highlights the transcriptional complexity in many of its components. Finally, integrating our data-set with other single-cell transcriptomics resources will enable researchers to assess molecular similarities in orthologous cell types across the major tetrapod clades, and provide an extensive candidate gene list to functionally test cell-type-specific drivers of limb morphological diversification.

摘要

背景

通过精确实施在空间和时间上都有差异调节的不同细胞类型特化程序,在器官发生过程中会出现复杂的模式。由于其易于进行实验,发育中的鸡翅膀长期以来一直是研究脊椎动物模式形成的范例。通过几十年的研究,我们现在已经牢牢掌握了在组织水平上驱动肢体形成的分子机制。然而,要阐明转录细胞类型特化程序与相关细胞尺度上的模式形成之间的动态相互作用,我们在全基因组水平上缺乏分辨率适当的分子数据。在这里,我们利用基于液滴的单细胞 RNA 测序,在细胞分辨率下对鸡翅膀的远端(即所谓的附肢)的不同组织类型的发育出现及其转录组动态进行了编目。

结果

我们使用单细胞 RNA 测序技术,总共对来自鸡附肢模式形成的三个关键发育阶段的 17628 个细胞进行了测序。总的来说,我们鉴定出了 23 个具有不同转录特征的细胞群体。其中包括虽然很小但很重要的细胞群体,如顶端外胚层嵴,证明了我们能够检测到甚至是罕见的细胞类型。此外,我们还揭示了在发育中的附肢中先前定义的隔室中存在分子上不同的亚群,其中一些在附肢模式形成过程中具有重要的信号功能。最后,我们推断出与发育时间上不同组织类型相对应的基因共表达模块,并利用它们来追踪正在形成的指骨中的模式形成相关细胞群体。

结论

我们提供了一个全面的功能基因组资源,用于在细胞分辨率下研究鸡翅膀模式形成的分子效应物。我们的单细胞转录组图谱捕获了发育中附肢的所有主要细胞群体,并强调了其许多成分的转录复杂性。最后,将我们的数据集与其他单细胞转录组资源集成,将使研究人员能够评估主要四足动物类群中同源细胞类型的分子相似性,并提供一个广泛的候选基因列表,以功能测试肢体形态多样化的细胞类型特异性驱动因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/044a/6530069/742e1d7d72cb/12864_2019_5802_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验