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Lingzhen Ye

Showing results (21-30 of 34) with videos related to

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Plos One|February 6, 2013
Tissue metabolic responses to salt stress in wild and cultivated barleyDezhi Wu, Shengguan Cai, Mingxian Chen, et al.
Natural Product Research|December 2, 2025
Structure and biological activity of a novel polysaccharide from marine <i>Cladosporium velox</i> SCAU272Lingzhen Ye, Ke Xu, Youhong Li, et al.
Nature Communications|January 5, 2024
MADS1-regulated lemma and awn development benefits barley yieldYueya Zhang, Chaoqun Shen, Gang Li, et al.
Plant Cell Reports|October 9, 2022
Discovery of DNA polymorphisms via genome-resequencing and development of molecular markers between two barley cultivarsYueya Zhang, Jin Shi, Chaoqun Shen, et al.
The Plant Journal : for Cell and Molecular Biology|May 13, 2024
Enhancing barley yield potential and germination rate: gene editing of HvGA20ox2 and discovery of novel allele sdw1.ZU9Shanggeng Xie, Fengyue Wang, Mengdi Li, et al.
Plant Physiology|June 20, 2020
Calmodulin HvCaM1 Negatively Regulates Salt Tolerance via Modulation of HvHKT1s and HvCAMTA4Qiufang Shen, Liangbo Fu, Tingting Su, et al.
BMC Plant Biology|December 28, 2025
Genetic basis of flag leaf thickness and its contribution to yield in wheat (Triticum aestivum L.)Yanan Niu, Qixiang Huang, Huankun Yang, et al.
Plant Physiology|August 21, 2019
A Trypsin Family Protein Gene Controls Tillering and Leaf Shape in BarleyLingzhen Ye, Yin Wang, Lizhi Long, et al.
Plos One|August 11, 2011
Genetic variation of HvCBF genes and their association with salinity tolerance in Tibetan annual wild barleyDezhi Wu, Long Qiu, Lulu Xu, et al.
Gigascience|October 16, 2025
SeedGerm-VIG: an open and comprehensive pipeline to quantify seed vigor in wheat and other cereal crops using deep learning-powered dynamic phenotypic analysisJie Dai, Zhenjie Wen, Mujahid Ali, et al.
Pageof 4

Showing results (21-30 of 34) with videos related to

Sort By:
Pageof 4
Plos One|February 6, 2013
Tissue metabolic responses to salt stress in wild and cultivated barleyDezhi Wu, Shengguan Cai, Mingxian Chen, et al.
Natural Product Research|December 2, 2025
Structure and biological activity of a novel polysaccharide from marine <i>Cladosporium velox</i> SCAU272Lingzhen Ye, Ke Xu, Youhong Li, et al.
Nature Communications|January 5, 2024
MADS1-regulated lemma and awn development benefits barley yieldYueya Zhang, Chaoqun Shen, Gang Li, et al.
Plant Cell Reports|October 9, 2022
Discovery of DNA polymorphisms via genome-resequencing and development of molecular markers between two barley cultivarsYueya Zhang, Jin Shi, Chaoqun Shen, et al.
The Plant Journal : for Cell and Molecular Biology|May 13, 2024
Enhancing barley yield potential and germination rate: gene editing of HvGA20ox2 and discovery of novel allele sdw1.ZU9Shanggeng Xie, Fengyue Wang, Mengdi Li, et al.
Plant Physiology|June 20, 2020
Calmodulin HvCaM1 Negatively Regulates Salt Tolerance via Modulation of HvHKT1s and HvCAMTA4Qiufang Shen, Liangbo Fu, Tingting Su, et al.
BMC Plant Biology|December 28, 2025
Genetic basis of flag leaf thickness and its contribution to yield in wheat (Triticum aestivum L.)Yanan Niu, Qixiang Huang, Huankun Yang, et al.
Plant Physiology|August 21, 2019
A Trypsin Family Protein Gene Controls Tillering and Leaf Shape in BarleyLingzhen Ye, Yin Wang, Lizhi Long, et al.
Plos One|August 11, 2011
Genetic variation of HvCBF genes and their association with salinity tolerance in Tibetan annual wild barleyDezhi Wu, Long Qiu, Lulu Xu, et al.
Gigascience|October 16, 2025
SeedGerm-VIG: an open and comprehensive pipeline to quantify seed vigor in wheat and other cereal crops using deep learning-powered dynamic phenotypic analysisJie Dai, Zhenjie Wen, Mujahid Ali, et al.
Pageof 4