Advance Search
LIU Yan-Li, JIN Xiao-Fang, CAO Dan, MA Lin-Long, ZHOU Yuan, WEI Chao-Ling. Current Progress in Aluminum and Fluoride Accumulation in the Tea Plant[J]. Plant Science Journal, 2016, 34(6): 972-977. DOI: 10.11913/PSJ.2095-0837.2016.60972
Citation: LIU Yan-Li, JIN Xiao-Fang, CAO Dan, MA Lin-Long, ZHOU Yuan, WEI Chao-Ling. Current Progress in Aluminum and Fluoride Accumulation in the Tea Plant[J]. Plant Science Journal, 2016, 34(6): 972-977. DOI: 10.11913/PSJ.2095-0837.2016.60972

Current Progress in Aluminum and Fluoride Accumulation in the Tea Plant

Funds: 

This word was supported by grants from the fund of Institute of Fruit and Tea, Hubei Academy of Agricultural Science (GCJJ201601), the fund of Hubei Province Agricultural Science and Technology Innovation Center (2016-620-000-001-032) and the Open Fund of State Key Laboratory of Tea Plant Biology and Utilization (SKLTOF20160104).

More Information
  • Received Date: August 23, 2016
  • Revised Date: September 28, 2016
  • Available Online: October 31, 2022
  • Published Date: December 27, 2016
  • The tea plant is an aluminum and fluoride hyper-accumulator, with excess accumulation in its leaves poses a serious threat to human health. To effectively reduce the content of aluminum and fluoride in tealeaves, it is necessary to understand their metabolism. In this paper, we review the latest research progress on and the possible mechanisms of the absorption, translocation, accumulation and detoxification of aluminum and fluoride in the tea plant. Furthermore, we discuss major areas for future research.
  • [1]
    Jankun J, Selman SH, Swiercz R, Skrzypczak-Jankun E. Why drinking green tea could prevent cancer[J]. Nature, 1997, 387(6633):561.
    [2]
    Koketsu M. Antioxidative activity of tea polyphenols[C]//Yamamoto T, Luneja LR, Chu DC, Kim DC, eds. Chemistry and Applications of Green Tea. Boca Raton:CRC Press, 1997:37-50.
    [3]
    Sakanaka S, Kim M, Taniguchi M, Yamamoto T. Antibacterial substances in Japanese green tea extract against Streptococcus mutan:a carcinogenic bacterium[J]. Agric Biol Chem, 1989, 53(9):2307-2311.
    [4]
    McKay DL, Blumberg JB. The role of tea in human health:an update[J]. J Am Coll Nutr, 2002, 21(1):1-13.
    [5]
    Nagajyoti PC, Lee KD, Sreekanth TVM. Heavy metals, occurrence and toxicity for plants:a review[J]. Environ Chem Lett, 2010, 8(3):199-216.
    [6]
    Han WY, Shi YZ, Ma LF, Ruan JY, Zhao F. Effect of liming and seasonal variation on lead concentration of tea plant (Camellia sinensis (L.) O. Kuntze)[J]. Chemosphere, 2007, 66(1):84-90.
    [7]
    Karak T, Bhagat RM. Trace elements in tea leaves, made tea and tea infusion:a review[J]. Food Res Int, 2010, 43(9):2234-2252.
    [8]
    Xie ZM, Ye ZH, Wong MH. Distribution characteristics of fluoride and aluminum in soil profiles of an abandoned tea plantation and their uptake by six woody species[J]. Environ Int, 2001, 26(5-6):341-346.
    [9]
    Xie ZL, Chen Z, Sun WT, Guo XJ, Yin B, Wang JH. Distribution of aluminum and fluoride in tea plant and soil of tea garden in central and southwest China[J]. Chinese Geogra Sci, 2007, 17(4):376-382.
    [10]
    Yi J, Cao J. Tea and fluorosis[J]. J Fluorine Chem, 2008, 129(2):76-81.
    [11]
    Yang Y, Liu Y, Huang CF, Silva JD, Zhao FJ. Aluminium alleviates fluoride toxicity in tea (Camellia sinensis)[J]. Plant Soil, 2016, 402(1-2):1-12.
    [12]
    Cai HM, Dong YY, Li YY, Li DX, Peng CY, Zhang ZZ, Wan XC. Physiological and cellular responses to fluoride stress in tea (Camellia sinensis) leaves[J]. Acta Physiol Plant, 2016, 38(6):1-11.
    [13]
    Rengel Z. Aluminium cycling in the soil-plant-animal-human continuum[J]. Biometals, 2004, 17(6):669-689.
    [14]
    苏有健,廖万友,王烨军,张永利,吴新荣,胡善国,孙力.皖南茶园土壤活性铝形态分布与pH和植茶年限的关系[J]. 农业环境科学学报, 2013, 32(4):721-728.

    Su YJ, Liao WY, Wang YJ, Zhang YL, Wu XR, Hu SG, Sun L. Influences of soil pH and cultivation years on active aluminum species distribution from tea soils in southern Anhui, China[J]. Journal of Agro-Environment Science, 2013, 32(4):721-728.
    [15]
    梁月荣. 茶树铝代谢研究及其对作物抗铝育种的意义[J], 福建茶叶, 1993(3):20-24.

    Liang YR. Aluminum metabolism of tea plant and its significance for the aluminum-resistance crops breeding[J]. Tea in Fujian, 1993(3):20-24.
    [16]
    Matsumoto H. Cell biology of aluminum toxicity and tole-rance in higher plants[J]. Int Rev Cytol, 2000, 200:1-46.
    [17]
    Li C, Xu H, Xu J, Chun X, Ni D. Effects of aluminum on ultrastructure and antioxidant activity in leaves of tea plant[J]. Acta Physiol Plant, 2011, 33(3):973-978.
    [18]
    Ma JF, Ryan PR, Delhaize E. Aluminium tolerance in plants and the complexing role of organic acids[J]. Trends Plant Sci, 2001, 6(6):273-278.
    [19]
    Poschenrieder C, Gunsé B, Corrales I, Barceló J. A glance into aluminum toxicity and resistance in plants[J]. Sci Total Environ, 2008, 400(1-3):356-368.
    [20]
    阮建云,王国庆,石元值,马立锋.茶园土壤铝动态及茶树铝吸收特性[J]. 茶叶科学, 2003, 23(Supp.):16-20.

    Yuan JY, Wang GQ, Shi YZ, Ma LF. Aluminum in tea soils, rhizosphere soil and the characteristics of Al uptake by tea plant[J]. Journal of Tea Science, 2003, 23(Supp.):16-20.
    [21]
    于翠平,潘志强,陈杰,范冬梅,王校常.铝对茶树生长与生理特性影响的研究[J].植物营养与肥料学报, 2012, 18(1):182-187.

    Yu CP, Pan ZQ, Chen J, Fan DM, Wang XC. Effects of Al3+on growth and physiological characteristics of tea plant (Camellia sinensis)[J]. Plant Nutrition and Fertilizer Science, 2012, 18(1):182-187.
    [22]
    Chenery EM. A preliminary study of aluminum and the tea bush[J]. Plant Soil, 1955, 6(2):174-200.
    [23]
    Matsumoto H, Hirasawa E, Morimura S, Takahashi E. Localization of aluminum in tea leaves[J]. Plant Cell Physiol, 1976, 17(3):627-631.
    [24]
    Wong MH, Zhang ZQ, Wong JWC, Lan CY. Trace metal contents (Al, Cu and Zn) of tea:tea and soil from two tea plantations, and tea products from different provinces of China[J]. Environ Geochem Hlth, 1998, 20(2):87-94.
    [25]
    Wong MH, Fung KF, Carr HP. Aluminium and fluoride contents of tea, with emphasis on brick tea and their health implications[J]. Toxicol Lett, 2003, 137(1-2):111-120.
    [26]
    Fung KF, Carr HP, Poon BHT, Wong MH. A comparison of aluminum levels in tea products from Hong Kong markets and in varieties of tea plants from Hong Kong and India[J]. Chemosphere, 2009, 75(7):955-962.
    [27]
    廖万有.茶生物圈中铝的生物学效应及其研究展望[J]. 福建茶叶, 1995(4):13-17.

    Liao WY. Biological effect of aluminum in tea biosphere and its research prospects[J]. Tea in Fujian, 1995(4):13-17.
    [28]
    Morita A, Horie H, Fujii Y, Takatsu S, Watanabe N, Yagi A, Yokota H. Chemical forms of aluminum in xylem sap of tea plants (Camellia sinensis L.)[J]. Phytochemistry, 2004, 65(20):2775-2780.
    [29]
    Nagata T, Hayatsu M, Kosuge N. Aluminum kinetics in the tea plant using 27Al and 19F NMR[J]. Phytochemistry, 1993, 32(4):771-775.
    [30]
    Nagata T, Hayatsu M, Kosuge N. Identification of aluminum forms in tea leaves by 27Al NMR[J]. Phytochemistry, 1992, 31(4):1215-1218.
    [31]
    Ma JF, Ryan PR, Delhaize E. Aluminium tolerance in plants and the complexing role of organic acids[J]. Trends Plant Sci, 2001, 6(6):273-278.
    [32]
    孙婷,刘鹏,郑人卫,谢忠雷,罗虹.茶树体内铝形态及铝累积特性[J].作物学报,2009,35(10):1909-1915.

    Sun T, Liu P, Zheng RW, Xie Zhong L, Luo H. Forms and accumulation of aluminum in tea plant (Camellia sinensis)[J]. Acta Agronomica Sinica, 2009, 35(10):1909-1915.
    [33]
    Tolrà R, Vogel-Mikuš K, Hajiboland R, Kump P, Pongrac P, Kaulich B, Gianoncelli A, Babin V, Barceló J, Regva M, Poschenrieder C. Localization of aluminium in tea (Camellia sinensis) leaves using low energy X-ray fluorescence spectro-microscopy[J]. J Plant Res, 2011, 124(1):165-172.
    [34]
    Gao HJ, Zhao Q, Zhang XC, Wan XC, Mao JD. Localization of fluoride and aluminum in subcellular fractions of tea leaves and roots[J]. J Agr Food Chem, 2014, 62(10):2313-2319.
    [35]
    Fung KF, Zhang ZQ, Wong JWC, Wong MH. Fluoride contents in tea and soil from tea plantations and the release of fluoride into tea liquor during infusion[J]. Environ Pollu, 2000, 30(104):197-205.
    [36]
    Ruan J, Wong MH. Accumulation of fluoride and alumi-nium related to different varieties of tea plant[J]. Environ Geochem Hlth, 2001, 23(1):53-63.
    [37]
    杨晓,张月华,余志,陈玉琼,倪德江.氟对茶树生理的影响及茶树耐氟机制研究进展[J].华中农业大学学报,2015,34(3):142-146.

    Yang X, Zhang YH, Yu Z, Cheng YQ, Ni DJ. Physiological effects of fluoride on tea plant and fluoride-resistant mechanism of tea[J]. Journal of Huazhong Agricultural University, 2015, 34(3):142-146.
    [38]
    Zhang L, Li Q, Ma LF, Ruan JY. Characterization of fluo-ride uptake by roots of tea plants (Camellia sinensis (L.) O. Kuntze)[J]. Plant Soil, 2013a, 366(1-2):659-669.
    [39]
    彭传燚,陈静,蔡荟梅,侯如燕,宛晓春.茶树对氟的吸收动力学特性研究[J].热带作物学报,2013, 34(3):495-500.

    Peng CY, Chen J, Cai HM, Hou RY, Wan XC. The kinetic characteristics of solution fluoride uptake by tea plant[J]. Chinese Journal of Tropical Crops, 2013, 34(3):495-500.
    [40]
    Shu WS, Zhang ZQ, Lan CY, Wong MH. Fluoride and aluminium concentrations of tea plants and tea products from Sichuan Province, PR China[J]. Chemosphere, 2003, 52(9):1475-1482.
    [41]
    陈瑞鸿,梁月荣,陆建良,高夫军,张凌云,吴颖,吴姗,孙其富.茶树对氟富集作用的研究[J].茶叶,2002,28(4):187-190.

    Chen RH, Liang YR, Lu JL, Gao FJ, Zhang LY, Wu Y, Wu S, Sun QF. Studies on fluoride enrichment in tea plant (Camellia sinensis)[J]. Journal of Tea, 2002, 28(4):187-190.
    [42]
    王丽霞.茶树对氟的富集及其生理响应机制研究[D].杨凌:西北农林科技大学, 2014.

    Wang LX. Fluoride accumulation in tea plant and its physiological response mechanism[D]. Yangling:Northwest Agriculture and Forestry University, 2014.
    [43]
    周宇,刘声传,梁远发,王家伦,刘红梅,魏杰.同一生境不同茶树品种对氟的吸收累积特征[J]. 西南农业学报, 2012, 25(6):2157-2161.

    Zhou Y, Liu SC, Liang YF, Wang JL, Liu HM, Wei J. Study on characteristics of uptake and accumulation of fluorine (F) in different tea under same environment[J]. Southwest China Journal of Agricultural Sciences, 2012, 25(6):2157-2161.
    [44]
    马立锋,阮建云,石元值,韩文炎.茶树氟累积特性研究[J].浙江农业学报,2004,16(2):96-98.

    Ma LF, Ruan JY, Shi YZ, Han WY. Study on accumulation characteristics of fluorine in tea plants[J]. Acta Agriculturae Zhejiangensis, 2004, 16(2):96-98.
    [45]
    李丽霞.茶树吸收富集氟特性及初步调控研究[D].成都:四川农业大学,2008. Li LX. Study on the absorption and accumulation of fluo-ride in tea plant and primary control[D]. Chengdu:Sichuan Agricultural University, 2008.
    [46]
    Ruan J, Ma L, Shi Y, Han W. Uptake of fluoride by tea plant (Camellia sinensis L.) and the impact of aluminium[J].J Sci Food Agr, 2003, 83(13):1342-1348.
    [47]
    刘超,吴方正.茶叶中的氟含量及测定方法研究[J].农业环境科学学报, 1998, 17(3):132-135.

    Liu C, Wu FZ. Fluoride in tea leaves and its analytical method[J]. Agro-environmental Protection, 1998, 17(3):132-135.
    [48]
    丁瑞兴,黄骁.茶园-土壤系统铝和氟的生物地球化学循环及其对土壤酸化的影响[J].土壤学报, 1991, 28(3):229-236.

    Ding RX, Huang X. Biogeochemical cycle of aluminum and fluorine in tea garden soil system and its relationship to soil acidification[J]. Acta Pedologica Sinica, 1991, 28(3):229-236.
    [49]
    刘晓静.茶园土壤-茶树-茶汤系统中氟和铝的迁移、转化特征及饮茶型氟中毒的防治探索[D].北京:中国科学院,2006. Liu XJ. Transference and transform of fluoride and aluminum in the system of soil-tea plants-tea liquor and probing into the prevention from brick-tea fluorosis[D]. Beijing:Chinese Academy of Sciences, 2006.
    [50]
    Zhang XC, Gao HJ, Zhang ZZ, Wan XC. Influences of different ion channel inhibitors on the absorption of fluoride in tea plants[J]. Plant Growth Regul, 2013b, 69(1):99-106.
    [51]
    Zhang XC, Gao HJ, Yang TY, Wu YY, Wang YU, Zhang ZZ, Wan XC. Anion channel inhibitor NPPB-inhibited fluo-ride accumulation in tea plant(Camellia sinensis) is related to the regulation of Ca2+, CaM and depolarization of plasma membrane potential[J]. Int J Mol Sci, 2016, 17(57):1-14.
    [52]
    Cai HM, Peng CY, Chen J, Hou RY, Gao HJ, Wan XC. X-ray photoelectron spectroscopy surface analysis of fluo-ride stress in tea(Camellia sinensis(L.) O. Kuntze) leaves[J]. J Fluorine Chem, 2014, 158(2):11-15.
    [53]
    春晓娅.茶树新梢氟的分布特性及与多糖的结合方式初探[D].武汉:华中农业大学,2011. Cun XY. Study on distribution of fluoride in the tea shoots and the ways of the combination with polysaccharides[D]. Wuhan:Huazhong Agricultural University, 2011.
    [54]
    李春雷.氟对茶树幼苗生理生化的影响及其作用机制研究[D].武汉:华中农业大学,2011. Li CL. Study on the effect and mechanism of fluoride in the physiology and biochemistry of tea seedlings[D].Wuhan:Huazhong Agricultural University, 2011.
    [55]
    蔡荟梅,彭传燚,李成林,高柱,侯如燕,宛晓春.三个品种茶树氟富集特性及其在亚细胞中的分布[J].中国农业科学,2013,46(8):1668-1675.

    Cai HM, Peng CY, Li CL, Gao Z, Hou RY, Wan XC. Fluo-ride accumulation and its subcellular distribution in three tea plants[J]. Scientia Agricultura Sinica, 2013, 46(8):1668-1675.
    [56]
    马士成.铝对茶树氟吸收、累积、分布特性的影响及其机理研究[D].杭州:浙江大学,2012. Ma SC. Effects of aluminum on uptake, distribution and accumulation of fluoride in tea plants and its mechanism[D]. Hangzhou:Zhejiang University, 2012.
  • Related Articles

    [1]Zhang Youxuan, Duan Yingming, Zhou Yating, Gong Yanbing. Comparison of quantitative research methods for flower scent based on dynamic headspace collection[J]. Plant Science Journal, 2025, 43(1): 122-133. DOI: 10.11913/PSJ.2095-0837.24095
    [2]Zhao Jia-Li, Zhang Xiao-Na, Huang Juan, Li Hong-You, Shi Tao-xiong, Chen Qing-Fu, Deng Jiao. Metabolite analysis of Fagopyrum tataricum (L.) Gaertner sprouts treated by two kinds of illumination[J]. Plant Science Journal, 2019, 37(6): 808-819. DOI: 10.11913/PSJ.2095-0837.2019.60808
    [3]Qin Ai, Zheng Xiao-Min, Wang Kun. Research methods of plant proteomics based on mass spectrometry[J]. Plant Science Journal, 2018, 36(3): 470-478. DOI: 10.11913/PSJ.2095-0837.2018.30470
    [4]TU Xun-Liang, YANG Shu-Ting, LI Ya-Bo, ZHANG Li, LÜ Xiu-Lan. Analysis of Aromatic Components from the Peels of Eight Lemon Varieties by GC-MS[J]. Plant Science Journal, 2016, 34(4): 630-636. DOI: 10.11913/PSJ.2095-0837.2016.40630
    [5]LIANG Jia-Wen, LIU Ai-Jie, MA Bing-Xin, WANG You-Wei. Simultaneous Determination of Six Flavonoid Compounds in Lotus Leaves by High Performance Liquid Chromatography[J]. Plant Science Journal, 2015, 33(6): 861-866. DOI: 10.11913/PSJ.2095-0837.2015.60861
    [6]ZHU Yue-Lin, CHANG Zeng-Hua, ZHENG Xiao-Mei, HUANG Zhi-Ping, XIAO Kai-Wen. Comparative Analysis of Essential Oil Components from Golden Pomelo Peel by Steam Distillation and Solvent Extraction[J]. Plant Science Journal, 2011, 29(1): 130-133.
    [7]CHANG Jing-Ling, DENG Xiao-Li, ZHANG Jun-Xia, ZHAO Xu-Na, YANG Jian-Lei. GC-MS Analysis of Linolenic Acid and Linoleic Acid in Chinese Trichosanthes kirilowii Oil[J]. Plant Science Journal, 2009, 27(5): 564-568.
    [8]LI Miao, LOU Yi-Ceng, YANG Han, HU Jia-Xing, SU Feng-Ping. Study on the Fingerprint Chromatogram of the Compound Giant Knotweed Rhizome by High Performance Liquid Chromatography[J]. Plant Science Journal, 2009, 27(4): 446-450.
    [9]BAI Jie, WANG Dong-Mei, YANG De-Po. Analysis of the Chemical Constituents of Hypericum hubeiense by HPLC/DAD/ESI-MS[J]. Plant Science Journal, 2008, 26(1): 87-90.
    [10]GAO Xue-Qin, JIANG Ji-Hong, DOU Yan, QIAN Li-Wu, FENG You-Jian. Study on Chemical Components of Petroleum Ether Fraction of Alcohol Extract from the Leaves of Cunninghamia lanceolata Hook.[J]. Plant Science Journal, 2006, 24(1): 90-92.

Catalog

    Article views (1442) PDF downloads (1735) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return