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首页> 外文期刊>Visual Neuroscience: An International Journal for Empirical and Theoretical Research >Understanding the dermal light sense in the context of integrative photoreceptor cell biology.
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Understanding the dermal light sense in the context of integrative photoreceptor cell biology.

机译:在整合性感光细胞生物学的背景下了解真皮光的感觉。

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While the concept of a dermal light sense has existed for over a century, little progress has been made in our understanding of the mechanisms underlying dispersed photoreception and the evolutionary histories of dispersed photoreceptor cells. These cells historically have been difficult to locate and positively identify, but modern molecular techniques, integrated with existing behavioral, morphological, and physiological data, will make cell identification easier and allow us to address questions of mechanism and evolution. With this in mind, we propose a new classification scheme for all photoreceptor cell types based on two axes, cell distribution (aggregated vs. dispersed) and position within neural networks (first order vs. high order). All photoreceptor cells fall within one of four quadrants created by these axes: aggregated/high order, dispersed/high order, aggregated/first order, or dispersed/first order. This new method of organization will help researchers make objective comparisons between different photoreceptor cell types. Using integrative data from four major phyla (Mollusca, Cnidaria, Echinodermata, and Arthropoda), we also provide evidence for three hypotheses for dispersed photoreceptor cell function and evolution. First, aside from echinoderms, we find that animals often use dispersed photoreceptor cells for tasks that do not require spatial vision. Second, although there are both echinoderm and arthropod exceptions, we find that dispersed photoreceptor cells generally lack morphological specializations that either enhance light gathering or aid in the collection of directional information about light. Third, we find that dispersed photoreceptor cells have evolved a number of times in Metazoa and that most dispersed photoreceptor cells have likely evolved through the co-option of existing phototransduction cascades. Our new classification scheme, combined with modern investigative techniques, will help us address these hypotheses in great detail and generate new hypothesis regarding the function and evolution of dispersed photoreceptor cells.
机译:尽管真皮光感的概念已经存在了一个多世纪,但在我们对分散的光感受机理和分散的光感受器细胞的进化历史的理解中,进展甚微。这些细胞历来难以定位和准确鉴定,但是现代分子技术与现有的行为,形态学和生理学数据相结合,将使细胞鉴定更加容易,并使我们能够解决机制和进化问题。考虑到这一点,我们基于两个轴,细胞分布(聚集与分散)和神经网络中的位置(一阶与高阶),为所有感光细胞类型提出了一种新的分类方案。所有感光细胞都落在这些轴所创建的四个象限之一内:聚集/高阶,分散/高阶,聚集/一阶或分散/一阶。这种新的组织方法将有助于研究人员在不同类型的感光细胞之间进行客观比较。使用来自四个主要门(软体动物,唇形目,棘皮动物和节肢动物)的综合数据,我们还为分散的感光细胞功能和进化的三个假设提供了证据。首先,除了棘皮动物,我们发现动物经常使用分散的感光细胞完成不需要空间视觉的任务。其次,尽管棘皮动物和节肢动物都有例外,但我们发现分散的感光细胞通常缺乏形态学专长,可以增强光的聚集或有助于收集有关光的方向性信息。第三,我们发现,在后生动物中,分散的感光细胞已经进化了许多次,并且大多数分散的感光细胞都可能通过共同选择现有的光转导级联反应而进化了。我们的新分类方案,结合现代研究技术,将帮助我们更详细地解决这些假设,并产生有关分散的感光细胞功能和进化的新假设。

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