[1] Wu Z Y, Raven P H, Hong D Y. Flora of China [M]. Beijing: Science Press &St. Louis: Missouri Botanical Garden Press, 2007: 239.
[2] China Pharmacopeia Commission. Pharmacopoeia of the People’s Republic of China [M]. Beijing: The Medicine Science and Technology Press of China, 2020: 32.
[3] Xiong L W, Jin Y, Wang Y Y, Zhao H W, Li J, Pu G B, Zhang L, Yang H B, Zhang Y Q, Zhang L F. Progress on chemical composition, pharmacological activity and in vivo metabolism of Lonicera japonica [J]. Chinese Traditional Patent Medicine, 2022, 44: 864–871.
[4] Wu Q, Huang B. Report on the germplasm resources of Flos Lonicerae in Guangxi [J]. Lishizhen Medicine and Materia Medica Research, 2008, 19: 394–395.
[5] Wu Q, Chen L, Fu J, Wan L, Pan L, Wei S. Cultivation techniques of Lonicera hypoglauca Miq. [J]. Chinese Journal of Tropical Agriculture, 2019, 39: 35–39.
[6] Sun X, Chen S, Cheng R, Li Y, Xin N. Drought stress’s impact on physiological and biochemical indexes of seedlings of Lonicera hypoglauca Miq [J]. Journal of Guangxi Agriculture, 2013, 28: 9–13.
[7] Nong Y, Yang M, Su X, Cen X. Tissue culture and rapid propagation of Lonicera hypoglauca [J]. Journal of Southern Agriculture, 2013, 44: 717–721.
[8] Shi F, Tan M, Mo Q, Pu Z. Induction of adventitious buds from petiole of sterile tissue culture seedlings of Lonicera hypoglauca Miq. [P], CN: 105409778A. 2016.
[9] Zhou J, Yang M, Cen X, Wei P. Influence of explants and its sterilization time on induction of Lonicera hypoglauca buds [J]. Journal of Southern Agriculture, 2011, 42: 124–127.
[10] Li K, Huang C, Zhou S, Yang M. Germination and induction of axillary buds in micropropagated Lonicerae hypoglauca, Guangxi [J]. Agriculture Science, 2010, 41: 1029–1032.
[11] Liao J, Tan M, Mo Q, Pu Z, Shi F. Adventitious root induction of petiole callus from sterile tissue culture seedlings of Lonicera hypoglauca Miq. [P]. CN: 104170733A. 2014.
[12] Wang L, Xin N, Qiu Y, Yang B. Antioxidative effects of total flavonoids from Guangxi Lonicera hypoglauca Miq. and Shandong Lonicera japonica in vivo [J]. Journal of Guangxi Medical University, 2010, 27: 681–683.
[13] Ge S, Zhu Y, Guo X, Shi S. Content determination of total polyphenol in antioxidant effective fraction of leaves of Lonicera hypoglauca Miq [J]. Journal of Zhejiang TCM University, 2014, 38: 316–320,326.
[14] Zhu Y, Li J, Ren J. The study of total flavonoids in leaves of Lonicera hypoglauca Miq [J]. Journal of Medical Research, 2009, 38: 43–45.
[15] Zhu Y, Xu Z. Studies on correlation between bacteriostasis and total flavonoids, chlorogenic acid content in leaves of Lonicera hypoglauca Miq [J]. Chinese Journal of Traditional Medicine Science Technology, 2014, 21: 39–41.
[16] Zhu Y, Li S. Experimental study of anti-inflammatory and antipyretic effect on leaves of Lonicera hypoglauca Miq. [J]. Journal of Gansu College of Traditional Chinese Medicine, 2014, 31: 12–17.
[17] Shi S. Screening anti-tumor effective fraction from the leaf of Lonicera hypoglauca Miq. and its mechanism [D]. Hangzhou, China: Master dissertation of Zhejiang Chinese Medical University, 2015.
[18] Komatsu T, Kondo N. Winter habitat of Xylophilus ampelinus, the cause of bacterial blight of grapevine, in Japan [J]. Journal of General Plant Pathology, 2015, 81: 237–242.
[19] Lei T G, He Y R, Zou X P, Wang X F, Fu S M, Peng A H, Xu L Z, Yao L X, Chen S C, Zhou C Y. A rapid multiplication system for ‘Candidatus Liberibacter asiaticus’ through regeneration of axillary buds in vitro [J]. Journal of Integrative Agriculture, 2022, 21: 1683–1693.
[20] Ahmed E U, Hayashi T, Zhu Y, Hosokawa M, Yazawa S. Lower incidence of variants in Caladium bicolor Ait. plants propagated by culture of explants from younger tissue [J]. Scientia Horticulturae, 2002, 96: 187–194.
[21] Mazumdar P, Basu A, Paul A, Mahanta C, Sahoo L. Age and orientation of the cotyledonary leaf explants determine the efficiency of de novo plant regeneration and agrobacterium tumefaciens-mediated transformation in Jatropha curcas L. [J]. South African Journal of Botany, 2010, 76: 337–344.
[22] Lv B, Yan Z, Tian H, Zhang X, Ding Z. Local auxin biosynthesis mediates plant growth and development [J]. Trends in Plant Science, 2019, 24: 6–9.
[23] Sarabi V, Arjmand-Ghajur E. Exogenous plant growth regulators/plant growth promoting bacteria roles in mitigating water-deficit stress on chicory (Cichorium pumilum Jacq.) at a physiological level [J]. Agricultural Water Manage, 2021, https://doi.org/10.1016/j.agwat.2020.106439.
[24] Li X, Yang M C, Quan Q, Wu Q H. Tissue culture and rapid propagation of Lonicera confuse [J]. Guihaia, 2008, 28: 823–826.
[25] Wang H, Jiang X. Tissue culture of Lonicera macranthoides Hand. Mazz [J]. Journal of Anhui Agricultural Sciences, 2013, 41: 11952–11953,11964.
[26] Ye L T, Peng S X, Xiang H T, Chen F, Shi S C, Xiang Y, Fu W J, Ning W J. Tissue culture and rapid propagation technologies of Lonicera macranthoides Hand. Mazz. [J]. Hunan Agricultural Sciences, 2013(5): 27–29.
[27] Sugimoto K. Plant cell reprogramming as an adaptive strategy [J]. Journal of Plant Research, 2015, 128: 345–347.
[28] Pasternak T, Dudits D. Epigenetic clues to better understanding of the asexual embryogenesis in planta and in vitro [J]. Front Plant Science, 2019, https://doi.org/10.3389/fpls.2019.00778.
[29] Chen L. Studies on the establishment of rapid propagation system in vitro of Lonicera confuse [D]. Guangzhou, China: Master dissertation of Guangzhou University of Chinese Medicine, 2009.
[30] Yu K W, Murhty H N, Hahn E J, Paek K Y. Ginsenoside production by hairy root cultures of Panax ginseng: influence of temperature and light quality [J]. Biochemical Engineering Journal, 2005, 23: 53–56.
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