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半变态昆虫胚胎发生过程中两个蜕皮激素通路基因的节段表达。

Segmental expression of two ecdysone pathway genes during embryogenesis of hemimetabolous insects.

机构信息

Department of Ecology, Evolution and Behavior, The Hebrew University in Jerusalem, Israel; Department of Entomology, University of Maryland, USA.

Department of Entomology, University of Maryland, USA.

出版信息

Dev Biol. 2023 Jun;498:87-96. doi: 10.1016/j.ydbio.2023.03.008. Epub 2023 Mar 24.

DOI:10.1016/j.ydbio.2023.03.008
PMID:36967076
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10228571/
Abstract

Signaling networks are redeployed across different developmental times and places to generate phenotypic diversity from a limited genetic toolkit. Hormone signaling networks in particular have well-studied roles in multiple developmental processes. In insects, the ecdysone pathway controls critical events in late embryogenesis and throughout post-embryonic development. While this pathway has not been shown to function in the earliest stage of embryonic development in the model insect Drosophila melanogaster, one component of the network, the nuclear receptor E75A, is necessary for proper segment generation in the milkweed bug Oncopeltus fasciatus. Published expression data from several other species suggests possible conservation of this role across hundreds of millions of years of insect evolution. Previous work also demonstrates a second nuclear receptor in the ecdysone pathway, Ftz-F1, plays a role in segmentation in multiple insect species. Here we report tightly linked expression patterns of ftz-F1 and E75A in two hemimetabolous insect species, the German cockroach Blattella germanica and the two-spotted cricket Gryllus bimaculatus. In both species, the genes are expressed segmentally in adjacent cells, but they are never co-expressed. Using parental RNAi, we show the two genes have distinct roles in early embryogenesis. E75A appears necessary for abdominal segmentation in B. germanica, while ftz-F1 is essential for proper germband formation. Our results suggest that the ecdysone network is critical for early embryogenesis in hemimetabolous insects.

摘要

信号网络在不同的发育时间和地点重新配置,以从有限的遗传工具包中产生表型多样性。激素信号网络尤其在多个发育过程中具有经过充分研究的作用。在昆虫中,蜕皮激素途径控制着晚期胚胎发生和整个胚胎后发育过程中的关键事件。虽然该途径在模式昆虫黑腹果蝇的胚胎发育的最早阶段尚未显示出功能,但该网络的一个组成部分,核受体 E75A,对于乳草虫 Oncopeltus fasciatus 中正确的节段生成是必需的。来自其他几个物种的已发表表达数据表明,这种作用在数亿年的昆虫进化中可能是保守的。先前的工作还表明,蜕皮激素途径中的第二个核受体 Ftz-F1 在多种昆虫物种的分段中起作用。在这里,我们报告了两个半变态昆虫物种,德国蟑螂 Blattella germanica 和双斑蟋蟀 Gryllus bimaculatus 中 ftz-F1 和 E75A 的紧密连锁表达模式。在这两个物种中,基因在相邻细胞中呈节段性表达,但从不共表达。使用亲本 RNAi,我们表明这两个基因在早期胚胎发生中具有不同的作用。E75A 似乎对 B. germanica 的腹部分段是必需的,而 ftz-F1 对正常生殖带形成是必不可少的。我们的结果表明,蜕皮激素网络对半变态昆虫的早期胚胎发生至关重要。

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2
Reduction of embryonic expression as a hypothetical driver of the evolution of insect metamorphosis.胚胎表达减少假说作为昆虫变态进化的驱动力。
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