利用非洲爪蟾发现与BOR和其他先天性听力损失综合征有关的新的候选基因。

IF 1.8 3区 生物学 Q3 DEVELOPMENTAL BIOLOGY Journal of experimental zoology. Part B, Molecular and developmental evolution Pub Date : 2023-10-13 DOI:10.1002/jez.b.23222
Scott J. Neal, Anindita Rajasekaran, Nisveta Jusić, Louis Taylor, Mai Read, Dominique Alfandari, Francesca Pignoni, Sally A. Moody
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引用次数: 0

摘要

婴儿的听力对大脑发育、语言技能的习得和社交互动的发展至关重要。因此,重要的是在出生后立即诊断听力损失,以便尽早提供干预措施。在美国,大多数新生儿都会接受听力缺陷筛查,商业上可买到的下一代测序听力损失小组通常可以识别致病基因,这也可能识别其他器官的先天性缺陷。最常见的常染色体显性遗传先天性听力损失综合征之一是鳃-肾综合征(BOR),它也表现为颅面结构和肾脏的缺陷。目前,已知在大约一半接受测试的BOR患者中,SIX1、SIX5和EYA1三个基因的突变是致病原因。为了发现可以添加到先天性听力损失基因筛选中的新的候选基因,我们将果蝇突变体和蛋白质生化分析的能力与非洲爪蟾的胚胎学优势相结合,非洲爪蟾是一种与人类基因组高度相似的关键水生动物模型,以鉴定在耳发育过程中发挥作用的潜在Six1转录靶标和相互作用蛋白。我们回顾了我们的转录组学、酵母2-杂交和蛋白质组学方法,这些方法揭示了大量新的候选者。我们还讨论了我们是如何开始确定Six1和共因子如何相互作用来指导正常耳发育所需的发育事件的。
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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Using Xenopus to discover new candidate genes involved in BOR and other congenital hearing loss syndromes

Hearing in infants is essential for brain development, acquisition of verbal language skills, and development of social interactions. Therefore, it is important to diagnose hearing loss soon after birth so that interventions can be provided as early as possible. Most newborns in the United States are screened for hearing deficits and commercially available next-generation sequencing hearing loss panels often can identify the causative gene, which may also identify congenital defects in other organs. One of the most prevalent autosomal dominant congenital hearing loss syndromes is branchio-oto-renal syndrome (BOR), which also presents with defects in craniofacial structures and the kidney. Currently, mutations in three genes, SIX1, SIX5, and EYA1, are known to be causative in about half of the BOR patients that have been tested. To uncover new candidate genes that could be added to congenital hearing loss genetic screens, we have combined the power of Drosophila mutants and protein biochemical assays with the embryological advantages of Xenopus, a key aquatic animal model with a high level of genomic similarity to human, to identify potential Six1 transcriptional targets and interacting proteins that play a role during otic development. We review our transcriptomic, yeast 2-hybrid, and proteomic approaches that have revealed a large number of new candidates. We also discuss how we have begun to identify how Six1 and co-factors interact to direct developmental events necessary for normal otic development.

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来源期刊
CiteScore
4.80
自引率
9.10%
发文量
63
审稿时长
6-12 weeks
期刊介绍: Developmental Evolution is a branch of evolutionary biology that integrates evidence and concepts from developmental biology, phylogenetics, comparative morphology, evolutionary genetics and increasingly also genomics, systems biology as well as synthetic biology to gain an understanding of the structure and evolution of organisms. The Journal of Experimental Zoology -B: Molecular and Developmental Evolution provides a forum where these fields are invited to bring together their insights to further a synthetic understanding of evolution from the molecular through the organismic level. Contributions from all these branches of science are welcome to JEZB. We particularly encourage submissions that apply the tools of genomics, as well as systems and synthetic biology to developmental evolution. At this time the impact of these emerging fields on developmental evolution has not been explored to its fullest extent and for this reason we are eager to foster the relationship of systems and synthetic biology with devo evo.
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