Division of Developmental Biology, Department of Pediatrics, Cincinnati Children's Hospital Medical, Cincinnati, OH 45229, USA.
University of Cincinnati, College of Medicine, Department of Pediatrics, Cincinnati, OH 45229, USA.
Development. 2023 Apr 15;150(8). doi: 10.1242/dev.201237. Epub 2023 Apr 27.
Primary cilia are nearly ubiquitous organelles that transduce molecular and mechanical signals. Although the basic structure of the cilium and the cadre of genes that contribute to ciliary formation and function (the ciliome) are believed to be evolutionarily conserved, the presentation of ciliopathies with narrow, tissue-specific phenotypes and distinct molecular readouts suggests that an unappreciated heterogeneity exists within this organelle. Here, we provide a searchable transcriptomic resource for a curated primary ciliome, detailing various subgroups of differentially expressed genes within the ciliome that display tissue and temporal specificity. Genes within the differentially expressed ciliome exhibited a lower level of functional constraint across species, suggesting organism and cell-specific function adaptation. The biological relevance of ciliary heterogeneity was functionally validated by using Cas9 gene-editing to disrupt ciliary genes that displayed dynamic gene expression profiles during osteogenic differentiation of multipotent neural crest cells. Collectively, this novel primary cilia-focused resource will allow researchers to explore longstanding questions related to how tissue and cell-type specific functions and ciliary heterogeneity may contribute to the range of phenotypes associated with ciliopathies.
初级纤毛是几乎普遍存在的细胞器,可转导分子和机械信号。虽然纤毛的基本结构和有助于纤毛形成和功能的基因(纤毛组)被认为在进化上是保守的,但纤毛病的表现具有狭窄的、组织特异性的表型和不同的分子读数,这表明该细胞器存在未被认识到的异质性。在这里,我们提供了一个可搜索的经过精心整理的初级纤毛转录组资源,详细描述了纤毛组内具有组织和时间特异性的差异表达基因的各种亚群。差异表达的纤毛组内的基因在物种间表现出较低水平的功能约束,这表明存在特定于生物体和细胞的功能适应性。通过使用 Cas9 基因编辑来破坏在多能神经嵴细胞成骨分化过程中显示动态基因表达谱的纤毛基因,对纤毛异质性的生物学相关性进行了功能验证。总的来说,这个新的以初级纤毛为重点的资源将使研究人员能够探索与组织和细胞类型特异性功能以及纤毛异质性如何有助于与纤毛病相关的一系列表型相关的长期存在的问题。