Frataxin is essential for zebrafish embryogenesis and pronephros formation.

IF 4.6 2区 生物学 Q2 CELL BIOLOGY
Frontiers in Cell and Developmental Biology Pub Date : 2024-12-11 eCollection Date: 2024-01-01 DOI:10.3389/fcell.2024.1496244
Wesley S Ercanbrack, Austin Dungan, Ella Gaul, Mateo Ramirez, Alexander J DelVecchio, Calvin Grass, Rebecca A Wingert
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Abstract

Background and objectives: Friedreich's Ataxia (FRDA) is a genetic disease that affects a variety of different tissues. The disease is caused by a mutation in the frataxin gene (FXN) which is important for the synthesis of iron-sulfur clusters. The primary pathologies of FRDA are loss of motor control and cardiomyopathy. These occur due to the accumulation of reactive oxygen species (ROS) in the brain and the heart due to their high metabolic rates. Our research aims to understand how developmental processes and the kidney are impacted by a deficiency of FXN.

Methods: We utilized an antisense oligomer, or morpholino, to knockdown the frataxin gene (fxn) in zebrafish embryos. Knockdown was confirmed via RT-PCR, gel electrophoresis, and Sanger sequencing. To investigate phenotypes, we utilized several staining techniques including whole mount in situ hybridization, Alcian blue, and acridine orange, as well as dextran-FITC clearance assays.

Results: fxn deficient animals displayed otolith malformations, edema, and reduced survival. Alcian blue staining revealed craniofacial defects in fxn deficient animals, and gene expression studies showed that the pronephros, or embryonic kidney, had several morphological defects. We investigated the function of the pronephros through clearance assays and found that the renal function is disrupted in fxn deficient animals in addition to proximal tubule endocytosis. Utilizing acridine orange staining, we found that cell death is a partial contributor to these phenotypes.

Discussion and conclusion: This work provides new insights about how fxn deficiency impacts development and kidney morphogenesis. Additionally, this work establishes an additional model system to study FRDA.

卵黄蛋白是斑马鱼胚胎发生和肾原形成所必需的。
背景和目的:弗里德赖希共济失调(FRDA)是一种影响多种不同组织的遗传性疾病。这种疾病是由对铁硫簇的合成很重要的卵黄蛋白基因(FXN)突变引起的。FRDA的主要病理为运动控制丧失和心肌病。由于大脑和心脏的高代谢率,活性氧(ROS)在大脑和心脏中积累。我们的研究旨在了解发育过程和肾脏如何受到FXN缺乏的影响。方法:利用反义寡聚物(morpholino)敲低斑马鱼胚胎中frataxin基因(fxn)。通过RT-PCR、凝胶电泳和Sanger测序证实敲低。为了研究表型,我们使用了几种染色技术,包括全基原位杂交、阿利新蓝和吖啶橙,以及右旋糖酐- fitc清除率测定。结果:fxn缺乏的动物表现为耳石畸形、水肿和存活率降低。阿利新蓝染色显示fxn缺陷动物的颅面缺陷,基因表达研究表明原肾或胚胎肾有几种形态缺陷。我们通过清除试验研究了原肾的功能,发现除了近端小管内吞外,fxn缺陷动物的肾功能也受到破坏。利用吖啶橙染色,我们发现细胞死亡是这些表型的部分原因。讨论与结论:本研究为fxn缺乏如何影响发育和肾脏形态发生提供了新的见解。此外,本工作还建立了一个额外的模型系统来研究FRDA。
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
Frontiers in Cell and Developmental Biology
Frontiers in Cell and Developmental Biology Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
9.70
自引率
3.60%
发文量
2531
审稿时长
12 weeks
期刊介绍: Frontiers in Cell and Developmental Biology is a broad-scope, interdisciplinary open-access journal, focusing on the fundamental processes of life, led by Prof Amanda Fisher and supported by a geographically diverse, high-quality editorial board. The journal welcomes submissions on a wide spectrum of cell and developmental biology, covering intracellular and extracellular dynamics, with sections focusing on signaling, adhesion, migration, cell death and survival and membrane trafficking. Additionally, the journal offers sections dedicated to the cutting edge of fundamental and translational research in molecular medicine and stem cell biology. With a collaborative, rigorous and transparent peer-review, the journal produces the highest scientific quality in both fundamental and applied research, and advanced article level metrics measure the real-time impact and influence of each publication.
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