| [1] |
Lee E, Yun N, Jang YP, Kim J. 2013. Lilium lancifolium Thunb. extract attenuates pulmonary inflammation and air space enlargement in a cigarette smoke-exposed mouse model. |
| [2] |
Dhiman MR, Sharma P, Bhargava B. 2020. Lilium: conservation, characterization, and evaluation. In Floriculture and Ornamental Plants, ed. SK Datta, YC Gupta. Singapore: Springer Singapore. pp. 1−36 doi: 10.1007/978-981-15-1554-5_6-1 |
| [3] |
Suh JK, Roh MS. 2014. New technique for cut flower production from bulbils of the Asiatic hybrid lily (Lilium × elegans Thunb). |
| [4] |
He G, Cao Y, Wang J, Song M, Bi M, et al. 2022. WUSCHEL-related homeobox genes cooperate with cytokinin to promote bulbil formation in Lilium lancifolium. |
| [5] |
Gao J, Zhang M, Liang J, Wen D, Liu T, et al. 2024. Isolation and identification of Rhizopus arrhizus causing postharvest bulb rot in Lilium davidii var. unicolor and its biocontrol using the endophytic bacterium Bacillus siamensis B55. |
| [6] |
Shu F, Wang D, Sarsaiya S, Jin L, Liu K, et al. 2024. Bulbil initiation: a comprehensive review on resources, development, and utilisation, with emphasis on molecular mechanisms, advanced technologies, and future prospects. |
| [7] |
Yang P, Xu L, Xu H, Tang Y, He G, et al. 2017. Histological and transcriptomic analysis during bulbil formation in Lilium lancifolium. |
| [8] |
Goryachev AB, Mallo M. 2020. Patterning and morphogenesis from cells to organisms: progress, common principles and new challenges. |
| [9] |
Li J, Sun M, Li H, Ling Z, Wang D, et al. 2022. Full-length transcriptome-referenced analysis reveals crucial roles of hormone and wounding during induction of aerial bulbils in lily. |
| [10] |
He G, Yang P, Tang Y, Cao Y, Qi X, et al. 2020. Mechanism of exogenous cytokinins inducing bulbil formation in Lilium lancifolium in vitro. |
| [11] |
Xin Y, Chen X, Liang J, Wang S, Pan W, et al. 2024. Auxin regulates bulbil initiation by mediating sucrose metabolism in Lilium lancifolium. Horticulture Research 11(4):uhae054 |
| [12] |
Li X, Wang C, Cheng J, Zhang J, da Silva JAT, et al. 2014. Transcriptome analysis of carbohydrate metabolism during bulblet formation and development in Lilium davidii var. unicolor. |
| [13] |
Zhang K, Lyu T, Lyu Y. 2024. Transcriptional insights into lily stem bulblet formation: hormonal regulation, sugar metabolism, and transcriptional networks in LA lily 'Aladdin'. |
| [14] |
Wu ZG, Jiang W, Tao ZM, Pan XJ, Yu WH, et al. 2020. Morphological and stage-specific transcriptome analyses reveal distinct regulatory programs underlying yam (Dioscorea alata L.) bulbil growth. |
| [15] |
Speicher TL, Li PZ, Wallace IS. 2018. Phosphoregulation of the plant cellulose synthase complex and cellulose synthase-like proteins. |
| [16] |
Zheng L, Li B, Chen Y, Ding L, Xue S, et al. 2025. Methylesterification of pectic homogalacturonan and the role of PME-PMEI families in poplar wood development. |
| [17] |
Qiu D, Xu S, Wang Y, Zhou M, Hong L. 2021. Primary cell wall modifying proteins regulate wall mechanics to steer plant morphogenesis. |
| [18] |
Moussu S, Lee HK, Haas KT, Broyart C, Rathgeb U, et al. 2023. Plant cell wall patterning and expansion mediated by protein-peptide-polysaccharide interaction. |
| [19] |
Anderson CT, Pelloux J. 2025. The dynamics, degradation, and afterlives of pectins: influences on cell wall assembly and structure, plant development and physiology, agronomy, and biotechnology. |
| [20] |
Yang S, Gao S, Lu H, Zhan YG, Zeng FS. 2023. Plant cell wall development and its function in abiotic stress. |
| [21] |
Pottier D, Roitsch T, Persson S. 2023. Cell wall regulation by carbon allocation and sugar signaling. |
| [22] |
Gómez LD, Baud S, Gilday A, Li Y, Graham IA. 2006. Delayed embryo development in the ARABIDOPSIS TREHALOSE-6-PHOSPHATE SYNTHASE 1 mutant is associated with altered cell wall structure, decreased cell division and starch accumulation. |
| [23] |
Calderan-Rodrigues MJ, Caldana C. 2024. Impact of the TOR pathway on plant growth via cell wall remodeling. |
| [24] |
Zhang S, Hu H, Cui S, Yan L, Wu B, et al. 2024. Genome-wide identification and functional analysis of the cellulose synthase-like gene superfamily in common oat (Avena sativa L.). |
| [25] |
Kaur S, Dhugga KS, Gill K, Singh J. 2016. Novel Structural and Functional Motifs in cellulose synthase (CesA) Genes of Bread Wheat (Triticum aestivum, L). |
| [26] |
Schwerdt JG, MacKenzie K, Wright F, Oehme D, Wagner JM, et al. 2015. Evolutionary dynamics of the cellulose synthase gene superfamily in grasses. |
| [27] |
Zhang G, Yang Z, Zhou S, Zhu J, Liu X, et al. 2024. Cellulose synthase-like OsCSLD4: a key regulator of agronomic traits, disease resistance, and metabolic indices in rice. |
| [28] |
Lou H, Tucker MR, Shirley NJ, Lahnstein J, Yang X, et al. 2022. The cellulose synthase-like F3 (CslF3) gene mediates cell wall polysaccharide synthesis and affects root growth and differentiation in barley. |
| [29] |
Nachamkin I, Panaro NJ, Li M, Ung H, Yuen PK, et al. 2001. Agilent 2100 bioanalyzer for restriction fragment length polymorphism analysis of the Campylobacter jejuni flagellin gene. |
| [30] |
Grabherr MG, Haas BJ, Yassour M, Levin JZ, Thompson DA, et al. 2011. Full-length transcriptome assembly from RNA-Seq data without a reference genome. |
| [31] |
Kanehisa M, Araki M, Goto S, Hattori M, Hirakawa M, et al. 2008. KEGG for linking genomes to life and the environment. |
| [32] |
Li X, Cheng J, Zhang J, Teixeira da Silva JA, Wang C, et al. 2015. Validation of reference genes for accurate normalization of gene expression in Lilium davidii var. unicolor for real time quantitative PCR. |
| [33] |
Wu Z, Liang J, Zhang S, Zhang B, Zhao Q, et al. 2018. A canonical DREB2-type transcription factor in lily is post-translationally regulated and mediates heat stress response. |
| [34] |
Wang M, Dai W, Du J, Ming R, Dahro B, et al. 2019. ERF109 of trifoliate orange (Poncirus trifoliata (L.) Raf.) contributes to cold tolerance by directly regulating expression of Prx1 involved in antioxidative process. |
| [35] |
De Coninck T, Gistelinck K, Janse van Rensburg HC, Van den Ende W, Van Damme EJM. 2021. Sweet modifications modulate plant development. |
| [36] |
Hao C, Yang P, Qu Y, Hao Z, Yin X, et al. 2024. Sucrose function on the bulbil formation of Lilium lancifolium. |
| [37] |
Stein O, Granot D. 2019. An overview of sucrose synthases in plants. |
| [38] |
Nishimura M, Beevers H. 1979. Subcellular distribution of gluconeogenetic enzymes in germinating Castor bean endosperm. |
| [39] |
Groover AT, Mansfield SD, DiFazio SP, Dupper G, Fontana JR, et al. 2006. The Populus homeobox gene ARBORKNOX1 reveals overlapping mechanisms regulating the shoot apical meristem and the vascular cambium. |
| [40] |
Yang M, Zhu L, Pan C, Xu L, Liu Y, et al. 2015. Transcriptomic analysis of the regulation of rhizome formation in temperate and tropical lotus (Nelumbo nucifera). |
| [41] |
Zierer W, Rüscher D, Sonnewald U, Sonnewald S. 2021. Tuber and tuberous root development. |
| [42] |
Susila H, Purwestri YA. 2023. PEBP signaling network in tubers and tuberous root crops. |
| [43] |
Landschütze V, Willmitzer L, Müller-Röber B. 1995. Inhibition of flower formation by antisense repression of mitochondrial citrate synthase in transgenic potato plants leads to a specific disintegration of the ovary tissues of flowers. |
| [44] |
Dumont S, Rivoal J. 2019. Consequences of oxidative stress on plant glycolytic and respiratory metabolism. |
| [45] |
Zhang Y, Jaime SM, Bulut M, Graf A, Fernie AR. 2023. The conditional mitochondrial protein complexome in the Arabidopsis thaliana root and shoot. |
| [46] |
Meents MJ, Watanabe Y, Samuels AL. 2018. The cell biology of secondary cell wall biosynthesis. |
| [47] |
Chen CT, Setter TL. 2021. Role of Tuber developmental processes in response of potato to high temperature and elevated CO2. |
| [48] |
Kafle K, Xi X, Lee CM, Tittmann BR, Cosgrove DJ, et al. 2014. Cellulose microfibril orientation in onion (Allium cepa L) epidermis studied by atomic force microscopy (AFM) and vibrational sum frequency generation (SFG) spectroscopy. |
| [49] |
Hu H, Zhang R, Dong S, Li Y, Fan C, et al. 2018. AtCSLD3 and GhCSLD3 mediate root growth and cell elongation downstream of the ethylene response pathway in Arabidopsis. |
| [50] |
Niu N, Zhang Y, Li S, Meng X, Liu M, et al. 2023. Genome-wide characterization of the cellulose synthase gene family in Ziziphus jujuba reveals its function in cellulose biosynthesis during fruit development. |
| [51] |
Vega-Sánchez ME, Verhertbruggen Y, Christensen U, Chen X, Sharma V, et al. 2012. Loss of Cellulose synthase-Like F6 function affects mixed-linkage glucan deposition, cell wall mechanical properties, and defense responses in vegetative tissues of rice. |