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首页> 外文期刊>Brain, behavior and evolution >Keeping sensory cells and evolving neurons to connect them to the brain: molecular conservation and novelties in vertebrate ear development.
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Keeping sensory cells and evolving neurons to connect them to the brain: molecular conservation and novelties in vertebrate ear development.

机译:保持感觉细胞和不断发展的神经元将它们连接到大脑:脊椎动物耳朵发育中的分子保守性和新颖性。

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The evolution of the mechanosensory cellular module and the molecular details that regulate its development has included morphological modifications of these cells as well as the formation of larger assemblies of mechanosensory cell aggregates among metazoans. This has resulted in a wide diversity of mechanosensory organs. The wide morphological diversity of organs, including the associated morphological modifications of the mechanosensory cells, suggests parallel evolution of these modules and their associated organs. This morphological diversity is in stark contrast to the molecular conservation of developmental modules across phyla. These molecular data suggest that the evolution of mechanosensory transduction might have preceded that of distinct cellular differentiation. However, once a molecular network governing development of specialized cells involved in mechanosensory transduction evolved, that molecular network was preserved across phyla. Present data suggest that at least the common ancestorof triploblastic organisms, perhaps even the common diploblastic ancestor of bilaterian metazoans, had molecular and cellular specializations for mechanosensation. It is argued that the evolution of multicellular organs dedicated to specific aspects of mechanosensation, such as gravity and sound perception, are evolutionary transformations that build on this conserved molecular network for cellular specialization, but reflect distinct morphological solutions. We propose that the sensory neurons, connecting the craniate ear with the brain, are a derived feature of craniates, and possibly chordates, that came about through diversification of the lineage forming mechanosensory cells during development. This evolutionarily late event suggests a heterochronic shift, so that sensory neurons develop in mammals prior to mechanosensory hair cells. However, sensory neuron development is connected to hair cell development, likely in a clonal relationship. The theme of cellular conservation is reiterated in two examples of chordate otic diversification: the evolution of the horizontal canal system and the evolution of the basilar papilla/cochlea. It is suggested that here again, cellular multiplication and formation of a special epithelium predates the functional transformation to an 'organ' system for horizontal angular acceleration and sound pressure reception, respectively. Overall, evolution of the vertebrate ear needs to be understood as an interplay between and utilization of two gene networks or modules. One is at the level of the molecularly and developmentally conserved mechanosensory cellular module. The other is an increased complexity in the morphology of both adult mechanosensory cells and organs by the addition of end-stage and novel features and associated gene networks to detect specific aspects of mechanosensory stimuli. Copyright 2004 S. Karger AG, Basel
机译:机械感觉细胞模块的进化和调节其发育的分子细节包括这些细胞的形态修饰以及后生动物中较大的机械感觉细胞聚集体的形成。这导致了机械感觉器官的多样性。器官的广泛形态多样性,包括机械感觉细胞的相关形态修饰,表明这些模块及其相关器官的平行进化。这种形态的多样性与跨门的发育模块的分子保守形成了鲜明的对比。这些分子数据表明,机械感觉转导的进化可能早于明显的细胞分化。但是,一旦控制了涉及机械感官转导的专门细胞的发育的分子网络发展起来,该分子网络就被保留在整个门上。目前的数据表明,至少三叶虫生物的共同祖先,也许甚至是双侧后生动物的二叶虫的共同祖先,都有分子和细胞专长用于机械传感。有人认为,专门用于机械感觉的特定方面(例如重力和声音感知)的多细胞器官的进化是基于这种守恒分子网络进行细胞专门化的进化转化,但反映了独特的形态学解决方案。我们认为,连接颅骨耳朵与大脑的感觉神经元是颅骨甚至可能是脊索动物的衍生特征,这是通过发育过程中形成机械感觉细胞的谱系的多样化而产生的。这种进化上的晚期事件表明是异时性转变,因此在机械感觉毛细胞之前,哺乳动物中会产生感觉神经元。但是,感觉神经元的发育与毛细胞的发育有关,可能是克隆关系。细胞保护的主题在两个例子中重复了cho酸盐的分布:水平管系统的进化和基底乳头/耳蜗的进化。再次有人建议,细胞增殖和特殊上皮的形成要先于功能转变为分别用于水平角加速度和声压接收的“器官”系统。总的来说,脊椎动物耳朵的进化需要理解为两个基因网络或模块之间的相互作用和利用。一种是在分子和发育上保守的机械感觉细胞模块的水平。另一种是通过增加末期和新特征以及相关的基因网络来检测机械感觉刺激的特定方面,成人机械感觉细胞和器官形态的复杂性增加。版权所有2004 S. Karger AG,巴塞尔

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