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Xiangbing Meng

Showing results (81-90 of 95) with videos related to

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Molecular Plant|October 10, 2020
ζ-Carotene Isomerase Suppresses Tillering in Rice through the Coordinated Biosynthesis of Strigolactone and Abscisic AcidXue Liu, Qingliang Hu, Jijun Yan, et al.
Oncotarget|September 18, 2014
Systematic dissection of the mechanisms underlying progesterone receptor downregulation in endometrial cancerShujie Yang, Yichen Jia, Xiaoyue Liu, et al.
Nature Genetics|July 7, 2015
Copy number variation at the GL7 locus contributes to grain size diversity in riceYuexing Wang, Guosheng Xiong, Jiang Hu, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 28, 2014
Natural variation of rice strigolactone biosynthesis is associated with the deletion of two MAX1 orthologsCatarina Cardoso, Yanxia Zhang, Muhammad Jamil, et al.
Nature|December 17, 2013
DWARF 53 acts as a repressor of strigolactone signalling in riceLiang Jiang, Xue Liu, Guosheng Xiong, et al.
The Plant Cell|July 16, 2020
Karrikin Signaling Acts Parallel to and Additively with Strigolactone Signaling to Regulate Rice Mesocotyl Elongation in DarknessJianshu Zheng, Kai Hong, Longjun Zeng, et al.
Cell|May 23, 2024
Peptide REF1 is a local wound signal promoting plant regenerationWentao Yang, Huawei Zhai, Fangming Wu, et al.
Molecular Plant|October 5, 2023
Low phosphorus promotes NSP1-NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in riceKun Yuan, Hao Zhang, Chaoji Yu, et al.
Cell|November 5, 2024
Regulatory mechanisms of strigolactone perception in riceQingliang Hu, Huihui Liu, Yajun He, et al.
The Plant Cell|February 25, 2018
Expression of the Nitrate Transporter Gene <i>OsNRT1.1A/OsNPF6.3</i> Confers High Yield and Early Maturation in RiceWei Wang, Bin Hu, Dingyang Yuan, et al.
Pageof 10

Showing results (81-90 of 95) with videos related to

Sort By:
Pageof 10
Molecular Plant|October 10, 2020
ζ-Carotene Isomerase Suppresses Tillering in Rice through the Coordinated Biosynthesis of Strigolactone and Abscisic AcidXue Liu, Qingliang Hu, Jijun Yan, et al.
Oncotarget|September 18, 2014
Systematic dissection of the mechanisms underlying progesterone receptor downregulation in endometrial cancerShujie Yang, Yichen Jia, Xiaoyue Liu, et al.
Nature Genetics|July 7, 2015
Copy number variation at the GL7 locus contributes to grain size diversity in riceYuexing Wang, Guosheng Xiong, Jiang Hu, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 28, 2014
Natural variation of rice strigolactone biosynthesis is associated with the deletion of two MAX1 orthologsCatarina Cardoso, Yanxia Zhang, Muhammad Jamil, et al.
Nature|December 17, 2013
DWARF 53 acts as a repressor of strigolactone signalling in riceLiang Jiang, Xue Liu, Guosheng Xiong, et al.
The Plant Cell|July 16, 2020
Karrikin Signaling Acts Parallel to and Additively with Strigolactone Signaling to Regulate Rice Mesocotyl Elongation in DarknessJianshu Zheng, Kai Hong, Longjun Zeng, et al.
Cell|May 23, 2024
Peptide REF1 is a local wound signal promoting plant regenerationWentao Yang, Huawei Zhai, Fangming Wu, et al.
Molecular Plant|October 5, 2023
Low phosphorus promotes NSP1-NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in riceKun Yuan, Hao Zhang, Chaoji Yu, et al.
Cell|November 5, 2024
Regulatory mechanisms of strigolactone perception in riceQingliang Hu, Huihui Liu, Yajun He, et al.
The Plant Cell|February 25, 2018
Expression of the Nitrate Transporter Gene <i>OsNRT1.1A/OsNPF6.3</i> Confers High Yield and Early Maturation in RiceWei Wang, Bin Hu, Dingyang Yuan, et al.
Pageof 10