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Vibrational microspectroscopy enables chemical characterization of single pollen grains as well as comparative analysis of plant species based on pollen ultrastructure

机译:振动显微光谱法可以对单个花粉粒进行化学表征,并根据花粉超微结构对植物种类进行比较分析

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摘要

Main conclusion Chemical imaging of pollen by vibrational microspectroscopy enables characterization of pollen ultrastructure, in particular phenylpropanoid components in grain wall for comparative study of extant and extinct plant species. A detailed characterization of conifer (Pinales) pollen by vibrational microspectroscopy is presented. The main problems that arise during vibrational measurements were scatter and saturation issues in Fourier transform infrared (FTIR), and fluorescence and penetration depth issues in Raman. Single pollen grains larger than approx. 15 µm can be measured by FTIR microspectroscopy using conventional light sources, while smaller grains may be measured by employing synchrotron light sources. Pollen grains that were larger than 50 µm were too thick for FTIR imaging since the grain constituents absorbed almost all infrared light. Chemical images of pollen were obtained on sectioned samples, unveiling the distribution and concentration of proteins, carbohydrates, sporopollenins and lipids within pollen substructures. The comparative analysis of pollen species revealed that, compared with other Pinales pollens, Cedrus atlantica has a higher relative amount of lipid nutrients, as well as different chemical composition of grain wall sporopollenin. The pre-processing and data analysis, namely extended multiplicative signal correction and principal component analysis, offer simple estimate of imaging spectral data and indirect estimation of physical properties of pollen. The vibrational microspectroscopy study demonstrates that detailed chemical characterization of pollen can be obtained by measurement of an individual grain and pollen ultrastructure. Measurement of phenylpropanoid components in pollen grain wall could be used, not only for the reconstruction of past environments, but for assessment of diversity of plant species as well. Therefore, analysis of extant and extinct pollen species by vibrational spectroscopies is suggested as a valuable tool in biology, ecology and palaeosciences.
机译:主要结论通过振动显微光谱对花粉进行化学成像可以表征花粉的超微结构,特别是谷物壁中的苯丙烷类成分,以便对现存和灭绝的植物物种进行比较研究。提出了通过振动显微光谱对针叶树(Pinales)花粉的详细表征。振动测量过程中出现的主要问题是傅立叶变换红外(FTIR)中的散射和饱和问题,以及拉曼中的荧光和穿透深度问题。单花粉粒大于约。 15微米可以通过使用常规光源的FTIR光谱法测量,而较小的颗粒可以通过使用同步加速器光源进行测量。大于50 µm的花粉颗粒对于FTIR成像来说太厚了,因为颗粒成分吸收了几乎所有的红外光。在切片样品上获得了花粉的化学图像,揭示了花粉亚结构中蛋白质,碳水化合物,孢粉和脂质的分布和浓度。对花粉种类的比较分析表明,与其他Pinales花粉相比,Cedrus atlantica的脂类营养素相对含量更高,并且籽粒壁孢粉蛋白的化学组成也不同。预处理和数据分析,即扩展的乘性信号校正和主成分分析,可提供对成像光谱数据的简单估计以及对花粉物理性质的间接估计。振动显微光谱研究表明,可以通过测量单个颗粒和花粉的超微结构获得花粉的详细化学特征。花粉壁中苯基丙烷成分的测量不仅可以用于重建过去的环境,还可以用于评估植物物种的多样性。因此,通过振动光谱学分析现存和灭绝的花粉种类被认为是生物学,生态学和古生物学中的有价值的工具。

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