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倒立水母(Cassiopea xamachana)的胚胎发育和浮浪幼虫发育。

Embryonic and planula development in the upside-down jellyfish Cassiopea xamachana.

作者信息

Steinworth Bailey M, Martindale Mark Q

机构信息

University of Florida, Whitney Laboratory for Marine Bioscience, 9505 Oceanshore Boulevard, St. Augustine, FL, 32080, USA.

出版信息

Evodevo. 2025 Aug 8;16(1):14. doi: 10.1186/s13227-025-00250-w.

Abstract

Some aspects of the life cycle of the scyphozoan jellyfish Cassiopea xamachana have been described in detail. Investigations of C. xamachana have largely focused on strobilation and the unusual pattern of planuloid budding at the polyp stage, in which the body wall of the polyp forms a swimming planuloid bud that shows morphological and behavioral similarities to the planula. Here, we fill gaps in our understanding of C. xamachana life history by characterizing embryonic development and planula settlement and metamorphosis. These processes happen in a manner similar to other scyphozoans studied. Gastrulation occurs by invagination, as in many other scyphozoans. Morphological observations of planula settlement and metamorphosis resemble observations of the process in Aurelia, the other well-studied scyphozoan, though some details about germ layer fates remain unclear. We also show that homeobox genes expressed during planula development are redeployed in a similar pattern in the planuloid bud. In the newly settled polyp, one of these genes is expressed in a pattern that breaks radial symmetry, extremely unusual in a scyphozoan. Our results set the stage for more detailed molecular dissections of morphogenesis in organisms with metagenic life cycles.

摘要

钵水母纲的仙女水母(Cassiopea xamachana)生命周期的某些方面已得到详细描述。对仙女水母的研究主要集中在横裂生殖以及水螅体阶段类浮浪幼虫芽殖的异常模式上,在这种模式中,水螅体的体壁形成一个游动的类浮浪幼虫芽,它在形态和行为上与浮浪幼虫相似。在这里,我们通过描述胚胎发育、浮浪幼虫附着和变态来填补我们对仙女水母生活史理解上的空白。这些过程的发生方式与其他已研究的钵水母相似。原肠胚形成通过内陷进行,这与许多其他钵水母一样。浮浪幼虫附着和变态的形态学观察类似于对另一种经过充分研究的钵水母——海月水母(Aurelia)中该过程的观察,尽管关于胚层命运的一些细节仍不清楚。我们还表明,在浮浪幼虫发育过程中表达的同源框基因在类浮浪幼虫芽中以类似模式重新部署。在新附着的水螅体中,这些基因之一以打破辐射对称的模式表达,这在钵水母中极为罕见。我们的研究结果为更详细地分子剖析具有世代交替生命周期的生物体的形态发生奠定了基础。

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