| [1] |
Chen ZM, Sun XL. 2013. Concise identity handbook of major plant diseases and insect pests of tea. 1st Edition. Beijing: China Agriculture Press. 259 pp. https://book.douban.com/subject/25811966 |
| [2] |
Wang Y, Xiong F, Lu Q, Hao X, Zheng M, et al. 2019. Diversity of Pestalotiopsis-like species causing gray blight disease of tea plants (Camellia sinensis) in China, including two novel Pestalotiopsis species, and analysis of their pathogenicity. |
| [3] |
Wan Y, Zou L, Zeng L, Tong H, Chen Y. 2021. A new Colletotrichum species associated with brown blight disease on Camellia sinensis. |
| [4] |
Wang S, Liu L, Mi X, Zhao S, An Y, et al. 2021. Multi-omics analysis to visualize the dynamic roles of defense genes in the response of tea plants to gray blight. |
| [5] |
Guo M, Zhao S, Gao Y, Shen X, Hou C. 2024. A phylogenetic and taxonomic revision of Discula theae-sinensis, the causal agents of anthracnose on Camellia sinensis. |
| [6] |
Nagata T, Ando Y, Hirota A. 1992. Phytotoxins from tea gray blight fungi, Pestalotiopsis longiseta and Pestalotiopsis theae. |
| [7] |
Sun X. 2016. Research progress and prospects of major tea leaf diseases in China. |
| [8] |
Gao X, Cox KL Jr, He P. 2014. Functions of calcium-dependent protein kinases in plant innate immunity. |
| [9] |
Moeder W, Phan V, Yoshioka K. 2019. Ca2+ to the rescue – Ca2+ channels and signaling in plant immunity. |
| [10] |
Goher F, Shafique Khan F, Sun S, Wang Q. 2025. Calcium-dependent protein kinase (CDPK/CPK)-mediated salicylic acid cascade: the key arsenal of plants under pathogens attack. |
| [11] |
Harmon AC, Gribskov M, Harper JF. 2000. CDPKs – a kinase for every Ca2+ signal? |
| [12] |
Pandey AK, Sinniah GD, Babu A, Tanti A. 2021. How the global tea industry copes with fungal diseases – challenges and opportunities. |
| [13] |
Ren T, Qi W, Wang D, Guan Y, Jiang Y, et al. 2025. Calcium-dependent protein kinases: bridging growth and stress responses in plants. |
| [14] |
Hetherington A, Trewavas A. 1982. Calcium-dependent protein kinase in pea shoot membranes. |
| [15] |
Liese A, Romeis T. 2013. Biochemical regulation of in vivo function of plant calcium-dependent protein kinases (CDPK). |
| [16] |
Li M, Wu G, Wei M, Liu C. 2024. Functions and mechanisms of CDPKs in plant responses to abiotic stress. |
| [17] |
Cheng SH, Willmann MR, Chen HC, Sheen J. 2002. Calcium signaling through protein kinases. The Arabidopsis calcium-dependent protein kinase gene family. |
| [18] |
Asano T, Tanaka N, Yang G, Hayashi N, Komatsu S. 2005. Genome-wide identification of the rice calcium-dependent protein kinase and its closely related kinase gene families: comprehensive analysis of the CDPKs gene family in rice. |
| [19] |
Ray S, Agarwal P, Arora R, Kapoor S, Tyagi AK. 2007. Expression analysis of calcium-dependent protein kinase gene family during reproductive development and abiotic stress conditions in rice (Oryza sativa L. ssp. indica). |
| [20] |
Li AL, Zhu YF, Tan XM, Wang X, Wei B, et al. 2008. Evolutionary and functional study of the CDPK gene family in wheat (Triticum aestivum L.). |
| [21] |
Liu H, Che Z, Zeng X, Zhou X, Sitoe HM, et al. 2016. Genome-wide analysis of calcium-dependent protein kinases and their expression patterns in response to herbivore and wounding stresses in soybean. |
| [22] |
Chen S, Xie Y, Pan S, Yu S, Zhang L. 2025. Identification of perennial ryegrass CDPK gene family and function exploration of LpCDPK27 upon salt stress. |
| [23] |
Zhu X, Hong X, Liu X, Li S, Yang J, et al. 2021. Calcium-dependent protein kinase 32 gene maintains photosynthesis and tolerance of potato in response to salt stress. |
| [24] |
Linghu B, Xu Z, Chu Y, Yan Y, Nie X, et al. 2023. Genome-wide analysis of calcium-dependent protein kinase (CDPK) family and functional characterization of TaCDPK25-U in response to drought stress in wheat. |
| [25] |
Zhao L, Xie B, Hou Y, Zhao Y, Zheng Y, et al. 2022. Genome-wide identification of the CDPK gene family reveals the CDPK-RBOH pathway potential involved in improving chilling tolerance in peach fruit. |
| [26] |
Wang Q, Yin X, Chen Q, Xiang N, Sun X, et al. 2017. Genome-wide survey indicates diverse physiological roles of the turnip (Brassica rapa var. rapa) calcium-dependent protein kinase genes. |
| [27] |
Xiong Y, Lin D, Ma S, Wang C, Lin S. 2022. Genome-wide identification of the calcium-dependent protein kinase gene family in Fragaria vesca and expression analysis under different biotic stresses. |
| [28] |
Dubiella U, Seybold H, Durian G, Komander E, Lassig R, et al. 2013. Calcium-dependent protein kinase/NADPH oxidase activation circuit is required for rapid defense signal propagation. |
| [29] |
Munemasa S, Hossain MA, Nakamura Y, Mori IC, Murata Y. 2011. The Arabidopsis calcium-dependent protein kinase, CPK6, functions as a positive regulator of methyl jasmonate signaling in guard cells. |
| [30] |
Nie L, Wang R, Xia Y, Li G. 2015. CDPK1, an Arabidopsis thaliana calcium-dependent protein kinase, is involved in plant defense response. |
| [31] |
Ding C, Lei L, Yao L, Wang L, Hao X, et al. 2019. The involvements of calcium-dependent protein kinases and catechins in tea plant [Camellia sinensis (L.) O. Kuntze] cold responses. |
| [32] |
Wang S, Mi X, Wu Z, Zhang L, Wei C. 2019. Characterization and pathogenicity of Pestalotiopsis-like species associated with gray blight disease on Camellia sinensis in Anhui Province, China. |
| [33] |
Wang W, Li X, Li Z, Zhang L, Ahammed GJ, et al. 2025. Revisiting causal organisms of tea anthracnose: pathogen isolation and pathogenicity identification. |
| [34] |
Pan X, Welti R, Wang X. 2010. Quantitative analysis of major plant hormones in crude plant extracts by high-performance liquid chromatography–mass spectrometry. |
| [35] |
Gao Q, Tong W, Li F, Wang Y, Wu Q, et al. 2024. TPIA2: an updated tea plant information archive for Camellia genomics. |
| [36] |
Bailey TL, Boden M, Buske FA, Frith M, Grant CE, et al. 2009. MEME SUITE: tools for motif discovery and searching. |
| [37] |
Lescot M. 2002. PlantCARE, a database of plant cis-acting regulatory elements and a portal to tools for in silico analysis of promoter sequences. |
| [38] |
Wu Y, Di T, Wu Z, Peng J, Wang J, et al. 2024. CsLHY positively regulates cold tolerance by activating CsSWEET17 in tea plants. |
| [39] |
Liu N, Wang Y, Li K, Li C, Liu B, et al. 2023. Transcriptional analysis of tea plants (Camellia sinensis) in response to salicylic acid treatment. |
| [40] |
Christodoulou J, Malmendal A, Harper JF, Chazin WJ. 2004. Evidence for differing roles for each lobe of the calmodulin-like domain in a calcium-dependent protein kinase. |
| [41] |
Mu Z, Xu M, Manda T, Yang L, Hwarari D, et al. 2024. Genomic survey and evolution analysis of calcium-dependent protein kinases in plants and their stress-responsive patterns in populus. |
| [42] |
Rutschmann F, Stalder U, Piotrowski M, Oecking C, Schaller A. 2002. LeCPK1, a calcium-dependent protein kinase from tomato. Plasma membrane targeting and biochemical characterization. |
| [43] |
Lu J, Yang N, Zhu Y, Chai Z, Zhang T, et al. 2022. Genome-wide survey of Calcium-Dependent Protein Kinases (CPKs) in five Brassica species and identification of CPKs induced by Plasmodiophora brassicae in B. rapa, B. oleracea, and B. napus. |
| [44] |
Li L, Yuan Y, Shen B, Chen C, Yang L, et al. 2025. Genome-wide identification of CDPKs in jujube and expression profile analysis in response to multiple biological processes. |
| [45] |
Shi J, Ma Y, Wang D, Wang F. 2025. MdCDPK24 encoding calcium-dependent protein kinase enhances apple resistance to Colletotrichum gloeosporioides. |
| [46] |
Yang J, Ma Y, Zeng T, Li Z, Sui Y, et al. 2025. Molecular and metabolic insights into the mechanism of exogenous methyl jasmonate in enhancing the postharvest resistance of kiwifruit to Botrytis cinerea. |
| [47] |
Tang Y, Kuang JF, Wang FY, Chen L, Hong KQ, et al. 2013. Molecular characterization of PR and WRKY genes during SA- and MeJA-induced resistance against Colletotrichum musae in banana fruit. |
| [48] |
Jiao L, Tan R, Chen X, Wang H, Huang D, et al. 2024. Bibliometric and meta-analysis on the publication status, research trends and impact inducing factors of JA–SA interactions in plants. |
| [49] |
Pieterse CMJ, Van der Does D, Zamioudis C, Leon-Reyes A, Van Wees SCM. 2012. Hormonal modulation of plant immunity. |
| [50] |
Thaler JS, Humphrey PT, Whiteman NK. 2012. Evolution of jasmonate and salicylate signal crosstalk. |
| [51] |
Ullah C, Schmidt A, Reichelt M, Tsai CJ, Gershenzon J. 2022. Lack of antagonism between salicylic acid and jasmonate signalling pathways in poplar. |
| [52] |
Shinde R, Ayyanath MM, Shukla M, El Kayal W, Saxena PK, et al. 2024. Salicylic and jasmonic acid synergism during black knot disease progression in plums. |
| [53] |
Ding L, Xu H, Yi H, Yang L, Kong Z, et al. 2011. Resistance to hemi-biotrophic F. graminearum infection is associated with coordinated and ordered expression of diverse defense signaling pathways. |
| [54] |
Deng L, Ji S, Wang G, Liu X. 2026. Calcium-dependent protein kinases in plant immunity: from calcium signaling to network integration. |
| [55] |
Boudsocq M, Willmann MR, McCormack M, Lee H, Shan L, et al. 2010. Differential innate immune signalling via Ca2+ sensor protein kinases. |
| [56] |
Boudsocq M, Sheen J. 2013. CDPKs in immune and stress signaling. |
| [57] |
Zhou J, Wang X, He Y, Sang T, Wang P, et al. 2020. Differential phosphorylation of the transcription factor WRKY33 by the protein kinases CPK5/CPK6 and MPK3/MPK6 cooperatively regulates camalexin biosynthesis in Arabidopsis. |
| [58] |
Fantino E, Segretin ME, Santin F, Mirkin FG, Ulloa RM. 2017. Analysis of the potato calcium-dependent protein kinase family and characterization of StCDPK7, a member induced upon infection with Phytophthora infestans. |
| [59] |
Kobayashi M, Yoshioka M, Asai S, Nomura H, Kuchimura K, et al. 2012. StCDPK5 confers resistance to late blight pathogen but increases susceptibility to early blight pathogen in potato via reactive oxygen species burst. |
| [60] |
Yu H, Xiao A, Dong R, Fan Y, Zhang X, et al. 2018. Suppression of innate immunity mediated by the CDPK-Rboh complex is required for rhizobial colonization in Medicago truncatula nodules. |