Heterotrimeric G proteins regulate nitrogen-use efficiency in rice
暂无分享,去创建一个
Qian Liu | Meng Zhao | Qian Qian | Kun Wu | Chengwei Zhang | Xiangdong Fu | Guojun Dong | Yuejin Wu | Yuejin Wu | Q. Qian | Guojun Dong | Xu-dong Zhu | Xiangdong Fu | Jijing Luo | Zhiheng Gou | Longbiao Guo | Wen Wang | Kun Wu | Qian Liu | Wen Wang | Q. Yuan | Meng Zhao | Chengwei Zhang | Ruixi Han | Shuansuo Wang | Xudong Zhu | Xianzhong Huang | Hongying Sun | Longbiao Guo | Qingbo Yuan | Yanfei Ma | Shuansuo Wang | Ruixi Han | Hongying Sun | Jijing Luo | Zhiheng Gou | Hongxuan Lin | Yanfei Ma | Xianzhong Huang | Hongxuan Lin
[1] S. Assmann,et al. An atypical heterotrimeric G-protein γ-subunit is involved in guard cell K⁺-channel regulation and morphological development in Arabidopsis thaliana. , 2011, The Plant journal : for cell and molecular biology.
[2] Hua Yan,et al. QTLs for low nitrogen tolerance at seedling stage identified using a recombinant inbred line population derived from an elite rice hybrid , 2005, Theoretical and Applied Genetics.
[3] F. Daniel-Vedele,et al. REVIEW: PART OF A SPECIAL ISSUE ON PLANT NUTRITION Nitrogen uptake, assimilation and remobilization in plants: challenges for sustainable and productive agriculture , 2010 .
[4] L. Jan,et al. Molecular Basis for Interactions of G Protein βγ Subunits with Effectors , 1998 .
[5] S. Polasky,et al. Agricultural sustainability and intensive production practices , 2002, Nature.
[6] Jialing Yao,et al. Linking differential domain functions of the GS3 protein to natural variation of grain size in rice , 2010, Proceedings of the National Academy of Sciences.
[7] Xiangdong Fu,et al. Auxin promotes Arabidopsis root growth by modulating gibberellin response , 2003, Nature.
[8] F. Corke,et al. The plant-specific G protein γ subunit AGG3 influences organ size and shape in Arabidopsis thaliana. , 2012, The New phytologist.
[9] Alan M. Jones,et al. Heterotrimeric G Protein γ Subunits Provide Functional Selectivity in Gβγ Dimer Signaling in Arabidopsis[OA] , 2007, The Plant Cell Online.
[10] S. Carpenter,et al. NONPOINT POLLUTION OF SURFACE WATERS WITH PHOSPHORUS AND NITROGEN , 1998 .
[11] Y. Iwasaki,et al. Suppression of the rice heterotrimeric G protein β-subunit gene, RGB1, causes dwarfism and browning of internodes and lamina joint regions. , 2011, The Plant journal : for cell and molecular biology.
[12] T. Yamaya,et al. Genetic manipulation and quantitative-trait loci mapping for nitrogen recycling in rice. , 2002, Journal of experimental botany.
[13] M. Yano,et al. Rice gibberellin-insensitive dwarf mutant gene Dwarf 1 encodes the alpha-subunit of GTP-binding protein. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[14] M. Yano,et al. Identification and characterization of a QTL on chromosome 2 for cytosolic glutamine synthetase content and panicle number in rice , 2004, Theoretical and Applied Genetics.
[15] Guohua Liang,et al. Deletion in a Quantitative Trait Gene qPE9-1 Associated With Panicle Erectness Improves Plant Architecture During Rice Domestication , 2009, Genetics.
[16] H. Kitano,et al. Suppression of the heterotrimeric G protein causes abnormal morphology, including dwarfism, in rice. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[17] Alan M. Jones,et al. Modulation of Cell Proliferation by Heterotrimeric G Protein in Arabidopsis , 2001, Science.
[18] J. Wong,et al. The Evidence for G-Protein-Coupled Receptors and Heterotrimeric G Proteins in Protozoa and Ancestral Metazoa , 1998, Neurosignals.
[19] T. Komari,et al. Efficient transformation of rice (Oryza sativa L.) mediated by Agrobacterium and sequence analysis of the boundaries of the T-DNA. , 1994, The Plant journal : for cell and molecular biology.
[20] F. Taguchi-Shiobara,et al. A loss-of-function mutation of rice DENSE PANICLE 1 causes semi-dwarfness and slightly increased number of spikelets , 2011 .
[21] Xiangdong Fu,et al. Phosphate Starvation Root Architecture and Anthocyanin Accumulation Responses Are Modulated by the Gibberellin-DELLA Signaling Pathway in Arabidopsis1[OA] , 2007, Plant Physiology.
[22] M. Yano,et al. Fine-mapping of qRL6.1, a major QTL for root length of rice seedlings grown under a wide range of NH4+ concentrations in hydroponic conditions , 2010, Theoretical and Applied Genetics.
[23] M. Ellis,et al. Semidwarf (sd-1), “green revolution” rice, contains a defective gibberellin 20-oxidase gene , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[24] Qian Qian,et al. Natural variation at the DEP1 locus enhances grain yield in rice , 2009, Nature Genetics.
[25] Alan M. Jones,et al. The Crystal Structure of a Self-Activating G Protein α Subunit Reveals Its Distinct Mechanism of Signal Initiation , 2011, Science Signaling.
[26] Alan M. Jones,et al. Plant heterotrimeric G protein function: insights from Arabidopsis and rice mutants. , 2004, Current opinion in plant biology.
[27] D. Schachtman,et al. Hydrogen peroxide mediates plant root cell response to nutrient deprivation. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[28] Lin Fang,et al. Resequencing 50 accessions of cultivated and wild rice yields markers for identifying agronomically important genes , 2011, Nature Biotechnology.
[29] Klaus Harter,et al. Visualization of protein interactions in living plant cells using bimolecular fluorescence complementation. , 2004, The Plant journal : for cell and molecular biology.
[30] Brian G. Wolff,et al. Forecasting Agriculturally Driven Global Environmental Change , 2001, Science.
[31] G. S. Khush,et al. Green revolution: A mutant gibberellin-synthesis gene in rice , 2002, Nature.
[32] Qian Qian,et al. Control of grain size, shape and quality by OsSPL16 in rice , 2012, Nature Genetics.
[33] T. Yamaya,et al. Assimilation of ammonium ions and reutilization of nitrogen in rice (Oryza sativa L.). , 2007, Journal of experimental botany.
[34] G. Khush. What it will take to Feed 5.0 Billion Rice consumers in 2030 , 2005, Plant Molecular Biology.