谷歌Chrome浏览器插件
订阅小程序
在清言上使用

Mechano-biochemical marine stimulation of inversion, gastrulation, and endomesoderm specification in multicellular Eukaryota.

Frontiers in cell and developmental biology(2022)

引用 0|浏览7
暂无评分
摘要
The evolutionary emergence of the primitive gut in Metazoa is one of the decisive events that conditioned the major evolutionary transition, leading to the origin of animal development. It is thought to have been induced by the specification of the endomesoderm (EM) into the multicellular tissue and its invagination (i.e., gastrulation). However, the biochemical signals underlying the evolutionary emergence of EM specification and gastrulation remain unknown. Herein, we find that hydrodynamic mechanical strains, reminiscent of soft marine flow, trigger active tissue invagination/gastrulation or curvature reversal a Myo-II-dependent mechanotransductive process in both the metazoan () and the multicellular choanoflagellate In the latter, our data suggest that the curvature reversal is associated with a sensory-behavioral feeding response. Additionally, like in bilaterian animals, gastrulation in the cnidarian is shown to participate in the biochemical specification of the EM through mechanical activation of the β-catenin pathway the phosphorylation of Y654-βcatenin. Choanoflagellates are considered the closest living relative to metazoans, and the common ancestor of choanoflagellates and metazoans dates back at least 700 million years. Therefore, the present findings using these evolutionarily distant species suggest that the primitive emergence of the gut in Metazoa may have been initiated in response to marine mechanical stress already in multicellular pre-Metazoa. Then, the evolutionary transition may have been achieved by specifying the EM a mechanosensitive Y654-βcatenin dependent mechanism, which appeared during early Metazoa evolution and is specifically conserved in all animals.
更多
查看译文
关键词
beta-catenin-dependent mechanosensitivity,choanoflagellate Choanoeca flexa,cnidaria Nematostella vectensis,evolutionary emergence of first Metazoa organisms,hydrodynamic mechanical strains,mechanotransduction,myosin-dependent mechanosensitivity,primitive motor-sensorial behavioral mechanosensing
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要