Scaling up to study brca2: the zeppelin zebrafish mutant reveals a role for brca2 in embryonic development of kidney mesoderm.

Cancer cell & microenvironment Pub Date : 2018-01-01 Epub Date: 2018-04-09 DOI:10.14800/ccm.1630
Bridgette E Drummond, Rebecca A Wingert
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引用次数: 6

Abstract

Specialized renal epithelial cells known as podocytes are essential components of the filtering structures within the kidney that coordinate the process of removing waste from the bloodstream. Podocyte loss initiates many human kidney diseases as it triggers subsequent damage to the kidney, leading to progressive loss of function that culminates with end stage renal failure. Podocyte morphology, function and gene expression profiles are well conserved between zebrafish and humans, making the former a relevant model to study podocyte development and model kidney diseases. Recently, we reported that whole genome sequencing of the zeppelin (zep) zebrafish mutant, which exhibits podocyte abrogation, revealed that the causative lesion for this defect was a splicing mutation in the breast cancer 2, early onset (brca2) gene. This was a surprising and novel discovery, as previous research on brca2/BRCA2 in a number of vertebrate animal models had not implicated an explicit role for this gene in kidney mesoderm development. Interestingly, the abrogation of the podocyte lineage in zep mutants was also accompanied by the formation of a larger interrenal (IR) gland, which is analogous to the adrenal gland in mammals, and suggested a fate switch between the renal and inter renal mesodermal derivatives. Mirroring these findings, knockdown of brca2 also recapitulated the loss of podocytes and increased IR population. In addition, brca2 overexpression was sufficient to partially rescue podocytes in zep mutants, and induced ectopic podocyte formation in wild-type embryos. Interestingly, immunofluorescence studies indicated that zep mutants had elevated P-h2A.X levels, suggesting that DNA repair is dysfunctional in these animals and contributes to the zep phenotype. Moving forward, this unique zebrafish mutant provides a new model to further explore how brca2 contributes to the development of tissues including the kidney mesoderm-roles which may have implications for renal diseases as well.

Abstract Image

Abstract Image

扩大研究brca2:齐柏林斑马鱼突变揭示了brca2在肾中胚层胚胎发育中的作用。
被称为足细胞的特化肾上皮细胞是肾脏内过滤结构的重要组成部分,协调从血液中清除废物的过程。足细胞的丢失引发了许多人类肾脏疾病,因为它引发了随后的肾脏损伤,导致功能的逐渐丧失,最终导致终末期肾功能衰竭。斑马鱼足细胞的形态、功能和基因表达谱在人类和斑马鱼之间具有良好的保守性,使斑马鱼成为研究足细胞发育和肾脏疾病模型的相关模型。最近,我们报道了齐柏林(zep)斑马鱼突变体的全基因组测序,显示足细胞消失,揭示了这种缺陷的致病病变是乳腺癌2,早发性(brca2)基因的剪接突变。这是一个令人惊讶的新发现,因为之前在许多脊椎动物模型中对brca2/ brca2的研究并没有暗示该基因在肾中胚层发育中的明确作用。有趣的是,在zep突变体中足细胞谱系的消失也伴随着一个更大的肾间腺(IR)的形成,这类似于哺乳动物的肾上腺,这表明肾脏和肾间中胚层衍生物之间的命运转换。与这些发现相呼应的是,brca2基因的敲低也会导致足细胞的减少和IR数量的增加。此外,brca2过表达足以部分挽救zep突变体的足细胞,并在野生型胚胎中诱导异位足细胞形成。有趣的是,免疫荧光研究表明,zep突变体的P-h2A水平升高。这表明这些动物的DNA修复功能失调,并导致了zep表型。展望未来,这种独特的斑马鱼突变体为进一步探索brca2如何促进包括肾脏中胚层在内的组织的发育提供了一个新的模型,这可能对肾脏疾病也有影响。
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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