| [1] |
Mondal TK, Bhattacharya A, Laxmikumaran M, Singh Ahuja P. 2004. Recent advances of tea (Camellia sinensis) biotechnology. |
| [2] |
Samanta S. 2022. Potential bioactive components and health promotional benefits of tea (Camellia sinensis). |
| [3] |
Chy HMR, Islam AFMS, Saha JK, Tabassum R, Aziz MA, et al. 2022. Evaluation of morphological traits and biochemical parameters of tea (Camellia sinensis) genotypes for the quality and yields. |
| [4] |
Santner A, Calderon-Villalobos LIA, Estelle M. 2009. Plant hormones are versatile chemical regulators of plant growth. |
| [5] |
Bilsborough GD, Runions A, Barkoulas M, Jenkins HW, Hasson A, et al. 2011. Model for the regulation of Arabidopsis thaliana leaf margin development. |
| [6] |
Uyehara AN, Del Valle-Echevarria AR, Hunter CT, Nelissen H, Demuynck K, et al. 2023. Cytokinin promotes jasmonic acid accumulation in the control of maize leaf growth. |
| [7] |
Sakakibara H. 2006. Cytokinins: activity, biosynthesis, and translocation. |
| [8] |
Werner T, Schmülling T. 2009. Cytokinin action in plant development. |
| [9] |
Kakimoto T. 2001. Identification of plant cytokinin biosynthetic enzymes as dimethylallyl diphosphate: ATP/ADP isopentenyltransferases. |
| [10] |
Kurakawa T, Ueda N, Maekawa M, Kobayashi K, Kojima M, et al. 2007. Direct control of shoot meristem activity by a cytokinin-activating enzyme. |
| [11] |
Werner T, Motyka V, Laucou V, Smets R, Van Onckelen H, et al. 2003. Cytokinin-deficient transgenic Arabidopsis plants show multiple developmental alterations indicating opposite functions of cytokinins in the regulation of shoot and root meristem activity. |
| [12] |
Argueso CT, Ferreira FJ, Kieber JJ. 2009. Environmental perception avenues: the interaction of cytokinin and environmental response pathways. |
| [13] |
Kalve S, De Vos D, Beemster GTS. 2014. Leaf development: a cellular perspective. |
| [14] |
Tsukaya H. 2018. Leaf shape diversity with an emphasis on leaf contour variation, developmental background, and adaptation. |
| [15] |
Niemann MC, Bartrina I, Ashikov A, Weber H, Novák O, et al. 2015. Arabidopsis ROCK1 transports UDP-GlcNAc/UDP-GalNAc and regulates ER protein quality control and cytokinin activity. |
| [16] |
Wu W, Du K, Kang X, Wei H. 2021. The diverse roles of cytokinins in regulating leaf development. |
| [17] |
Sakakibara H, Takei K, Hirose N. 2006. Interactions between nitrogen and cytokinin in the regulation of metabolism and development. |
| [18] |
Holst K, Schmülling T, Werner T. 2011. Enhanced cytokinin degradation in leaf primordia of transgenic Arabidopsis plants reduces leaf size and shoot organ primordia formation. |
| [19] |
Niemann MCE, Weber H, Hluska T, Leonte G, Anderson SM, et al. 2018. The cytokinin oxidase/dehydrogenase CKX1 is a membrane-bound protein requiring homooligomerization in the endoplasmic reticulum for its cellular activity. |
| [20] |
Zalewski W, Orczyk W, Gasparis S, Nadolska-Orczyk A. 2012. HvCKX2 gene silencing by biolistic or Agrobacterium-mediated transformation in barley leads to different phenotypes. |
| [21] |
Huang P, Zhao J, Hong J, Zhu B, Xia S, et al. 2023. Cytokinins regulate rice Lamina joint development and leaf angle. |
| [22] |
Ori N, Juarez MT, Jackson D, Yamaguchi J, Banowetz GM, et al. 1999. Leaf senescence is delayed in tobacco plants expressing the maize homeobox gene knotted1 under the control of a senescence-activated promoter. |
| [23] |
Shani E, Ben-Gera H, Shleizer-Burko S, Burko Y, Weiss D, et al. 2010. Cytokinin regulates compound leaf development in tomato. |
| [24] |
Chen S, Wang P, Kong W, Chai K, Zhang S, et al. 2023. Gene mining and genomics-assisted breeding empowered by the pangenome of tea plant Camellia sinensis. |
| [25] |
Finn RD, Bateman A, Clements J, Coggill P, Eberhardt RY, et al. 2014. Pfam: the protein families database. |
| [26] |
Edgar RC. 2004. MUSCLE: multiple sequence alignment with high accuracy and high throughput. |
| [27] |
Trifinopoulos J, Nguyen LT, von Haeseler A, Minh BQ. 2016. W-IQ-TREE: a fast online phylogenetic tool for maximum likelihood analysis. |
| [28] |
Xia EH, Li FD, Tong W, Li PH, Wu Q, et al. 2019. Tea plant information archive: A comprehensive genomics and bioinformatics platform for tea plant. |
| [29] |
Li B, Dewey CN. 2011. RSEM: accurate transcript quantification from RNA-Seq data with or without a reference genome. |
| [30] |
Livak KJ, Schmittgen TD. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method. |
| [31] |
Jefferson RA, Kavanagh TA, Bevan MW. 1987. GUS fusions: beta-glucuronidase as a sensitive and versatile gene fusion marker in higher plants. |
| [32] |
Goodin MM, Dietzgen RG, Schichnes D, Ruzin S, Jackson AO. 2002. pGD vectors: versatile tools for the expression of green and red fluorescent protein fusions in agroinfiltrated plant leaves. |
| [33] |
Clough SJ, Bent AF. 1998. Floral dip: a simplified method for Agrobacterium -mediated transformation of Arabidopsis thaliana. |
| [34] |
Šimura J, Antoniadi I, Široká J, Tarkowská D, Strnad M, et al. 2018. Plant hormonomics: multiple phytohormone profiling by targeted metabolomics. |
| [35] |
Sun Q, Csorba T, Skourti-Stathaki K, Proudfoot NJ, Dean C. 2013. R-loop stabilization represses antisense transcription at the Arabidopsis FLC locus. |
| [36] |
Wang Z, He T, Fang Y, Lan Z, Liu B, et al. 2025. Impact of processing methods in shaping taste, flavor, antioxidants, and metabolites in teas (Camellia sinensis): a multi-method analysis. |
| [37] |
Aaqil M, Peng C, Kamal A, Nawaz T, Zhang F, et al. 2023. Tea harvesting and processing techniques and its effect on phytochemical profile and final quality of black tea: a review. |
| [38] |
Xia E, Li F, Tong W, Yang H, Wang S, et al. 2019. The tea plant reference genome and improved gene annotation using long-read and paired-end sequencing data. |
| [39] |
Hwang I, Sakakibara H. 2006. Cytokinin biosynthesis and perception. |
| [40] |
Wang X, Lin S, Liu D, Gan L, McAvoy R, et al. 2020. Evolution and roles of cytokinin genes in angiosperms 1: Do ancient IPTs play housekeeping while non-ancient IPTs play regulatory roles? |
| [41] |
Schmülling T, Werner T, Riefler M, Krupková E, Bartrina y Manns I. 2003. Structure and function of cytokinin oxidase/dehydrogenase genes of maize, rice, Arabidopsis and other species. |
| [42] |
Galuszka P, Popelková H, Werner T, Frébortová J, Pospíšilová H, et al. 2007. Biochemical characterization of cytokinin oxidases/dehydrogenases from Arabidopsis thaliana expressed in Nicotiana tabacum L. |
| [43] |
Mi X, Wang X, Wu H, Gan L, Ding J, et al. 2017. Characterization and expression analysis of cytokinin biosynthesis genes in Fragaria vesca. |
| [44] |
Yeh SY, Chen HW, Ng CY, Lin CY, Tseng TH, et al. 2015. Down-regulation of cytokinin oxidase 2 expression increases tiller number and improves rice yield. |
| [45] |
Ali S, Kim WC. 2019. A fruitful decade using synthetic promoters in the improvement of transgenic plants. |
| [46] |
Medford JI, Horgan R, El-Sawi Z, Klee HJ. 1989. Alterations of endogenous cytokinins in transgenic plants using a chimeric isopentenyl transferase gene. |
| [47] |
Jansson S. 1999. A guide to the Lhc genes and their relatives in Arabidopsis. |
| [48] |
Zhao S, Gao H, Luo J, Wang H, Dong Q, et al. 2020. Genome-wide analysis of the light-harvesting chlorophyll a/b-binding gene family in apple (Malus domestica) and functional characterization of MdLhcb4.3, which confers tolerance to drought and osmotic stress. |
| [49] |
Zou Z, Xiao Y, Zhang L, Zhao Y. 2023. Analysis of Lhc family genes reveals development regulation and diurnal fluctuation expression patterns in Cyperus esculentus, a Cyperaceae plant. |
| [50] |
Worakan P, Gujjar RS, Supaibulwatana K. 2022. Stable and reproducible expression of bacterial ipt gene under the control of SAM-specific promoter (pKNOX1) with interference of developmental patterns in transgenic Peperomia pellucida plants. |
| [51] |
Zhang L, Li M, Fu J, Huang X, Yan P, et al. 2022. Genome-wide identification and expression analysis of Isopentenyl transferase family genes during development and resistance to abiotic stresses in tea plant (Camellia sinensis). |
| [52] |
Zhang S, Chen S, Fu Z, Li F, Chen Q, et al. 2025. Integration of digital phenotyping, GWAS, and transcriptomic analysis revealed a key gene for bud size in tea plant (Camellia sinensis). |
| [53] |
Ai Y, Chen Y, Wang N, Li J, Liu J, et al. 2024. Overexpression of MtIPT gene enhanced drought tolerance and delayed leaf senescence of creeping bentgrass (Agrostis stolonifera L.). |
| [54] |
Kuderová A, Urbánková I, Válková M, Malbeck J, Brzobohatý B, et al. 2008. Effects of conditional IPT-dependent cytokinin overproduction on root architecture of Arabidopsis seedlings. |
| [55] |
Zhao S, Mi X, Guo R, Xia X, Liu L, et al. 2020. The biosynthesis of main taste compounds is coordinately regulated by miRNAs and phytohormones in tea plant (Camellia sinensis). |