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运用蜂蜜花粉分析法和拉曼光谱技术结合多变量分析来鉴别蜂蜜产地。

The discrimination of honey origin using melissopalynology and Raman spectroscopy techniques coupled with multivariate analysis.

作者信息

Corvucci Francesca, Nobili Lara, Melucci Dora, Grillenzoni Francesca-Vittoria

机构信息

CRA-API Agricultural Research Council, Honeybee and Silkworm Research Unit, Via di Saliceto, 80, 40128 Bologna, BO, Italy.

Department of Chemistry "Ciamician", University of Bologna, Via Selmi 2, I40126 Bologna, Italy.

出版信息

Food Chem. 2015 Feb 15;169:297-304. doi: 10.1016/j.foodchem.2014.07.122. Epub 2014 Aug 6.

Abstract

Honey traceability to food quality is required by consumers and food control institutions. Melissopalynologists traditionally use percentages of nectariferous pollens to discriminate the botanical origin and the entire pollen spectrum (presence/absence, type and quantities and association of some pollen types) to determinate the geographical origin of honeys. To improve melissopalynological routine analysis, principal components analysis (PCA) was used. A remarkable and innovative result was that the most significant pollens for the traditional discrimination of the botanical and geographical origin of honeys were the same as those individuated with the chemometric model. The reliability of assignments of samples to honey classes was estimated through explained variance (85%). This confirms that the chemometric model properly describes the melissopalynological data. With the aim to improve honey discrimination, FT-microRaman spectrography and multivariate analysis were also applied. Well performing PCA models and good agreement with known classes were achieved. Encouraging results were obtained for botanical discrimination.

摘要

消费者和食品监管机构要求蜂蜜具有食品质量可追溯性。传统上,蜂蜜花粉学家使用产蜜花粉的百分比来区分植物来源,并利用整个花粉谱(某些花粉类型的存在/不存在、类型、数量及组合)来确定蜂蜜的地理来源。为改进蜂蜜花粉常规分析,采用了主成分分析(PCA)。一个显著且创新的结果是,用于传统区分蜂蜜植物和地理来源的最重要花粉与通过化学计量模型确定的花粉相同。通过解释方差(85%)估计了将样本分配到蜂蜜类别的可靠性。这证实化学计量模型恰当地描述了蜂蜜花粉数据。为了改进蜂蜜鉴别,还应用了傅里叶变换显微拉曼光谱法和多变量分析。获得了性能良好的主成分分析模型,且与已知类别吻合良好。在植物鉴别方面取得了令人鼓舞的结果。

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