Zebrafish anterior segment mesenchyme progenitors are defined by function of tfap2a but not sox10

IF 2.2 3区 生物学 Q4 CELL BIOLOGY Differentiation Pub Date : 2023-03-01 DOI:10.1016/j.diff.2022.11.002
Oliver Vöcking , K. Van Der Meulen, M.K. Patel, J.K. Famulski
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Abstract

The anterior segment is a critical component of the visual system. Developing independent of the retina, the AS relies partially on cranial neural crest cells (cNCC) as its earliest progenitors. The cNCCs are thought to first adopt a periocular mesenchyme (POM) fate and subsequently target to the AS upon formation of the rudimentary retina. AS targeted POM is termed anterior segment mesenchyme (ASM). However, it remains unknown when and how the switch from cNCC to POM or POM to ASM takes place. As such, we sought to visualize the timing of these transitions and identify the regulators of this process using the zebrafish embryo model. Using two color fluorescence in situ hybridization, we tracked cNCC and ASM target gene expression from 12 to 24hpf. In doing so, we identified a tfap2a and foxC1a co-expression at 16hpf, identifying the earliest ASM to arrive at the AS. Interestingly, expression of two other key regulators of NCC, foxD3 and sox10 was not associated with early ASM. Functional analysis of tfap2a, foxD3 and sox10 revealed that tfap2a and foxD3 are both critical regulators of ASM specification and AS formation while sox10 was dispensable for either specification or development of the AS. Using genetic knockout lines, we show that in the absence of tfap2a or foxD3 function ASM cells are not specified, and subsequently the AS is malformed. Conversely, sox10 genetic mutants or CRISPR Cas9 injected embryos displayed no defects in ASM specification, migration or the AS. Lastly, using transcriptomic analysis, we show that GFP + cNCCs derived from Tg [foxD3:GFP] and Tg [foxC1b:GFP] share expression profiles consistent with ASM development whereas cNCCs isolated from Tg [sox10:GFP] exhibit expression profiles associated with vasculogenesis, muscle function and pigmentation. Taken together, we propose that the earliest stage of anterior segment mesenchyme (ASM) specification in zebrafish is approximately 16hpf and involves tfap2a/foxC1a positive cNCCs.

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斑马鱼前节间充质祖细胞由tfap2a的功能决定,而不是sox10的功能
眼前节是视觉系统的重要组成部分。AS独立于视网膜发育,部分依赖于颅神经嵴细胞(cNCC)作为其最早的祖细胞。cNCCs被认为首先采用眼周间充质(POM)命运,随后在初级视网膜形成时靶向AS。AS靶向的POM称为前段间充质(ASM)。然而,从cNCC到POM或从POM到ASM的切换何时以及如何发生仍然是未知的。因此,我们试图使用斑马鱼胚胎模型来可视化这些转变的时间,并确定这一过程的调节因子。使用双色荧光原位杂交,我们跟踪了cNCC和ASM靶基因在12至24hpf的表达。在这样做的过程中,我们确定了tfap2a和foxC1a在16hpf共表达,从而确定了最早到达AS的ASM。有趣的是,NCC的另外两个关键调节因子foxD3和sox10的表达与早期ASM无关。对tfap2a、foxD3和sox10的功能分析表明,tfap2a和foxD3都是ASM鉴定和AS形成的关键调节因子,而sox10对AS的鉴定或发育是可有可无的。使用基因敲除系,我们发现在缺乏tfap2a或foxD3的情况下,ASM细胞的功能没有被鉴定,随后AS畸形。相反,sox10遗传突变体或CRISPR-Cas9注射的胚胎在ASM规范、迁移或AS方面没有表现出缺陷。最后,使用转录组学分析,我们发现衍生自Tg[foxD3:GFP]和Tg[fox C1b:GFP]GFP+cNCCs共享与ASM发育一致的表达谱,而分离自Tg[sox10:GFP]的cNCCs表现出与血管生成、肌肉功能和色素沉着相关的表达谱。总之,我们提出斑马鱼前段间充质(ASM)规范的最早阶段约为16hpf,涉及tfap2a/foxC1a阳性的cNCCs。
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来源期刊
Differentiation
Differentiation 生物-发育生物学
CiteScore
4.10
自引率
3.40%
发文量
38
审稿时长
51 days
期刊介绍: Differentiation is a multidisciplinary journal dealing with topics relating to cell differentiation, development, cellular structure and function, and cancer. Differentiation of eukaryotes at the molecular level and the use of transgenic and targeted mutagenesis approaches to problems of differentiation are of particular interest to the journal. The journal will publish full-length articles containing original work in any of these areas. We will also publish reviews and commentaries on topics of current interest. The principal subject areas the journal covers are: • embryonic patterning and organogenesis • human development and congenital malformation • mechanisms of cell lineage commitment • tissue homeostasis and oncogenic transformation • establishment of cellular polarity • stem cell differentiation • cell reprogramming mechanisms • stability of the differentiated state • cell and tissue interactions in vivo and in vitro • signal transduction pathways in development and differentiation • carcinogenesis and cancer • mechanisms involved in cell growth and division especially relating to cancer • differentiation in regeneration and ageing • therapeutic applications of differentiation processes.
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