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In vivo protein trapping produces a functional expression codex of the vertebrate proteome.体内蛋白质捕获产生脊椎动物蛋白质组的功能性表达密码子。
Nat Methods. 2011 Jun;8(6):506-15. doi: 10.1038/nmeth.1606. Epub 2011 May 8.
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Emerging properties of animal gene regulatory networks.动物基因调控网络的新兴特性。
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Transgenic labeling of the zebrafish pronephric duct and tubules using a promoter from the enpep gene.利用来自enpep基因的启动子对斑马鱼前肾管和肾小管进行转基因标记。
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The WTX/AMER1 gene family: evolution, signature and function.WTX/AMER1 基因家族:进化、特征与功能。
BMC Evol Biol. 2010 Sep 15;10:280. doi: 10.1186/1471-2148-10-280.
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SCORE imaging: specimen in a corrected optical rotational enclosure.SCORE 成像:标本在经校正的光学旋转外壳中。
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Modularity and design principles in the sea urchin embryo gene regulatory network.棘皮动物胚胎基因调控网络的模块化和设计原则。
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Nicotine response genetics in the zebrafish.斑马鱼中的尼古丁反应遗传学
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Inferring selection in the Anopheles gambiae species complex: an example from immune-related serine protease inhibitors.推断冈比亚按蚊复合体中的选择:以免疫相关丝氨酸蛋白酶抑制剂为例。
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Role of CCN, a vertebrate specific gene family, in development.CCN(一种脊椎动物特有的基因家族)在发育过程中的作用。
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特异性谱系基因 ponzr1 对于斑马鱼前肾和咽弓的发育是必需的。

The lineage-specific gene ponzr1 is essential for zebrafish pronephric and pharyngeal arch development.

机构信息

Department of Biochemistry and Molecular Biology, Mayo Clinic, 200 First Street SW, Rochester, MN 55905, USA.

出版信息

Development. 2012 Feb;139(4):793-804. doi: 10.1242/dev.071720.

DOI:10.1242/dev.071720
PMID:22274699
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3265064/
Abstract

The Homeobox (Hox) and Paired box (Pax) gene families are key determinants of animal body plans and organ structure. In particular, they function within regulatory networks that control organogenesis. How these conserved genes elicit differences in organ form and function in response to evolutionary pressures is incompletely understood. We molecularly and functionally characterized one member of an evolutionarily dynamic gene family, plac8 onzin related protein 1 (ponzr1), in the zebrafish. ponzr1 mRNA is expressed early in the developing kidney and pharyngeal arches. Using ponzr1-targeting morpholinos, we show that ponzr1 is required for formation of the glomerulus. Loss of ponzr1 results in a nonfunctional glomerulus but retention of a functional pronephros, an arrangement similar to the aglomerular kidneys found in a subset of marine fish. ponzr1 is integrated into the pax2a pathway, with ponzr1 expression requiring pax2a gene function, and proper pax2a expression requiring normal ponzr1 expression. In addition to pronephric function, ponzr1 is required for pharyngeal arch formation. We functionally demonstrate that ponzr1 can act as a transcription factor or co-factor, providing the first molecular mode of action for this newly described gene family. Together, this work provides experimental evidence of an additional mechanism that incorporates evolutionarily dynamic, lineage-specific gene families into conserved regulatory gene networks to create functional organ diversity.

摘要

同源盒(Hox)和配对盒(Pax)基因家族是动物体计划和器官结构的关键决定因素。特别是,它们在控制器官发生的调节网络中发挥作用。这些保守基因如何在进化压力下引起器官形态和功能的差异尚不完全清楚。我们在斑马鱼中对一个进化动态基因家族的一个成员——plac8 onzin 相关蛋白 1(ponzr1)进行了分子和功能表征。ponzr1mRNA 在发育中的肾脏和咽弓中早期表达。使用 ponzr1 靶向的 morpholino,我们表明 ponzr1 是肾小球形成所必需的。ponzr1 的缺失导致肾小球无功能,但保留了功能正常的前肾,这种排列类似于在一部分海洋鱼类中发现的无肾小球肾脏。ponzr1 整合到 pax2a 途径中,ponzr1 的表达需要 pax2a 基因的功能,而适当的 pax2a 表达需要正常的 ponzr1 表达。除了前肾功能外,ponzr1 还需要咽弓形成。我们从功能上证明了 ponzr1 可以作为转录因子或共因子发挥作用,为这个新描述的基因家族提供了第一个分子作用模式。总之,这项工作提供了实验证据,证明了一种额外的机制,即将进化动态的、谱系特异性的基因家族纳入保守的调节基因网络,以创造功能器官多样性。