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本文引用的文献

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The role of the peripodial membrane in the morphogenesis of the eye-antennal disc ofDrosophila melanogaster.围膜在黑腹果蝇眼触角盘形态发生中的作用。
Wilehm Roux Arch Dev Biol. 1983 May;192(3-4):164-170. doi: 10.1007/BF00848686.
2
Homologies between vertebrate and invertebrate eyes.脊椎动物和无脊椎动物眼睛之间的同源性。
Results Probl Cell Differ. 2002;37:219-55. doi: 10.1007/978-3-540-45398-7_14.
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Design principles of insect and vertebrate visual systems.昆虫和脊椎动物视觉系统的设计原理。
Neuron. 2010 Apr 15;66(1):15-36. doi: 10.1016/j.neuron.2010.01.018.
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Signaling in the third dimension: the peripodial epithelium in eye disc development.三维空间中的信号传导:眼盘发育中的围蛹上皮
Dev Dyn. 2009 Sep;238(9):2139-48. doi: 10.1002/dvdy.22034.
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The molecular circuitry governing retinal determination.控制视网膜发育的分子通路。
Biochim Biophys Acta. 2009 Apr;1789(4):306-14. doi: 10.1016/j.bbagrm.2008.10.001. Epub 2008 Oct 25.
6
Lobe and Serrate are required for cell survival during early eye development in Drosophila.在果蝇早期眼睛发育过程中,叶状和锯齿状结构对于细胞存活是必需的。
Development. 2006 Dec;133(23):4771-81. doi: 10.1242/dev.02686.
7
Distinct functions of homeodomain-containing and homeodomain-less isoforms encoded by homothorax.由同胸基因编码的含同源结构域和不含同源结构域的异构体的不同功能。
Genes Dev. 2006 Jun 15;20(12):1636-50. doi: 10.1101/gad.1412606.
8
A 3' cis-regulatory region controls wingless expression in the Drosophila eye and leg primordia.一个3'顺式调控区域控制果蝇眼睛和腿部原基中无翅基因的表达。
Dev Dyn. 2006 Jan;235(1):225-34. doi: 10.1002/dvdy.20606.
9
Restricted teashirt expression confers eye-specific responsiveness to Dpp and Wg signals during eye specification in Drosophila.在果蝇眼睛特化过程中,受限的无尾蛋白表达赋予眼睛对Dpp和Wg信号的特异性反应。
Development. 2005 Nov;132(22):5011-20. doi: 10.1242/dev.02082. Epub 2005 Oct 12.
10
Genetic interaction of Lobe with its modifiers in dorsoventral patterning and growth of the Drosophila eye.叶状基因与其修饰基因在果蝇眼睛背腹模式形成及生长过程中的遗传相互作用。
Genetics. 2005 Sep;171(1):169-83. doi: 10.1534/genetics.105.044180. Epub 2005 Jun 23.

背眼选择器吊兜(pnr)抑制眼命运以确定果蝇眼的背缘。

Dorsal eye selector pannier (pnr) suppresses the eye fate to define dorsal margin of the Drosophila eye.

机构信息

University of Dayton, Dayton, OH 45469, USA.

出版信息

Dev Biol. 2010 Oct 15;346(2):258-71. doi: 10.1016/j.ydbio.2010.07.030. Epub 2010 Aug 5.

DOI:10.1016/j.ydbio.2010.07.030
PMID:20691679
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2945442/
Abstract

Axial patterning is crucial for organogenesis. During Drosophila eye development, dorso-ventral (DV) axis determination is the first lineage restriction event. The eye primordium begins with a default ventral fate, on which the dorsal eye fate is established by expression of the GATA-1 transcription factor pannier (pnr). Earlier, it was suggested that loss of pnr function induces enlargement in the dorsal eye due to ectopic equator formation. Interestingly, we found that in addition to regulating DV patterning, pnr suppresses the eye fate by downregulating the core retinal determination genes eyes absent (eya), sine oculis (so) and dacshund (dac) to define the dorsal eye margin. We found that pnr acts downstream of Ey and affects the retinal determination pathway by suppressing eya. Further analysis of the "eye suppression" function of pnr revealed that this function is likely mediated through suppression of the homeotic gene teashirt (tsh) and is independent of homothorax (hth), a negative regulator of eye. Pnr expression is restricted to the peripodial membrane on the dorsal eye margin, which gives rise to head structures around the eye, and pnr is not expressed in the eye disc proper that forms the retina. Thus, pnr has dual function, during early developmental stages pnr is involved in axial patterning whereas later it promotes the head specific fate. These studies will help in understanding the developmental regulation of boundary formation of the eye field on the dorsal eye margin.

摘要

轴向模式对于器官发生至关重要。在果蝇眼睛发育过程中,背腹(DV)轴的确定是第一个谱系限制事件。眼睛原基最初具有默认的腹侧命运,通过 GATA-1 转录因子 pannier(pnr)的表达来建立背侧眼睛命运。早期,有人提出 pnr 功能的丧失会由于赤道异位形成而导致背侧眼睛增大。有趣的是,我们发现,pnr 除了调节 DV 模式外,还通过下调核心视网膜决定基因 eyes absent(eya)、sine oculis(so)和 dacshund(dac)来抑制眼睛命运,从而定义背侧眼睛边缘。我们发现 pnr 作用于 Ey 的下游,并通过抑制 eya 影响视网膜决定途径。对 pnr 的“眼睛抑制”功能的进一步分析表明,该功能可能通过抑制同源盒基因 teashirt(tsh)介导,并且独立于 homothorax(hth),hth 是眼睛的负调节剂。pnr 表达仅限于背侧眼睛边缘的体壁膜,该膜产生围绕眼睛的头部结构,而 pnr 不在形成视网膜的眼睛盘本身中表达。因此,pnr 具有双重功能,在早期发育阶段,pnr 参与轴向模式形成,而在后期,它促进头部特定命运。这些研究将有助于理解背侧眼睛边缘的眼睛区域边界形成的发育调节。