Zebrafish Kelch-like family member 4 is required for vasculogenesis and hematopoiesis

IF 2.1 3区 生物学 Q2 DEVELOPMENTAL BIOLOGY
Kaitlin Ferrari, Suman Gurung, Luiza N. Loges, Surya Prakash Rao Batta, Myles A. Hammond, Martyna Griciunaite, Ricardo DeMoya, Nicole K. Restrepo, Saulius Sumanas
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Abstract

Molecular mechanisms regulating vascular development and hematopoiesis are still incompletely understood. The KLHL (Kelch-like) family of proteins function as adapters to target proteins for ubiquitination. However, their role in vascular development has not been previously analyzed. Here we have characterized a novel regulator of vascular development, kelch-like family member 4 (klhl4) in zebrafish. We show that zebrafish klhl4 is expressed in early vascular endothelial and hematopoietic progenitors, while its expression is restricted to vascular endothelial cells during later developmental stages. To determine the functional role of klhl4, we generated loss-of-function zebrafish mutants using CRISPR/Cas9 genome editing. klhl4 mutant embryos were viable, yet they exhibited delayed sprouting of intersegmental vessels (ISVs), which correlated with reduced expression of vascular endothelial and erythroid specific molecular markers. Time-lapse imaging showed that vascular endothelial and hematopoietic progenitor cells exhibit delayed migration towards the midline and undergo increased apoptosis and reduced proliferation in klhl4 mutants. Expression of npas4l and etv2/etsrp, two master regulators of endothelial and hematopoietic development, was reduced in klhl4 mutants, suggesting that some vascular defects could be caused by the reduction of npas4l and etv2 expression. However, npas4l or etv2 overexpression failed to rescue ISV sprouting defects in klhl4 mutants, suggesting that klhl4 may promote vasculogenesis by additional mechanisms. In summary, our findings demonstrate a novel role for zebrafish klhl4 in regulating vascular endothelial and hematopoietic development during embryogenesis. Because the Klhl4 protein sequence is highly conserved between different vertebrates, it is likely that it may play a similar role in other organisms.

Abstract Image

斑马鱼的kelch样蛋白-4是血管形成和造血所必需的。
调控血管发育和造血的分子机制尚不完全清楚。KLHL (kelch样)蛋白家族是泛素化靶蛋白的转接器。然而,它们在血管发育中的作用以前没有被分析过。在这里,我们描述了斑马鱼血管发育的一种新的调节因子,kelch样家族成员4 (klhl4)。我们发现斑马鱼的klhl4在早期血管内皮细胞和造血祖细胞中表达,而在发育后期仅限于血管内皮细胞表达。为了确定klhl4的功能作用,我们使用CRISPR/Cas9基因组编辑技术生成了功能缺失的斑马鱼突变体。klhl4突变胚胎是有活力的,但它们表现出节段间血管(isv)的延迟发芽,这与血管内皮和红系特异性分子标记的表达减少有关。延时成像显示,在klhl4突变体中,血管内皮细胞和造血祖细胞向中线的迁移延迟,凋亡增加,增殖减少。在klhl4突变体中,内皮和造血发育的两个主要调节因子npas4l和etv2/etsrp的表达减少,这表明一些血管缺陷可能是由npas4l和etv2表达减少引起的。然而,在klhl4突变体中,npas4l或etv2过表达未能挽救ISV发芽缺陷,这表明klhl4可能通过其他机制促进血管发生。总之,我们的研究结果表明斑马鱼在胚胎发生过程中,klhl4在调节血管内皮和造血发育中的新作用。由于Klhl4蛋白序列在不同的脊椎动物之间高度保守,它很可能在其他生物中发挥类似的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Developmental biology
Developmental biology 生物-发育生物学
CiteScore
5.30
自引率
3.70%
发文量
182
审稿时长
1.5 months
期刊介绍: Developmental Biology (DB) publishes original research on mechanisms of development, differentiation, and growth in animals and plants at the molecular, cellular, genetic and evolutionary levels. Areas of particular emphasis include transcriptional control mechanisms, embryonic patterning, cell-cell interactions, growth factors and signal transduction, and regulatory hierarchies in developing plants and animals.
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