Acta Laser Biology Sinica, Volume. 32, Issue 2, 112(2023)

Research Progress on the Regulation of Light Quality on the Growth Development and Quality Formation of Tea Plant

XIAO Fuliang, ZHAI Xiuming, LI Jie, TANG Min, and HOU Yujia
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    References(29)

    [1] [1] WEI C, HUA Y, WANG S, et al. Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality[J]. Proceedings of the National Academy of Sciences, 2018, 115(18): E4151-E4158.

    [2] [2] ZENG L, ZHOU X, LIAO Y, et al. Roles of specialized metabolites in biological function and environmental adaptability of tea plant (Camellia sinensis) as a metabolite studying model[J]. Journal of Advanced Research, 2021, 34: 159-171.

    [3] [3] DEVLIN P F, CHRISTIE J M, TERRY M J. Many hands make light work[J]. Journal of Experimental Botany, 2007, 58(12): 3071-3077.

    [4] [4] MACEDO A F, LEAL-COSTA M V, TAVARES E S, et al. The effect of light quality on leaf production and development of in vitro-cultured plants of Alternanthera brasiliana Kuntze[J]. Environmental and Experimental Botany, 2011, 70(1): 43-50.

    [5] [5] TIAN Y, WANG H, SUN P, et al. Response of leaf color and the expression of photoreceptor genes of Camellia sinensis cv. Huangjinya to different light quality conditions[J]. Scientia Horticulturae, 2019, 251: 225-232.

    [6] [6] ILI? Z S, FALLIK E. Light quality manipulation improves vegetable quality at harvest and postharvest: a review[J]. Environmental and Experimental Botany, 2017, 139: 79-90.

    [7] [7] YUE C, WANG Z, YANG P. Review: the effect of light on the key pigment compounds of photosensitive etiolated tea plant[J]. Botanical Studies, 2021, 62(1): 1-15.

    [8] [8] SINGH D, BASU C, MEINHARDT-WOLLWEBER M, et al. LEDs for energy efficient greenhouse lighting[J]. Renewable and Sustainable Energy Reviews, 2015, 49: 139-147.

    [9] [9] TAYLOR A R, ASSMANN S M. Apparent absence of a redox requirement for blue light activation of pump current in broad bean guard cells[J]. Plant Physiology, 2001, 125(1): 329-338.

    [10] [10] DEWIR Y H, CHAKRABARTY D, HAHN E J, et al. Flowering of Euphorbia millii plantlets in vitro as affected by paclobutrazol, light emitting diodes (LEDs) and sucrose[J]. Acta Horticulturae, 2007, 764(95): 169-174.

    [11] [11] KAMI C, LORRAIN S, HORNITSCHEK P, et al. Light-regulated plant growth and development[J]. Current Topics in Developmental Biology, 2010, 91: 29-66.

    [12] [12] PéREZ-BALIBREA S, MORENO D A, GARCíA-VIGUERA C. Influence of light on health-promoting phytochemicals of broccoli sprouts[J]. Journal of the Science of Food and Agriculture, 2008, 88(5): 904-910.

    [13] [13] LIU L, LIN N, LIU X, et al. From chloroplast biogenesis to chlorophyll accumulation: the interplay of light and hormones on gene expression in Camellia sinensis cv. Shuchazao leaves[J]. Frontiers in Plant Science, 2020, 11: 256.

    [14] [14] WALTERS R G. Towards an understanding of photosynthetic acclimation[J]. Journal of Experimental Botany, 2005, 56(411): 435-447.

    [15] [15] JIAO Y, LAU O S, DENG X W. Light-regulated transcriptional networks in higher plants[J]. Nature Reviews Genetics, 2007, 8(3): 217-230.

    [17] [17] WU L, YANG H Q. Cryptochrome1 is implicated in promoting R protein-mediated plant resistance to Pseudomonas syringae in Arabidopsis[J]. Molecular Plant, 2010, 3(3): 539-548.

    [24] [24] TIAN Y, WANG H, ZHANG Z, et al. An RNA-seq analysis reveals differential transcriptional responses to different light qualities in leaf color of Camellia sinensis cv. Huangjinya[J]. Journal of Plant Growth Regulation, 2021, 41: 612-627.

    [28] [28] ZHENG C, MA J Q, MA C L, et al. Regulation of growth and flavonoid formation of tea plants (Camellia sinensis) by blue and green light[J]. Journal of Agricultural and Food Chemistry, 2019, 67(8): 2408-2419.

    [29] [29] ZHENG X Q, LI Q S, XIANG LP, et al. Recent advances in volatiles of teas[J]. Molecules, 2016, 21(3): 338.

    [30] [30] FU X, CHEN Y, MEI X, et al. Regulation of formation of volatile compounds of tea (Camellia sinensis) leaves by single light wavelength[J]. Scientific Reports, 2015, 5: 16858.

    [31] [31] WEI K, RUAN L, WANG L, et al. Auxin-induced adventitious root formation in nodal cuttings of Camellia sinensis[J]. International Journal of Molecular Sciences, 2019, 20(19): 4817.

    [32] [32] WANG Y, PANG D, RUAN L, et al. Integrated transcriptome and hormonal analysis of naphthalene acetic acid-induced adventitious root formation of tea cuttings (Camellia sinensis)[J]. BMC Plant Biology, 2022, 22(1): 1-19.

    [33] [33] SHEN Y, FAN K, WANG Y, et al. Red and blue light affect the formation of adventitious roots of tea cuttings (Camellia sinensis) by regulating hormone synthesis and signal transduction pathways of mature leaves[J]. Frontiers in Plant Science, 2022, 13: 2398.

    [35] [35] ZAGOSKINA N V, DUBRAVINA G A, ALYAVINA A K, et al. Effect of ultraviolet (UV-B) radiation on the formation and localization of phenolic compounds in tea plant callus cultures[J]. Russian Journal of Plant Physiology, 2003, 50(2): 270-275.

    [36] [36] ZAGOSKINA N V, ALYAVINA A K, GLADYSHKO T O, et al. Ultraviolet rays promote development of photosystem II photochemical activity and accumulation of phenolic compounds in the tea callus culture (Camellia sinensis)[J]. Russian Journal of Plant Physiology, 2005, 52(6): 731-739.

    [39] [39] WAN X, LI D, ZHANG Z, et al. Research advance on tea biochemistry[J]. Journal of Tea Science, 2015, 35(1): 1-10.

    [40] [40] DENG H, CHEN S, ZHOU Z, et al. Transcriptome analysis reveals the effect of short-term sunlight on aroma metabolism in postharvest leaves of oolong tea (Camellia sinensis)[J]. Food Research International, 2020, 137: 109347.

    [41] [41] LIN J, LIU F, ZHOU X, et al. Effect of red light on the composition of metabolites in tea leaves during the withering process using untargeted metabolomics[J]. Journal of the Science of Food and Agriculture, 2022, 102(4): 1628-1639.

    [45] [45] AI Z, ZHANG B, CHEN Y, et al. Impact of light irradiation on black tea quality during withering[J]. Journal of Food Science and Technology, 2017, 54(5): 1212-1227.

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    XIAO Fuliang, ZHAI Xiuming, LI Jie, TANG Min, HOU Yujia. Research Progress on the Regulation of Light Quality on the Growth Development and Quality Formation of Tea Plant[J]. Acta Laser Biology Sinica, 2023, 32(2): 112

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    Paper Information

    Received: Jan. 3, 2023

    Accepted: --

    Published Online: Jan. 27, 2024

    The Author Email:

    DOI:10.3969/j.issn.1007-7146.2023.02.002

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