Highly conserved and extremely evolvable: BMP signalling in secondary axis patterning of Cnidaria and Bilateria.

IF 0.8 3区 生物学 Q4 CELL BIOLOGY
Development Genes and Evolution Pub Date : 2024-06-01 Epub Date: 2024-03-13 DOI:10.1007/s00427-024-00714-4
David Mörsdorf, Paul Knabl, Grigory Genikhovich
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引用次数: 0

Abstract

Bilateria encompass the vast majority of the animal phyla. As the name states, they are bilaterally symmetric, that is with a morphologically clear main body axis connecting their anterior and posterior ends, a second axis running between their dorsal and ventral surfaces, and with a left side being roughly a mirror image of their right side. Bone morphogenetic protein (BMP) signalling has widely conserved functions in the formation and patterning of the second, dorso-ventral (DV) body axis, albeit to different extents in different bilaterian species. Whilst initial findings in the fruit fly Drosophila and the frog Xenopus highlighted similarities amongst these evolutionarily very distant species, more recent analyses featuring other models revealed considerable diversity in the mechanisms underlying dorsoventral patterning. In fact, as phylogenetic sampling becomes broader, we find that this axis patterning system is so evolvable that even its core components can be deployed differently or lost in different model organisms. In this review, we will try to highlight the diversity of ways by which BMP signalling controls bilaterality in different animals, some of which do not belong to Bilateria. Future research combining functional analyses and modelling is bound to give us some understanding as to where the limits to the extent of the evolvability of BMP-dependent axial patterning may lie.

Abstract Image

高度保守,极易进化:BMP信号在蛇纲和双尾目动物次轴模式化中的作用
两侧对称动物包括绝大多数动物门。顾名思义,它们是两侧对称的,即在形态上有一条清晰的主体轴线连接着它们的前端和后端,第二条轴线贯穿于它们的背面和腹面之间,左侧大致是右侧的镜像。骨形态发生蛋白(BMP)信号在第二体轴,即背腹轴(DV)的形成和模式化过程中具有广泛一致的功能,尽管在不同的双翅目物种中程度不同。在果蝇和蛙类中的初步发现突出了这些进化上非常遥远的物种之间的相似性,而最近以其他模型为特色的分析则揭示了背腹花纹形成机制的相当大的多样性。事实上,随着系统发育取样范围的扩大,我们发现这一轴心模式系统是如此可进化,以至于在不同的模式生物中,甚至其核心成分的部署方式都可能不同或消失。在这篇综述中,我们将试图强调 BMP 信号在不同动物(其中一些不属于双翅目)中控制双轴性的方式的多样性。结合功能分析和建模的未来研究必将使我们对依赖 BMP 的轴突形态的可进化程度的极限所在有所了解。
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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