UV protection of euglenoids: computation of the electromagnetic response

A. Dolinko, C. Valencia, D. Skigin, M. Inchaussandague, Analía Tolivia, V. Conforti
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引用次数: 2

Abstract

Euglenoids are a group of predominantly free-living unicellular microorganisms that mostly live in freshwater bodies but can also be found in marine and brackish waters. These organisms have a characteristic that distinguishes them form the other protists: they are covered by a surface pellicle formed by S-shaped overlapping bands which resemble a diffraction grating. These microorganisms have developed numerous protection mechanisms intended to avoid or reduce the damage produced by UV radiation, such as the production of pigments and the repair mechanisms in hours of darkness and during daylight. In a recent paper we have investigated the role played by the pellicle of Euglenoids in the protection of the cell against UV radiation, by means of an electromagnetic approach based on the approximation of the pellicle profile by a one-dimensional diffraction grating. This simplified model allowed us to confirm that under certain incidence conditions, the corrugation of the pellicle helps increase the UV reflection, and consequently, diminish the UV radiation that enters the cell. In order to analyze the electromagnetic response of the whole cell, we extend two different approaches to calculate the reflected response: a simulation method especially developed to deal with complex biological structures that permits the introduction of the scattering object via an electron microscopy image, and the integral method, which has been widely used to compute the electromagnetic response of finite structures. Numerical results of near and far fields are shown.
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类绿藻的紫外线防护:电磁响应的计算
类真核生物是一组主要是自由生活的单细胞微生物,主要生活在淡水水体中,但也可以在海洋和咸淡水中发现。这些生物有一个区别于其他原生生物的特征:它们被一层由类似于衍射光栅的s形重叠带组成的表面膜所覆盖。这些微生物已经发展出许多保护机制,旨在避免或减少紫外线辐射造成的损害,例如色素的产生和在黑暗和白天的修复机制。在最近的一篇论文中,我们研究了euglenoid的膜在保护细胞免受紫外线辐射中的作用,通过基于一维衍射光栅的膜轮廓近似的电磁方法。这个简化的模型使我们能够确认,在一定的入射条件下,膜的波纹有助于增加紫外线反射,从而减少进入细胞的紫外线辐射。为了分析整个细胞的电磁响应,我们扩展了两种不同的方法来计算反射响应:一种是专门用于处理复杂生物结构的模拟方法,它允许通过电子显微镜图像引入散射物体;一种是积分方法,它已广泛用于计算有限结构的电磁响应。给出了近场和远场的数值结果。
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