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Molecular Biology Reports|January 17, 2021
Identification of 5S and 45S rDNA sites in Chrysanthemum species by using oligonucleotide fluorescence in situ hybridization (Oligo-FISH)Jun He, Sisi Lin, Zhongyu Yu, et al.Molecular Biotechnology|November 19, 2018
The Constitutive Expression of a Chrysanthemum ERF Transcription Factor Influences Flowering Time in Arabidopsis thalianaXiaojuan Xing, Jiafu Jiang, Yaoyao Huang, et al.Horticulture Research|October 25, 2019
Overexpression of CmMYB15 provides chrysanthemum resistance to aphids by regulating the biosynthesis of ligninCong An, Liping Sheng, Xinping Du, et al.Scientific Reports|January 29, 2016
Chrysanthemum transcription factor CmLBD1 direct lateral root formation in Arabidopsis thalianaLu Zhu, Chen Zheng, Ruixia Liu, et al.Horticulture Research|November 7, 2022
The BBX gene CmBBX22 negatively regulates drought stress tolerance in chrysanthemumYanan Liu, Hua Cheng, Peilei Cheng, et al.BMC Surgery|February 9, 2023
Primary and secondary hyperparathyroidism present different expressions of calcium-sensing receptorXin Li, Yao Lu, Ling Zhang, et al.BMC Plant Biology|January 28, 2024
Chrysanthemum (Chrysanthemum morifolium) CmHRE2-like negatively regulates the resistance of chrysanthemum to the aphid (Macrosiphoniella sanborni)You Wang, Wanwan Zhang, Chaojun Hong, et al.Planta|December 1, 2011
The heterologous expression in Arabidopsis of a chrysanthemum Cys2/His2 zinc finger protein gene confers salinity and drought toleranceHaishun Gao, Aiping Song, Xirong Zhu, et al.BMC Endocrine Disorders|June 10, 2022
Implications of regulator of G-protein signaling 5 expression in the pathogenesis of primary and secondary hyperparathyroidismXin Li, Yao Lu, Ling Zhang, et al.BMC Biology|December 20, 2013
Ambient temperature enhanced freezing tolerance of Chrysanthemum dichrum CdICE1 Arabidopsis via miR398Yu Chen, Jiafu Jiang, Aiping Song, et al.Pageof 13