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Chemical Analysis of Pollen by FT-Raman and FTIR Spectroscopies

机译:Ft-Raman和FTIR光谱花粉的化学分析

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Pollen studies are important for the assessment of present and past environment, including biodiversity, sexual reproduction of plants and plant-pollinator interactions, monitoring of aeroallergens, and impact of climate and pollution on wild communities and cultivated crops. Although information on chemical composition of pollen is of importance in all of those research areas, pollen chemistry has been rarely measured due to complex and time-consuming analyses. Vibrational spectroscopies, coupled with multivariate data analysis, have shown great potential for rapid chemical characterization, identification and classification of pollen. This study, comprising 219 species from all principal taxa of seed plants, has demonstrated that high-quality Raman spectra of pollen can be obtained by Fourier transform (FT) Raman spectroscopy. In combination with Fourier transform infrared spectroscopy (FTIR), FT-Raman spectroscopy is obtaining comprehensive information on pollen chemistry. Presence of all the main biochemical constituents of pollen, such as proteins, lipids, carbohydrates, carotenoids and sporopollenins, have been identified and detected in the spectra, and the study shows approaches to measure relative and absolute content of these constituents. The results show that FT-Raman spectroscopy has clear advantage over standard dispersive Raman measurements, in particular for measurement of pollen samples with high pigment content. FT-Raman spectra are strongly biased toward chemical composition of pollen wall constituents, namely sporopollenins and pigments. This makes Raman spectra complementary to FTIR spectra, which over-represent chemical constituents of the grain interior, such as lipids and carbohydrates. The results show a large variability in pollen chemistry for families, genera and even congeneric species, revealing wide range of reproductive strategies, from storage of nutrients to variation in carotenoids and phenylpropanoids. The information on pollen’s chemical patterns for major plant taxa should be of outstanding value for various studies in plant biology and ecology, including aerobiology, palaeoecology, forensics, community ecology, plant-pollinator interactions, and climate effects on plants.
机译:花粉研究对于评估现在和过去的环境是重要的,包括生物多样性,植物和植物 - 粉刷植物的性繁殖的相互作用,气候监测和气候和污染对野生社区和栽培作物的影响。尽管在所有这些研究领域的花粉化学成分的信息具有重要性,但由于复杂和耗时的分析,花粉化学很少测量。振动光谱与多变量数据分析相结合,表明了花粉的快速化学表征,鉴定和分类的巨大潜力。该研究包括来自种子植物所有主要分类群的219种,已经证明了花粉的高质量拉曼光谱可以通过傅里叶变换(FT)拉曼光谱。结合傅里叶变换红外光谱(FTIR),FT-Raman光谱是关于花粉化学的综合信息。已经在光谱中鉴定并检测到蛋白质,脂质,碳水化合物,类胡萝卜素和孢子膜素等所有主要生化成分的存在,并且该研究表明了测量这些成分的相对和绝对含量的方法。结果表明,FT-拉曼光谱对标准分散拉曼测量有明显的优势,特别是用于测量具有高颜料含量的花粉样品。 FT-拉曼光谱朝向花粉壁成分的化学成分,即孢子庚素和颜料强烈偏向。这使得RAMAN光谱与FTIR光谱互补,其过度代表谷物内部的化学成分,例如脂质和碳水化合物。结果表明,家庭,白身甚至是基因物种的花粉化学,揭示了广泛的生殖策略,从营养物质储存到类胡萝卜素和苯丙二醇的变异。关于主要植物分类群的花粉化学模式的信息应具有出色的植物生物学和生态学研究的价值,包括有氧化学,古生态学,取证,社区生态学,植物 - 传导师相互作用和对植物的气候影响。

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