COG2 negatively regulates chilling tolerance through cell wall components altered in rice
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K. Chong | Yunyuan Xu | G. Liang | W. Luo | Jinglei Feng | Zhitao Li
[1] Jun Liu,et al. OsWRKY115 on qCT7 links to cold tolerance in rice , 2022, Theoretical and Applied Genetics.
[2] Yunyuan Xu,et al. Chilling tolerance in rice: Past and present. , 2021, Journal of plant physiology.
[3] Wenfeng Qian,et al. Integrated global analysis reveals a vitamin E-vitamin K1 sub-network, downstream of COLD1, underlying rice chilling tolerance divergence. , 2021, Cell reports.
[4] Yadi Zhou,et al. Extensins: Self-Assembly, Crosslinking, and the Role of Peroxidases , 2021, Frontiers in Plant Science.
[5] G. Shui,et al. Stepwise selection of natural variations at CTB2 and CTB4a improves cold adaptation during domestication of japonica rice. , 2021, The New phytologist.
[6] Y. Miao,et al. OsWRKY93 Dually Functions Between Leaf Senescence and in Response to Biotic Stress in Rice , 2021, Frontiers in Plant Science.
[7] A. Driouich,et al. Extensin, an underestimated key component of cell wall defence? , 2021, Annals of botany.
[8] K. Chong,et al. OsGRF6 interacts with SLR1 to regulate OsGA2ox1 expression for coordinating chilling tolerance and growth in rice. , 2021, Journal of plant physiology.
[9] Yihua Zhou,et al. The Plant Cell Wall: Biosynthesis, construction, and functions. , 2020, Journal of integrative plant biology.
[10] K. Chong,et al. Phosphatase OsPP2C27 directly dephosphorylates OsMAPK3 and OsbHLH002 to negatively regulate cold tolerance in rice. , 2020, Plant, cell & environment.
[11] K. Chong,et al. OsNSUN2-Mediated 5-Methylcytosine mRNA Modification Enhances Rice Adaptation to High Temperature. , 2020, Developmental cell.
[12] L. Xiong,et al. OsTMF attenuates cold tolerance by affecting cell wall properties in rice. , 2020, The New phytologist.
[13] R. Verma,et al. Overexpression of ABA Receptor PYL10 Gene Confers Drought and Cold Tolerance to Indica Rice , 2019, Front. Plant Sci..
[14] C. Ringli,et al. Leucine-Rich Repeat Extensin Proteins and Their Role in Cell Wall Sensing , 2019, Current Biology.
[15] R. Kyle Bocinsky,et al. Genomic history and ecology of the geographic spread of rice , 2019, Nature Plants.
[16] K. Chong,et al. OsCIPK7 point-mutation leads to conformation and kinase-activity change for sensing cold response. , 2019, Journal of integrative plant biology.
[17] L. Mur,et al. OsTSD2-mediated cell wall modification affects ion homeostasis and salt tolerance. , 2019, Plant, cell & environment.
[18] Z. Hong,et al. A missense mutation in Large Grain Size 1 increases grain size and enhances cold tolerance in rice , 2019, Journal of experimental botany.
[19] Chengcai Chu,et al. The bZIP73 transcription factor controls rice cold tolerance at the reproductive stage , 2019, Plant biotechnology journal.
[20] Xiang-Qian Zhang,et al. Rice OsPEX1, an extensin-like protein, affects lignin biosynthesis and plant growth , 2019, Plant Molecular Biology.
[21] Longping Yuan,et al. Natural variation in the HAN1 gene confers chilling tolerance in rice and allowed adaptation to a temperate climate , 2019, Proceedings of the National Academy of Sciences.
[22] W. Tao,et al. Leucine-rich repeat extensin proteins regulate plant salt tolerance in Arabidopsis , 2018, Proceedings of the National Academy of Sciences.
[23] K. Chong,et al. Cold signaling in plants: Insights into mechanisms and regulation. , 2018, Journal of integrative plant biology.
[24] Xiping Wang,et al. Early selection of bZIP73 facilitated adaptation of japonica rice to cold climates , 2018, Nature Communications.
[25] J. Estevez,et al. Filling the Gaps to Solve the Extensin Puzzle. , 2018, Molecular plant.
[26] Kenneth L. McNally,et al. Genomic variation in 3,010 diverse accessions of Asian cultivated rice , 2018, Nature.
[27] C. Chu,et al. Cold stress tolerance in rice: physiological changes, molecular mechanism, and future prospects. , 2018, Yi chuan = Hereditas.
[28] K. Chong,et al. OsMADS57 together with OsTB1 coordinates transcription of its target OsWRKY94 and D14 to switch its organogenesis to defense for cold adaptation in rice , 2018, The New phytologist.
[29] Y. Li,et al. Ectopic expression of a novel OsExtensin‐like gene consistently enhances plant lodging resistance by regulating cell elongation and cell wall thickening in rice , 2017, Plant biotechnology journal.
[30] K. Chong,et al. OsMAPK3 Phosphorylates OsbHLH002/OsICE1 and Inhibits Its Ubiquitination to Activate OsTPP1 and Enhances Rice Chilling Tolerance. , 2017, Developmental cell.
[31] Axel Poulet,et al. The cell wall of Arabidopsis thaliana influences actin network dynamics , 2017, Journal of experimental botany.
[32] Ping Li,et al. A Natural Allele of a Transcription Factor in Rice Confers Broad-Spectrum Blast Resistance , 2017, Cell.
[33] S. K. Pradhan,et al. Genome-Wide Association Mapping Reveals Multiple QTLs Governing Tolerance Response for Seedling Stage Chilling Stress in Indica Rice , 2017, Front. Plant Sci..
[34] Yiting Shi,et al. BZR1 Positively Regulates Freezing Tolerance via CBF-Dependent and CBF-Independent Pathways in Arabidopsis. , 2017, Molecular plant.
[35] B. Liu,et al. A novel functional gene associated with cold tolerance at the seedling stage in rice , 2017, Plant biotechnology journal.
[36] Zhanying Zhang,et al. Natural variation in CTB4a enhances rice adaptation to cold habitats , 2017, Nature Communications.
[37] G. Piro,et al. Three Pectin Methylesterase Inhibitors Protect Cell Wall Integrity for Arabidopsis Immunity to Botrytis1 , 2017, Plant Physiology.
[38] Jian‐Kang Zhu. Abiotic Stress Signaling and Responses in Plants , 2016, Cell.
[39] Shuhui Song,et al. Comparative metabolomic analysis reveals a reactive oxygen species-dominated dynamic model underlying chilling environment adaptation and tolerance in rice. , 2016, The New phytologist.
[40] J. Glazebrook,et al. Pectin Biosynthesis Is Critical for Cell Wall Integrity and Immunity in Arabidopsis thaliana , 2016, Plant Cell.
[41] Juan D Salgado Salter,et al. An update on cell surface proteins containing extensin-motifs. , 2016, Journal of experimental botany.
[42] S. Braybrook,et al. How to let go: pectin and plant cell adhesion , 2015, Frontiers in Plant Science.
[43] Jun Xiao,et al. COLD1 Confers Chilling Tolerance in Rice , 2015, Cell.
[44] Zhi-long Wang,et al. Rice and cold stress: methods for its evaluation and summary of cold tolerance-related quantitative trait loci , 2014, Rice.
[45] K. Chong,et al. Overexpression of stress-inducible OsBURP16, the β subunit of polygalacturonase 1, decreases pectin content and cell adhesion and increases abiotic stress sensitivity in rice , 2013, Plant, cell & environment.
[46] Kai Guo,et al. Biomass digestibility is predominantly affected by three factors of wall polymer features distinctive in wheat accessions and rice mutants , 2013, Biotechnology for Biofuels.
[47] Kazunori Okada,et al. WRKY76 is a rice transcriptional repressor playing opposite roles in blast disease resistance and cold stress tolerance , 2013, Journal of experimental botany.
[48] Yan Ma,et al. The interaction between OsMADS57 and OsTB1 modulates rice tillering via DWARF14 , 2013, Nature Communications.
[49] Ji Huang,et al. A TFIIIA-type zinc finger protein confers multiple abiotic stress tolerances in transgenic rice (Oryza sativa L.) , 2012, Plant Molecular Biology.
[50] Lei Wang,et al. Dynamics of Brassinosteroid Response Modulated by Negative Regulator LIC in Rice , 2012, PLoS genetics.
[51] Wen‐Hao Zhang,et al. A R2R3-type MYB gene, OsMYB2, is involved in salt, cold, and dehydration tolerance in rice , 2012, Journal of experimental botany.
[52] T. Tai,et al. Cold sensitivity in rice (Oryza sativa L.) is strongly correlated with a naturally occurring I99V mutation in the multifunctional glutathione transferase isoenzyme GSTZ2. , 2011, The Biochemical journal.
[53] M. Cannon,et al. Role of the Extensin Superfamily in Primary Cell Wall Architecture1 , 2011, Plant Physiology.
[54] Chenwu Xu,et al. Developing high throughput genotyped chromosome segment substitution lines based on population whole-genome re-sequencing in rice (Oryza sativa L.) , 2010, BMC Genomics.
[55] Yutaka Sato,et al. Map-based cloning of the rice cold tolerance gene Ctb1 , 2010 .
[56] S. Cutler,et al. Abscisic acid: emergence of a core signaling network. , 2010, Annual review of plant biology.
[57] Yi-Chieh Wang,et al. A Novel MYBS3-Dependent Pathway Confers Cold Tolerance in Rice1[W][OA] , 2010, Plant Physiology.
[58] Jun Xiao,et al. Enhanced Tolerance to Chilling Stress in OsMYB3R-2 Transgenic Rice Is Mediated by Alteration in Cell Cycle and Ectopic Expression of Stress Genes1[W][OA] , 2009, Plant Physiology.
[59] M. Cannon,et al. Self-assembly of the plant cell wall requires an extensin scaffold , 2008, Proceedings of the National Academy of Sciences.
[60] T. Sang,et al. Genetics and phylogenetics of rice domestication. , 2007, Current opinion in genetics & development.
[61] S. Mccouch,et al. New insights into the history of rice domestication. , 2007, Trends in genetics : TIG.
[62] N. Blumenkrantz,et al. New method for quantitative determination of uronic acids. , 1973, Analytical biochemistry.
[63] D. Updegraff. Semimicro determination of cellulose in biological materials. , 1969, Analytical biochemistry.