A review on detection of drought stress in tea plants through morphological, physiological, and biochemical approaches
Abstract
Tea plants (Camellia sinensis) are important commodities with high economic value, but their production is greatly affected by environmental stresses such as drought and extreme temperatures. Global warming in recent years has led to extreme weather events and an increase in the earth's temperature, which also causes drought. Drought stress is one of the most significant abiotic factors affecting crop productivity. However, despite significant progress, there remains a notable gap in research, particularly the lack of integrated studies that combine morphological, physiological, and biochemical indicators for early and precise detection of drought stress in tea plants. To identify and mitigate the impact of this stress, a comprehensive approach is needed that includes morphological, physiological, and biochemical aspects. The morphological approach includes changes in leaf structure, stomatal size and number, and root growth patterns. From a physiological perspective, plant response to drought can be seen through measurements of transpiration rate, leaf water potential, and photosynthetic capacity. On the biochemical side, the accumulation of compounds such as proline, antioxidant enzymes, and stress-related hormones, such as abscisic acid, plays a crucial role in plant adaptation to drought conditions. This review summarizes the latest findings related to these indicators by analyzing relevant articles published between 2007 and 2024, obtained through reference searches on Google Scholar and academic databases such as Scopus, EBSCO, and Clarivate. The articles were further analyzed using descriptive methods. This review aims to summarize the latest findings related to these indicators and identify the most effective methods for detecting drought stress in tea plants. A deeper understanding of the tea plant's response to drought through these three approaches is expected to provide a solid basis for developing better drought management strategies to maintain tea plant productivity amid increasingly extreme climate change.
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Amtmann A, Bennett MJ, Henry A. 2022. Root phenotypes for the future. Plant Cell Environ., 45(3): 595–601. https://doi.org/10.1111/pce.14269
Ashraf M. 2010. Inducing drought tolerance in plants: Recent advances. Biotechnology Advances, 8(1): 169–183. https://doi.org/https://doi.org/10.1016/j.biotechadv.2009.11.005
Badan Litbang Pertanian. 2022. Laporan Tahunan Riset Teh dan Kina Indonesia. Balai.
Bharath P, Gahir S, Raghavendra AS. 2021. Abscisic acid-induced stomatal closure : An important component of plant defense against abiotic and biotic stress. Front Plant Sci., 12(March): 1–18. https://doi.org/10.3389/fpls.2021.615114
Blaise D, Manikandan A, Desouza ND, Bhargavi B, Somasundaram J. 2021. Intercropping and mulching in rain-dependent cotton can improve soil structure and reduce erosion. Environmental Advances, 4(April): 100068. https://doi.org/10.1016/j.envadv.2021.100068
Brunner I, Herzog C, Dawes MA, Arend M, Sperise C. 2015. How tree roots respond to drought. Frontiers in Plant Science, 6(July): 1–16. https://doi.org/10.3389/fpls.2015.00547
Chaeikar SS, Marzvan S, Khiavi SJ, Rahimi M. 2020. Changes in growth, biochemical, and chemical characteristics and alteration of the antioxidant defense system in the leaves of tea clones (Camellia sinensis L.) under drought stress. Scientia Horticulturae, 265: 109–257. https://doi.org/https://doi.org/10.1016/j.scienta.2020.109257
Chen K, Li G, Bressan R, Song C, Zhu J, Zhao Y. 2020. Abscisic acid dynamics, signaling, and functions in plants. J. Integr. Plant Biol., 62: 25–54. https://doi.org/doi: 10.1111/jipb.12899
Cosgrove DJ. 2015. Plant expansins: Diversity and interactions with plant cell walls. Curr. Opin. Plant Biol., 25: 162–172. https://doi.org/10.1016/j.pbi.2015.05.014.Plant
Damayanthi MMN, Wijeratne TL, Damunupola JW. 2023. Exogenous salicylic acid induced drought stress tolerance in immature tea tropical agricultural research exogenous salicylic acid induced drought stress tolerance in immature tea (Camellia sinensis L.) Plants. Tropical Agricultural Research , 34(3): 237–253. https://doi.org/10.4038/tar.v34i3.8649
Demo AH, Bogale GA. 2024. Enhancing crop yield and conserving soil moisture through mulching practices in dryland agriculture. Front. Agron., 6: 1361697.(May). https://doi.org/10.3389/fagro.2024.1361697
Ding Z, Jiang C. 2022. Transcriptome profiling to the effects of drought stress on different propagation modes of tea plant (Camellia sinensis ). Frontiers in Genetics, 13(August): 1–13. https://doi.org/10.3389/fgene.2022.907026
Dong F, Hu J, Shi Y, Liu M, Zhang Q, Ruan J. 2019. Effects of nitrogen supply on flavonol glycoside biosynthesis and accumulation in tea leaves (Camellia sinensis). Plant Physiology and Biochemistry, 138: 48–57. https://doi.org/https://doi.org/10.1016/j.plaphy.2019.02.017
Easwaran S, Marimuthu M, Guhan V. 2023. Studies on the effect of integrated nutrient management on drought influenced parameters in tea ( Camellia sp .). International Journal of Environment and Climate Change, 13(3): 257–261. https://doi.org/10.9734/IJECC/2023/v13i32075
Emami Z, Barker AV & Hashemi M. 2024. Physiology of medicinal and aromatic plants under drought stress. The Crop Journal, 12(2): 330–339. https://doi.org/10.1016/j.cj.2023.12.003
Farooq M, Wahid A, Kobayashi N, D Fujita, Basra SMA. 2009. Plant drought stress: effects, mechanisms and management: Review article. Agronomy for Sustainable Development, 29(1): 185–212.
Fatawa MI, Santosa E, Hapsari DP. 2024. Climate change and its adaptation strategies on tea plantation in West Java , Changing rainfall and its adaptation strategies on tea plantation in West Java, Indonesia. Indonesian Journal of Agronomy, 51(2): 257–268. https://doi.org/10.24831/ija.v51i2.47081
Food Agricultural Organization. 2022. Market and Trade of Tea. https://www.fao.org/markets-and-trade/commodities-overview/beverages/tea/en
Germon A, Laclau JP, Robin A, Jourdan C. 2020. Tamm review: Deep fine roots in forest ecosystem. Forest Ecology and Management, 466: 118–135. https://doi.org/https://doi.org/10.1016/j.foreco.2020.118135
Gietler M, Fidler J, Labudda M. 2020. Abscisic acid — Enemy or savior in the response of cereals to abiotic and biotic stresses? Int. J. Mol. Sci., 21(4607): 1–28.
Gu H, Wan, Y, Xie H, Qiu, C, Zhang S, Xiao J, Li H, Chen L, Li X, Ding Z 2020. Drought stress triggers proteomic changes involving lignin, flavonoids and fatty acids in tea plants. Scientific Reports, 10: 1–11. https://doi.org/10.1038/s41598-020-72596-1
Gupta A, Andrés Rico-Medina, Caño-Delgado AI. 2020. The physiology of plant responses to drought. Science, 368(6488): 266–269. https://doi.org/DOI: 10.1126/science.aaz7614
Han C, Wang P. 2023. Reactive oxygen species: Multidimensional regulators of plant adaptation to abiotic stress and development. Journal of Integrative Plant Biology, 66(3): 301–631. https://doi.org/10.1111/jipb.13601
Han WY, Li X, Yan P, Zhang L, Golam Jalal A. 2018. Tea cultivation under changing climatic conditions. In Global tea science. Burleigh Dodds Science Publishing. https://doi.org/http://dx.doi.org/10.19103/AS.2017.0036.19
International Tea Committe (ITC). 2024. The Global Tea Report 2024. Tea and Coffe Trade Journal. https://www.teaandcoffee.net/organisation/international-tea-committee-itc/
Kang J, Peng Y, Xu W. 2022. Crop root responses to drought stress: Molecular mechanisms, nutrient regulations, and interactions with microorganisms in the rhizosphere. Int. J. Mol. Sci., 23(9310): 1–26. https://doi.org/https://doi.org/10.3390/ijms23169310
Khan P, Abdelbacki AMM, Albaqam M, Jan R, Kim K. 2025. Proline promotes drought tolerance in maize. Biology, 14(1): 41.
Kishor PBK, Suravajhala P, Rathnagiri P, Sreenivasulu N. 2022. Intriguing role of proline in redox potential conferring high temperature stress tolerance. Front. Plant Sci., 13(June): 1–16. https://doi.org/10.3389/fpls.2022.867531
Li J, Bai, X, Ran F, Zhang, Yan Y, Li P, Chen H. 2024. Effects of combined extreme cold and drought stress on growth, photosynthesis, and physiological characteristics of cool ‑ season grasses. Scientific Reports, 14(0123456789): 1–19. https://doi.org/10.1038/s41598-023-49531-1
Li Q, Li H, Zhang L, Zhang S, Chen Y. 2018. Mulching improves yield and water-use efficiency of potato cropping in China: A meta-analysis. Field Crops Res., 221: 50–60. https://doi.org/10.1016/j.fcr.2018.02.017
Li Y, Chen Y, Chen, Shen C. 2023. Flavonoid metabolites in tea plant (Camellia sinensis) stress response: Insights from bibliometric analysis. Plant Physiology and Biochemistry, 202(107934). https://doi.org/https://doi.org/10.1016/j.plaphy.2023.107934
Liang B, Li C, Bai T, Wang P. 2023. Editorial : Nutrient use efficiency of plants under abiotic stress. Front Plant Sci., 14(11798): 10–12. https://doi.org/10.3389/fpls.2023.1179842
Liang X, Zhang, Natarajan SK, Becker D F. 2013. Proline mechanisms of stress survival. Antioxidants and Redox Signaling, 19(9): 998–1011. https://doi.org/10.1089/ars.2012.5074
Liu S, Yao, Ma C., Jin J, Ma J, Li C, Chen L. 2015. Physiological changes and dif-ferential gene expression of tea plant under dehydration and rehydration conditions. Sci. Hortic., (184): 129–141. https://doi.org/10.1016/j.scienta.2014.12.036
Lopez G, Ahmadi SH, Amelun W, Athmann M, Ewert F, Gaiser T, Gocke MI, Kautz T, Postma J, Stoschus A, Watt M, Yu P, Seidel SJ. 2023. Nutrient deficiency effects on root architecture and root-to-shoot ratio in arable crops. Front Plant Sci., 13(1067498): 1–18. https://doi.org/10.3389/fpls.2022.1067498
Ma Y, Cao J, He J, Chen Q, Li X, Yang Y. 2018. Molecular mechanism for the regulation of ABA homeostasis during plant development and stress responses. Int. J. Mol. Sci., 2(19): 1–14. https://doi.org/10.3390/ijms19113643
Manzoor ML, Ni K, Ruan J. 2024. Influence of organic and inorganic fertilizers on tea growth and quality and soil properties of tea orchards ’ top. Plants, 13(207): 1–22. https://doi.org/Plan https://doi.org/10.3390/plants13020207
Maritim TK, Kamunya SM, Mirej P, Mwendia C, Muoki RC, Cheruiyot EK, Wachira FN, Breeding T, Africa C. 2015. Physiological and biochemical response of tea [Camellia sinensis (L.) O. Kuntze]. Journal of Horticultural Science & Biotechnology, 90(4): 395–400. https://doi.org/https://doi.org/10.1016/j.cj.2023.12.003
Masheva V, Spasova-apostolova V, Aziz S, Tomlekova N. 2022. Variations in proline accumulation and relative water content under water stress characterize bean mutant lines ( P . vulgaris L .). Bulgarian Journal of Agricultural Science, 28(3): 430–436.
Meng F, Zhang T, Yin D. 2023. The effects of soil drought stress on growth characteristics , root system , and tissue anatomy of Pinus sylvestris var . mongolica. PerrJ, 11(14578): 1–19. https://doi.org/10.7717/peerj.14578
Morris J. 2023. Regulation of growth and development of camellia sinensis ( tea plant ) under abiotic and biotic stress . J Biotech and Phytochem, 7(3): 1–2. https://doi.org/10.35841/aajbp-7.3.148
Nour MM, Aljabi HR, Al-huqail AA, Horneburg B. 2024. Drought responses and adaptation in plants differing in life-form. Frontiers in Ecology and Evolution, 11: 1–14. https://doi.org/10.3389/fevo.2024.1452427
Pandey BK, Bennett MJ. 2019. A new angle on how roots acclimate to sporadic rainfall. Cell, 178(2): 269–271. https://doi.org/10.1016/j.cell.2019.06.018
Qi, J, Song, C, Wang, B, Zhou, J, Zhu J, Gong Z. 2018. Reactive oxygen species signaling and stomatal movement in plant responses to drought stress and pathogen attack. Journal of Integrative Plant Biology, 60(9): 805–826. https://doi.org/10.1111/jipb.12654
Qian W, Hu J, Zhang X, Zhao L, Wang Y. 2018. Response of Tea Plants to Drought Stress. In Stress Physiology of Tea in the Face of Climate Change. Springer Nature Singapore Pte Ltd. https://doi.org/10.1007/978-981-13-2140-5
Que Y, Zhao Q. 2024. High-yield tea plant cultivation: Ecological and agronomic insights. Journal of Tea Science Research, 14(4): 215–224. https://doi.org/10.5376/jtsr.2024.14.0020
Rezamela, Rosniawaty S, Suherman C. 2020. Respons pertumbuhan bibit setek teh ( Camellia sinensis ( L .) O . Kuntze ) Klon GMB 7 pada berbagai interval penyiraman. Agrikultura, 31(3): 263–272.
Rokhmah DN, Astutik D, Supriandi H. 2022. Cultivation technology for drought stress mitigation in tea plants: A review. IOP Conference Series Earth and Environmental Science, 1038(1): 012015. https://doi.org/10.1088/1755-1315/1038/1/012015
Sachdev S, Ansari SA, Ansari MI, Fujit M. 2021. Abiotic stress and reactive oxygen species: generation, signaling, and defense mechanisms. Antioxidants, 10(277): 1–37. https://doi.org/https://doi.org/10.3390/antiox10020277
Sack L, John GP, Buckley TN. 2018. ABA accumulation in dehydrating leaves is associated with decline in cell volume, not turgor pressure. Plant Physiology, 176(1): 489–493. https://doi.org/10.1104/pp.17.01097
Samarina LS, Malyukova LS, Efremov AM, Simonyan TA, Matskiv AO, Koninskaya NG, Rakhmangulov RS, Gvasaliya MV, Malyarovskaya VI, Ryndin AV, Orlov YL, Tong W, & Hanke MV. 2020. Physiological, biochemical, and genetic responses of Caucasian tea (Camellia sinensis (L.) Kuntze) genotypes under cold and frost stress. PeerJ, (8): 1–23. https://doi.org/10.7717/peerj.9787
Seleiman MF, Al-Suhaibani N, Ali N, Akmal M, Alotaibi M, Refay Y, Dindaroglu T, Abdul-Wajid HH, Battaglia ML. 2021. Drought stress impacts on plants and different approaches to alleviate its adverse effects. Plants, 10(2): 1–25. https://doi.org/10.3390/plants10020259
Sharma A, Gupta A, Ramakrishnan M, Van HC, Zheng B, Bhardwaj M, Tra, LSP. 2023. Roles of abscisic acid and auxin in plants during drought: A molecular point of view. Plant Physiology and Biochemistry, (204): 108129. https://doi.org/https://doi.org/10.1016/j.plaphy.2023.108129
Shen J, Wang S, Sun L, Wang Y, Fan K, Li C, Wang H, Bi C, Zhang F, Ding Z. 2022. Dynamic changes in metabolic and lipidomic profiles of tea plants during drought stress and re-watering. Front. Plant Sci., 13(9): 1–16. https://doi.org/10.3389/fpls.2022.978531
Shikha D, Jakhar P, Satbhai SB. 2023. Role of jasmonate signaling in the regulation of plant responses to nutrient deficiency. J. Exp. Bot., 74:1221–1243. https://doi.org/10.1093/jxb/erac387
Shil S, Dewanjee S. 2022. Impact of drought stress signals on growth and secondary metabolites (SMs) in medicinal plants. The Journal of Phytopharmacology, 11(5): 371–376. https://doi.org/10.31254/phyto.2022.11511
Sri Lanka Teaboard. 2023. Tea Production For the October 2023. Tea Production. https://srilankateaboard.lk/production-volume/
Sun W, Wei J, Wu G, Xu H, Chen Y, Yao M, ... Li Q. 2022. CqZF-HD14 enhances drought tolerance in quinoa seedlings through interaction with CqHIPP34 and CqNAC79. Plant Science, 323(111406): 1–6.
Taiz L, Zeiger E. 2015. Plant physiology and Development (3rd Edition). Sinauer Associates, Inc., Publishers.
Thiep NV, Thi N, Ha T, Thi T, My K. 2015. Evaluating characteristics related to drought tolerance in tea genetic resources as the basis to select new tea clone with drought resistance. Journal of Agricultural Technology, 11(4): 2239–2248.
Varshney RK, Kholova J, Tuberosa R, Tardieu F, Siddique KHM, Reynolds MP. 2021. Breeding custom-designed crops for improved drought adaptation. Advanced Genetics, 2: 1–15. https://doi.org/10.1002/ggn2.202100017
Wang L, Lee M, Ye B, Yue GH. 2020. Genes, pathways and networks responding to drought stress in oil palm roots. Scientific Reports, 10(21303): 1–13. https://doi.org/10.1038/s41598-020-78297-z
Xiao S, Liu, L, Sun YZH, Zhang K, Bai Z, Li C, Dong H. 2020. Fine root and root hair morphology of cotton under drought stress revealed with RhizoPot. J. Agron. Crop Sci., 14(16): 679–693. https://doi.org/https://doi.org/10.1111/jac.12429
Xu Z, Zhou G, Shimizu H. 2010. Plant responses to drought and rewatering. Plant Signaling & Behavior, 5(6): 649–654.
Yadav S, Sharm KD. 2016. Molecular and Morphophysiological Analysis of Drought Stress in Plants. In Everlon Cid Rigobelo (Ed.), Plant Growth. IntchOpen. https://doi.org/DOI: 10.5772/65246
Zahedi SM, Karimi M, Venditti A, Zahra N, Siddique KHM, Farooq M. 2024. Plant Adaptation to Drought Stress: The Role of Anatomical and Morphological Characteristics in Maintaining the Water Status. Journal of Soil Science and Plant Nutrition, 25: 409–427. https://doi.org/DOI:10.1007/s42729-024-02141-w
Zerfu A. 2018. Review on integrated nutrient management of tea (Camellia sinensis L.). Cogent Food & Agriculture, 4(1): 1–12. https://doi.org/10.1080/23311932.2018.1543536
Zhang MJ, Zhang XS, Gao X. 2020. ROS in the male – female interactions during pollination: Function and Regulation. Frontiers in Plant Science, 11(2): 1–8. https://doi.org/10.3389/fpls.2020.00177
Zhang X, Liu K, Tang Q, Zeng, Wu Z. 2023. Light intensity regulates low-temperature adaptability of tea plant through ROS stress and developmental programs. International Journal of Molecular Sciences, 24(12). https://doi.org/10.3390/ijms24129852
Zhao ML, Fang Y, Gao Q, Wang W. 2011. Expansin-regulated cell elongation is involved in the drought tolerance in wheat. Protoplasma, 248(2): 313–323. https://doi.org/DOI:10.1007/s00709-010-0172-2
Zhou G, Zhou X, Zhou L, Shao J, Fu Y, Nie Y, Hosseini S, Cheng W, Wang J, Hu F. 2018. Drought ‐ induced changes in root biomass largely result from altered root morphological traits: Evidence from a synthesis of global field trials. Plant Cell Environ., 41: 2589–2599. https://doi.org/10.1111/pce.13356
Zhu M, Li N, Zhou F, Ouyang J, Lu D, Xu W, Li J, Lin H, Zhang Z, Xiao J, Wang K, Huang J, Liu Z, Wu J. 2020. Microbial bioconversion of the chemical components in dark tea. Food Chemistry, 312(126043): 1–5. https://doi.org/https://doi.org/10.1016/j.foodchem.2019.126043
Zlatev Z. 2012. An overview on drought induced changes in plant growth, water relations and photosynthesis. Emirates Journal of Food and Agriculture, 23(1): 56–72. https://doi.org/10.9755/ejfa.v24i1.10599
DOI: https://doi.org/10.24198/kultivasi.v24i1.62127
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