Influence of leaf age, species and soil depth on the authenticity and geographical origin assignment of green tea

分馏 化学 同位素分析 稳定同位素比值 同位素 同位素分馏 碳同位素 氮同位素 氮气 光合作用 营养物 环境化学 植物 生态学 总有机碳 生物 色谱法 量子力学 物理 生物化学 有机化学
作者
Zhi Liu,Yongzhi Zhang,Yu Zhang,Guilin Yang,Shengzhi Shao,Jing Nie,Yuwei Yuan,Karyne M. Rogers
出处
期刊:Rapid Communications in Mass Spectrometry [Wiley]
卷期号:33 (7): 625-634 被引量:12
标识
DOI:10.1002/rcm.8387
摘要

Stable isotope fractionation occurring during leaf growth provides internal characteristics for identifying the geographical origin, traceability and authentication of tea. Studying the influence of leaf age, species and the relationship with the cultivated soil may reveal previously undocumented stable isotope fractionation mechanisms, and provide a deeper understanding of the physiological isotopic effects on the tractability and authentication accuracy of green tea to combat mislabeling and fraudulent conduct.A total of 36 pairs of young (one bud with one leaf) and mature growth (older leaf) samples from two species of Longjing tea (Longjing #43 and Colonial cultivar) and corresponding cultivation soil samples from two different depth layers (0-20 cm and 20-40 cm) were collected in Westlake district, Hangzhou, Zhejiang province, China. Four stable isotope ratios (δ13 C, δ15 N, δ2 H, and δ18 O values) were measured using an elemental analyzer coupled with an isotope ratio spectrometer. Linear correlation and one-way analysis of variance (ANOVA) statistical analyses were performed to investigate isotopic fractionation mechanisms during plant growth, and reflect the dynamic physiological processes from soil to leaf.The carbon and nitrogen isotope ratios (δ13 C and δ15 N values) reflected the absorption, migration and fractionation of carbon dioxide and nitrogenous nutrients during photosynthesis, nutrient uptake, nitrogen fixation and leaf respiration. The water isotope ratios (δ2 H and δ18 O values) reflected the use and fractionation of water by tea plants at different growth stages.Considerable differences were found for hydrogen and oxygen isotope ratios according to leaf age, revealing complex isotopic fractionation mechanisms and possible interference factors. Leaf maturity effects should be considered, as they will influence the precision and accuracy of models when assigning the geographical origin, traceability and authentication of tea.

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