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分子振动作为动物体色表达的一种新的解释机制。

Molecular vibration as a novel explanatory mechanism for the expression of animal colouration.

作者信息

Galván Ismael, Cerezo Javier, Jorge Alberto, Wakamatsu Kazumasa

机构信息

Department of Evolutionary Ecology, Doñana Biological Station, CSIC, 41092 Sevilla, Spain.

Department of Physical Chemistry, University of Murcia, Campus Espinardo, 30100 Murcia, Spain.

出版信息

Integr Biol (Camb). 2018 Aug 1;10(8):464-473. doi: 10.1039/c8ib00100f. Epub 2018 Jun 28.

Abstract

Animal colouration is characterized by the concentration of pigments in integumentary structures and by the nanoscale arrangement of constitutive elements. However, the influence of molecular vibration on colour expression has been overlooked in biology. Molecular vibration occurs in the infrared spectral region, but vibrational and electronic properties can influence each other. Thus, the vibration of pigment molecules may also affect their absorption properties and the resulting colours. We calculated for the first time the relative contribution of molecular vibration (by means of Raman spectroscopy) and concentration (by means of HPLC) of melanin polymers, the most common animal pigments, to generate diversity in plumage colour in 47 species of birds. Vibrational characteristics explained >9 times more variance in colour expression than the concentration of melanins. Additionally, we modelled melanin Raman spectra on the basis of the chemical structure of their constituent monomers and calculated the Huang-Rhys factors for each vibrational mode, which indicate the contribution of these modes to the electronic spectra responsible for the resulting colours. High Huang-Rhys factors frequently coincided with the vibrational modes of melanin monomers. Our results can be explained by the influence of molecular vibration on the absorption properties of melanins. The colour of organisms may thus mainly result from the vibrational properties of their molecules and only residually from their concentration. As a given melanin concentration can give rise to different colours because different structural melanin conformations can present different vibrational characteristics, vibrational effects may favour phenotypic plasticity and thus constitute an important evolutionary force.

摘要

动物的体色特征在于色素在皮肤结构中的浓度以及组成成分的纳米级排列。然而,分子振动对颜色表达的影响在生物学中一直被忽视。分子振动发生在红外光谱区域,但振动特性和电子特性会相互影响。因此,色素分子的振动也可能影响其吸收特性及由此产生的颜色。我们首次计算了黑色素聚合物(最常见的动物色素)的分子振动(通过拉曼光谱法)和浓度(通过高效液相色谱法)对47种鸟类羽毛颜色多样性的相对贡献。振动特性对颜色表达的解释力比黑色素浓度高出9倍多。此外,我们根据黑色素组成单体的化学结构对其拉曼光谱进行了建模,并计算了每个振动模式的黄-里斯因子,该因子表明这些模式对产生颜色的电子光谱的贡献。高黄-里斯因子常常与黑色素单体的振动模式一致。我们的结果可以通过分子振动对黑色素吸收特性的影响来解释。生物体的颜色可能主要由其分子的振动特性决定,而仅在残余程度上由其浓度决定。由于给定的黑色素浓度可以产生不同的颜色,因为不同的结构黑色素构象可以呈现不同的振动特性,振动效应可能有利于表型可塑性,因此构成一种重要的进化力量。

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