Nystose regulates the response of rice roots to cold stress via multiple signaling pathways: A comparative proteomics analysis
暂无分享,去创建一个
Ya-ping Fu | Wenyue Chen | Ya Xin | Wenfei Xiao | Huasheng Ma | Songlin Ruan | Huizhe Chen | Jianli Yan | Jieren Qiu | Yuqin Huang | Zijie Zhang | Q. Liu
[1] Yiting Shi,et al. Advances and challenges in uncovering cold tolerance regulatory mechanisms in plants. , 2019, The New phytologist.
[2] Yongjun Zeng,et al. Research Progress on Heat Stress of Rice at Flowering Stage , 2019, Rice Science.
[3] K. Chong,et al. Cold signaling in plants: Insights into mechanisms and regulation. , 2018, Journal of integrative plant biology.
[4] Yiting Shi,et al. Insights into the regulation of C-repeat binding factors in plant cold signaling. , 2018, Journal of integrative plant biology.
[5] A. Vanavichit,et al. Effects of Heat Stress at Vegetative and Reproductive Stages on Spikelet Fertility , 2018, Rice Science.
[6] H. Ikehashi. Testing of Rice Stocks for Their Survival of Winter Cold , 2018 .
[7] T. Koshiba,et al. Overexpression of RSOsPR10, a root-specific rice PR10 gene, confers tolerance against drought stress in rice and drought and salt stresses in bentgrass , 2016, Plant Cell, Tissue and Organ Culture (PCTOC).
[8] H. Leung,et al. Global transcriptional profiling of a cold-tolerant rice variety under moderate cold stress reveals different cold stress response mechanisms. , 2015, Physiologia plantarum.
[9] D. Takahashi,et al. Plant plasma membrane proteomics for improving cold tolerance , 2013, Front. Plant Sci..
[10] Mohammad R. Bolouri Moghaddam,et al. Sugars, the clock and transition to flowering , 2013, Front. Plant Sci..
[11] Liyu Huang,et al. Comparative Transcriptome Profiling of Chilling Stress Responsiveness in Two Contrasting Rice Genotypes , 2012, PloS one.
[12] Thomas L. Slewinski,et al. Non-structural carbohydrate partitioning in grass stems: a target to increase yield stability, stress tolerance, and biofuel production. , 2012, Journal of experimental botany.
[13] W. Ende,et al. Sugars and plant innate immunity , 2012 .
[14] Y. Kamiya,et al. RSOsPR10 expression in response to environmental stresses is regulated antagonistically by jasmonate/ethylene and salicylic acid signaling pathways in rice roots. , 2011, Plant & cell physiology.
[15] Paul A Haynes,et al. Quantitative proteomic analysis of cold‐responsive proteins in rice , 2011, Proteomics.
[16] S. Smeekens,et al. Fructose sensitivity is suppressed in Arabidopsis by the transcription factor ANAC089 lacking the membrane-bound domain , 2011, Proceedings of the National Academy of Sciences.
[17] Young-Hee Cho,et al. Signaling Role of Fructose Mediated by FINS1/FBP in Arabidopsis thaliana , 2011, PLoS genetics.
[18] J. Koziol,et al. Label-free, normalized quantification of complex mass spectrometry data for proteomics analysis , 2009, Nature Biotechnology.
[19] R. Valluru,et al. Sucrose, sucrosyl oligosaccharides, and oxidative stress: scavenging and salvaging? , 2008, Journal of experimental botany.
[20] Kundan Kumar,et al. Differential regulation of rice mitogen activated protein kinase kinase (MKK) by abiotic stress. , 2008, Plant physiology and biochemistry : PPB.
[21] R. Valluru,et al. Plant fructans in stress environments: emerging concepts and future prospects. , 2008, Journal of experimental botany.
[22] W. Claupein,et al. Freezing tolerance by vesicle-mediated fructan transport. , 2008, Trends in plant science.
[23] K. Kosová,et al. The role of dehydrins in plant response to cold , 2007, Biologia Plantarum.
[24] S. Clerens,et al. The rice genome encodes two vacuolar invertases with fructan exohydrolase activity but lacks the related fructan biosynthesis genes of the Pooideae. , 2007, The New phytologist.
[25] E. Baena-González,et al. Sugar sensing and signaling in plants: conserved and novel mechanisms. , 2006, Annual review of plant biology.
[26] G. Hendrỳ. Evolutionary origins and natural functions of fructans – a climatological, biogeographic and mechanistic appraisal , 2006 .
[27] M. Uemura,et al. Responses of the plasma membrane to low temperatures , 2006 .
[28] R. Bell,et al. Boron nutrition and chilling tolerance of warm climate crop species. , 2005, Annals of botany.
[29] Jinyuan Liu,et al. A proteomic analysis of cold stress responses in rice seedlings , 2005, Proteomics.
[30] C. Stushnoff,et al. Relationship of cold acclimation, total phenolic content and antioxidant capacity with chilling tolerance in petunia (Petunia × hybrida) , 2005 .
[31] S. Kishitani,et al. The accumulation of glycinebetaine during cold acclimation in early and late cultivars of barley , 1995, Euphytica.
[32] C. Dunand,et al. Performing the paradoxical: how plant peroxidases modify the cell wall. , 2004, Trends in plant science.
[33] T. Koshiba,et al. A novel rice PR10 protein, RSOsPR10, specifically induced in roots by biotic and abiotic stresses, possibly via the jasmonic acid signaling pathway. , 2004, Plant & cell physiology.
[34] H. Jürgens,et al. Heritable improvement of frost tolerance in winter wheat by in vitro-selection of hydroxyproline-resistant proline overproducing mutants , 2004, Euphytica.
[35] M. Uemura,et al. Mass spectrometric approach for identifying putative plasma membrane proteins of Arabidopsis leaves associated with cold acclimation. , 2003, The Plant journal : for cell and molecular biology.
[36] D. Hincha,et al. The preservation of liposomes by raffinose family oligosaccharides during drying is mediated by effects on fusion and lipid phase transitions. , 2003, Biochimica et biophysica acta.
[37] Chungui Lu,et al. Balancing supply and demand: the spatial regulation of carbon metabolism in grass and cereal leaves. , 2003, Journal of experimental botany.
[38] D. Djilianov,et al. Freezing tolerant tobacco, transformed to accumulate osmoprotectants , 2002 .
[39] W. Van den Ende,et al. Fructan Biosynthetic and Breakdown Enzymes in Dicots Evolved From Different Invertases. Expression of Fructan Genes Throughout Chicory Development , 2002, TheScientificWorldJournal.
[40] D. Hincha,et al. Specific effects of fructo- and gluco-oligosaccharides in the preservation of liposomes during drying. , 2002, Glycobiology.
[41] S. Smeekens,et al. Fructans insert between the headgroups of phospholipids. , 2001, Biochimica et biophysica acta.
[42] W. Van den Ende,et al. The role of fructan in flowering of Campanula rapunculoides. , 2000, Journal of experimental botany.
[43] B. de Kruijff,et al. Fructans interact strongly with model membranes. , 1998, Biochimica et biophysica acta.
[44] G. Salerno,et al. Fructan metabolism in two species of Bromus subjected to chilling and water stress , 1997 .
[45] P. Weisbeek,et al. Improved Performance of Transgenic Fructan-Accumulating Tobacco under Drought Stress , 1995, Plant physiology.
[46] D. Dunigan,et al. Aqueous soluble tetrazolium/formazan MTS as an indicator of NADH- and NADPH-dependent dehydrogenase activity. , 1995, BioTechniques.
[47] M. Robertson,et al. Gene Expression Regulated by Abscisic Acid and its Relation to Stress Tolerance , 1994 .
[48] R. L. Bieleski,et al. Fructan Hydrolysis Drives Petal Expansion in the Ephemeral Daylily Flower , 1993, Plant physiology.
[49] D. V. Lynch,et al. Solute Accumulation and Compartmentation during the Cold Acclimation of Puma Rye. , 1992, Plant physiology.
[50] A. J. Cairns,et al. Fructan metabolism in grasses and cereals , 1991 .
[51] D. V. Lynch,et al. Plasma Membrane Lipid Alterations Associated with Cold Acclimation of Winter Rye Seedlings (Secale cereale L. cv Puma). , 1987, Plant physiology.