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灯笼鱼体光器的反射器在机械上被调整为将光细胞中的生物发光发射出来用于反向照明。

Reflector of the body photophore in lanternfish is mechanistically tuned to project the biochemical emission in photocytes for counterillumination.

机构信息

Department of Environmental Biology, Chubu University, Kasugai, 487-8501, Japan.

Graduate School of Sciences and Technology for Innovation, Yamaguchi University, Ube, 755-8611, Japan.

出版信息

Biochem Biophys Res Commun. 2020 Jan 22;521(4):821-826. doi: 10.1016/j.bbrc.2019.10.197. Epub 2019 Nov 7.

DOI:10.1016/j.bbrc.2019.10.197
PMID:31706576
Abstract

Lanternfish, a family Myctophidae, use ventro-lateral body photophores for camouflage of the ventral silhouette, a strategy called counterillumination. While other deep-sea fishes possess pigmented filters and silver reflectors to match sunlight filtering down through the depths, myctophids developed a blue-green reflector for this purpose. In this study, we showed in a lanternfish Diaphus watasei that the reflector comprised monolayered iridophores containing multilayered guanine crystals which enable high reflection with light interference colouration. Platelets shape in body photophores is an unique near-regular hexagonal, probably to allow the homogeneity of reflection angle of the luminescence from photocytes. Focus point of the parabola-like reflector is positioned on the photocytes that ensures the light produced from the photocytes is redirected to the ventral direction. In vitro luminescence reaction using purified luciferase and the substrate coelenterazine showed the light emission at λ 454 nm, while reflection spectra of the iridophores exhibit peaks at longer wavelength, which accomplish to alter the luminescence emitted from photocytes to longer wavelength to fit the mesopelagic light environment. Taken together, we revealed multiple mechanistic elaborations in myctophid body photophores to achieve effective control of biochemical luminescence for counterillumination.

摘要

灯笼鱼,灯笼鱼科,利用腹侧体光感受器进行腹侧轮廓的伪装,这种策略称为逆光照。虽然其他深海鱼类拥有色素过滤器和银色反光镜来匹配透过深处的阳光,但灯笼鱼为了达到这个目的,发展出了一种蓝绿色的反光镜。在这项研究中,我们在灯笼鱼 Diaphus watasei 中表明,该反光镜由含有多层尿酸晶体的单层虹彩细胞组成,这种结构可以通过光干涉产生高反射和彩色效果。体光感受器中的血小板形状为独特的近规则六边形,可能是为了使从光细胞发出的光的反射角具有均一性。抛物面状反光镜的焦点位于光细胞上,这确保了从光细胞发出的光被重新引导到腹侧方向。使用纯化的荧光素酶和底物腔肠素进行的体外发光反应显示出在 λ 454 nm 处的光发射,而虹彩细胞的反射光谱在较长波长处显示出峰值,这实现了将光细胞发出的荧光改变为更长的波长,以适应中层海洋的光照环境。综上所述,我们揭示了灯笼鱼体光感受器在实现逆光照的生物化学发光有效控制方面的多种机制。

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Marine fishes exhibit exceptional variation in biofluorescent emission spectra.海洋鱼类在生物荧光发射光谱方面表现出异常的变化。
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PLoS One. 2024 Nov 13;19(11):e0310976. doi: 10.1371/journal.pone.0310976. eCollection 2024.
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14-3-3 proteins are luciferases candidate proteins from lanternfish Diaphus watasei.14-3-3蛋白是来自日本眶灯鱼的荧光素酶候选蛋白。
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