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Comparison of Ecological Stoichiometric Characteristics in Fresh Tea Leaves among Tea-Growing Regions of Wuyi Mountain
WANGJizhou, WANGDongkun, XIEWei, YINChuanhua, SHIQiumei, LIYanyan
Chin Agric Sci Bull ›› 2025, Vol. 41 ›› Issue (20) : 74-79.
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Abbreviation (ISO4): Chin Agric Sci Bull
Editor in chief: Yulong YIN
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Comparison of Ecological Stoichiometric Characteristics in Fresh Tea Leaves among Tea-Growing Regions of Wuyi Mountain
To distinguish the characteristics of fresh leaves of tea plants from the Zhengyan, Banyan and Zhoucha tea regions in Wuyi Mountain from an ecological stoichiometry perspective, the study was conducted at Wuyi Mountain National Park in July 12-31, 2021. We compared the carbon (C), nitrogen (N) and phosphorus (P) contents, stoichiometric ratios and the natural abundance of carbon isotopes (δ13C) of tea (Cinnamomum cassia) plants leaves. The results showed that prior to autumn fertilization, the N content of fresh tea leaves in the Zhengyan area (24.81 g/kg) was significantly higher than those in the Banyan (22.26 g/kg) and Zhoucha (22.31 g/kg) areas. The δ13C value of Zhengyan fresh tea leaves (-29.79‰) was markedly lower than those of Banyan (-29.09‰) and Zhoucha (-28.50‰) regions. Additionally, The N:P ratio in Zhengyan fresh tea leaves (16.04) significantly exceeded those of the Banyan (14.14) and Zhoucha (14.21) areas. So, we could draw conclusions as followed. (1) The N content, N:P ratio and δ13C values could effectively differentiate fresh tea leaves in the Zhengyan region from those of the other two regions. (2) Zhengyan tea plants exhibited slower growth rates, lower water use efficiency, and the growth was limited by phosphorus, whereas tea plants in the Banyan and Zhoucha regions demonstrated faster growth, higher water use efficiency, and the growth was co-limited by both N and P. These physiological and stoichiometric disparities might contribute to variations in tea quality among the three regions.
Wuyi Mountain / tea leaves / ecological stoichiometry / carbon (C) / nitrogen (N) / phosphorus (P)
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