Early development of the feeding larva of the sea urchin Heliocidaris tuberculata: role of the small micromeres.

IF 0.8 3区 生物学 Q4 CELL BIOLOGY
Development Genes and Evolution Pub Date : 2019-01-01 Epub Date: 2018-11-16 DOI:10.1007/s00427-018-0622-y
Valerie B Morris, Eleanor Kable, Demian Koop, Paula Cisternas, Maria Byrne
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引用次数: 0

Abstract

The two modes of development in sea urchins are direct development, in which the adult develops directly from the gastrula to the adult and does not feed, and indirect development, in which the adult develops indirectly through a feeding larva. In this account of the indirect, feeding larva of Heliocidaris tuberculata, the question raised is whether an evolutionary difference of unequal cell divisions contributes to the development of feeding structures in the indirect larva. In indirect development, the cell divisions at the fourth and fifth cell cycles of the zygote are unequal, with four small micromeres formed at the vegetal pole at the fifth cell division. In direct development, these cell divisions are not unequal. From their position at the head of the archenteron, the small micromeres are strategically located to contribute to the feeding tissues of the larva and the adult of H. tuberculata.

海胆摄食幼虫的早期发育:小微粒的作用。
海胆的发育有两种模式,一种是直接发育模式,即成体直接从原肠腺发育到成体,不进食;另一种是间接发育模式,即成体通过喂食幼虫间接发育。在对结核Heliocidaris tuberculata的间接摄食幼虫的描述中,提出的问题是,不平等细胞分裂的进化差异是否有助于间接幼虫摄食结构的发展。在间接发育中,受精卵的第4和第5个细胞周期的细胞分裂是不相等的,在第5个细胞分裂时在植物极形成了4个小微粒。在直接发育过程中,这些细胞分裂不是不均等的。从它们在主肠的头部位置来看,这些小微粒被战略性地定位为结核分枝杆菌的幼虫和成虫的摄食组织。
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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来源期刊
Development Genes and Evolution
Development Genes and Evolution 生物-发育生物学
CiteScore
4.30
自引率
0.00%
发文量
13
审稿时长
>12 weeks
期刊介绍: Development Genes and Evolution publishes high-quality reports on all aspects of development biology and evolutionary biology. The journal reports on experimental and bioinformatics work at the systemic, cellular and molecular levels in the field of animal and plant systems, covering key aspects of the following topics: Embryological and genetic analysis of model and non-model organisms Genes and pattern formation in invertebrates, vertebrates and plants Axial patterning, embryonic induction and fate maps Cellular mechanisms of morphogenesis and organogenesis Stem cells and regeneration Functional genomics of developmental processes Developmental diversity and evolution Evolution of developmentally relevant genes Phylogeny of animals and plants Microevolution Paleontology.
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