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为复杂眼睛打造的复杂透镜。

A Complex Lens for a Complex Eye.

作者信息

Stahl Aaron L, Baucom Regina S, Cook Tiffany A, Buschbeck Elke K

机构信息

Department of Biological Sciences, University of Cincinnati, Cincinnati, OH 45221, USA.

Department of Ecology and Evolutionary Biology, University of Michigan, Ann Arbor, MI 48109, USA.

出版信息

Integr Comp Biol. 2017 Nov 1;57(5):1071-1081. doi: 10.1093/icb/icx116.

Abstract

A key innovation for high resolution eyes is a sophisticated lens that precisely focuses light onto photoreceptors. The eyes of holometabolous larvae range from very simple eyes that merely detect light to eyes that are capable of high spatial resolution. Particularly interesting are the bifocal lenses of Thermonectus marmoratus larvae, which differentially focus light on spectrally-distinct retinas. While functional aspects of insect lenses have been relatively well studied, little work has explored their molecular makeup, especially in regard to more complex eye types. To investigate this question, we took a transcriptomic and proteomic approach to identify the major proteins contributing to the principal bifocal lenses of T. marmoratus larvae. Mass spectrometry revealed 10 major lens proteins. Six of these share sequence homology with cuticular proteins, a large class of proteins that are also major components of corneal lenses from adult compound eyes of Drosophila melanogaster and Anopheles gambiae. Two proteins were identified as house-keeping genes and the final two lack any sequence homologies to known genes. Overall the composition seems to follow a pattern of co-opting transparent and optically dense proteins, similar to what has been described for other animal lenses. To identify cells responsible for the secretion of specific lens proteins, we performed in situ hybridization studies and found some expression differences between distal and proximal corneagenous cells. Since the distal cells likely give rise to the periphery and the proximal cells to the center of the lens, our findings highlight a possible mechanism for establishing structural differences that are in line with the bifocal nature of these lenses. A better understanding of lens composition provides insights into the evolution of proper focusing, which is an important step in the transition between low-resolution and high-resolution eyes.

摘要

高分辨率眼睛的一项关键创新是一种精密的晶状体,它能将光线精确聚焦到光感受器上。全变态幼虫的眼睛范围很广,从只能检测光线的非常简单的眼睛到具有高空间分辨率的眼睛。特别有趣的是大理石纹水龟幼虫的双焦点晶状体,它能将光线分别聚焦到光谱不同的视网膜上。虽然昆虫晶状体的功能方面已经得到了相对充分的研究,但很少有工作探索它们的分子组成,尤其是对于更复杂的眼睛类型。为了研究这个问题,我们采用转录组学和蛋白质组学方法来确定构成大理石纹水龟幼虫主要双焦点晶状体的主要蛋白质。质谱分析揭示了10种主要的晶状体蛋白质。其中6种与表皮蛋白具有序列同源性,表皮蛋白是一大类蛋白质,也是黑腹果蝇和冈比亚按蚊成虫复眼角膜晶状体的主要成分。两种蛋白质被鉴定为管家基因,最后两种与已知基因没有任何序列同源性。总体而言,其组成似乎遵循一种选用透明和光学致密蛋白质的模式,类似于其他动物晶状体的情况。为了确定负责分泌特定晶状体蛋白质的细胞,我们进行了原位杂交研究,发现远端和近端角膜生成细胞之间存在一些表达差异。由于远端细胞可能产生晶状体的周边部分,近端细胞产生晶状体的中心部分,我们的发现突出了一种可能的机制,用于建立与这些晶状体的双焦点性质相符的结构差异。对晶状体组成的更好理解有助于深入了解正确聚焦的进化,这是低分辨率眼睛向高分辨率眼睛转变的重要一步。

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The cuticular nature of corneal lenses in Drosophila melanogaster.黑腹果蝇角膜透镜的角质性质。
Dev Genes Evol. 2017 Jul;227(4):271-278. doi: 10.1007/s00427-017-0582-7. Epub 2017 May 5.
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J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2015 Nov;201(11):1091-102. doi: 10.1007/s00359-015-1040-5. Epub 2015 Sep 10.
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Unilateral range finding in diving beetle larvae.潜水甲虫幼虫的单侧距离探测。
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