Overexpression of the ginseng GH18 gene confers salinity tolerance in Arabidopsis
暂无分享,去创建一个
Young Hun Song | K. Jung | Gyulim Park | S. Kim | H. Son | Ick-Hyun Jo | Woo-Jong Hong | Sung-Won Cho | Young-Hun Kim | Yu-Jin Kim | J. Jung | Gayoung Noh | Jihye Kim | Sung-Won Cho
[1] S. Kim,et al. Proteomic Analysis of Ginseng (Panax ginseng C. A. Meyer) Fluid Proteins under Salt Stress , 2022, Agronomy.
[2] A. Ben-Amar,et al. Up-regulation of a stress-responsive endochitinase VvChit-IV in grapevine cell cultures improves in vitro stress tolerance , 2022, Protoplasma.
[3] Lun Zhao,et al. SWO1 modulates cell wall integrity under salt stress by interacting with importin ɑ in Arabidopsis , 2021, Stress Biology.
[4] Li Li,et al. Identification, characterization and functional differentiation of the NAC gene family and its roles in response to cold stress in ginseng, Panax ginseng C.A. Meyer , 2020, PloS one.
[5] A. Sha,et al. Transcriptome profile analysis of two Vicia faba cultivars with contrasting salinity tolerance during seed germination , 2020, Scientific Reports.
[6] E. Bartholomew,et al. Comprehensive Analysis of the Chitinase Gene Family in Cucumber (Cucumis sativus L.): From Gene Identification and Evolution to Expression in Response to Fusarium oxysporum , 2019, International journal of molecular sciences.
[7] Jun Cao,et al. Comprehensive Analysis of the Chitinase Family Genes in Tomato (Solanum lycopersicum) , 2019, Plants.
[8] Christopher Kesten,et al. Regulation of cellulose synthesis in response to stress. , 2017, Current opinion in plant biology.
[9] K. Siddique,et al. Effects, tolerance mechanisms and management of salt stress in grain legumes. , 2017, Plant physiology and biochemistry : PPB.
[10] C. Külheim,et al. Identification of the Eucalyptus grandis chitinase gene family and expression characterization under different biotic stress challenges , 2017, Tree physiology.
[11] Deok-Chun Yang,et al. Molecular characterization of lipoxygenase genes and their expression analysis against biotic and abiotic stresses in Panax ginseng , 2016, European Journal of Plant Pathology.
[12] René Schneider,et al. A Mechanism for Sustained Cellulose Synthesis during Salt Stress , 2015, Cell.
[13] Zhaojun Ding,et al. Potassium Retention under Salt Stress Is Associated with Natural Variation in Salinity Tolerance among Arabidopsis Accessions , 2015, PloS one.
[14] Pramod Kumar,et al. Structural and functional evolution of chitinase‐like proteins from plants , 2015, Proteomics.
[15] F. Gillet,et al. Cell Wall Metabolism in Response to Abiotic Stress , 2015, Plants.
[16] Thorsten Hamann,et al. The plant cell wall integrity maintenance mechanism-concepts for organization and mode of action. , 2015, Plant & cell physiology.
[17] B. Mikami,et al. Crystal structure of class III chitinase from pomegranate provides the insight into its metal storage capacity , 2014, Bioscience, biotechnology, and biochemistry.
[18] Shanshan Wang,et al. ScChi, Encoding an Acidic Class III Chitinase of Sugarcane, Confers Positive Responses to Biotic and Abiotic Stresses in Sugarcane , 2014, International journal of molecular sciences.
[19] Huilan Yi,et al. Differential expression of Arabidopsis defense-related genes in response to sulfur dioxide. , 2012, Chemosphere.
[20] I. Burgert,et al. CHITINASE-LIKE1/POM-POM1 and Its Homolog CTL2 Are Glucan-Interacting Proteins Important for Cellulose Biosynthesis in Arabidopsis[W][OA] , 2012, Plant Cell.
[21] A. Grover. Plant Chitinases: Genetic Diversity and Physiological Roles , 2012 .
[22] B. Singh,et al. Pathogenesis-related (PR)-proteins: Chitinase and β-1,3-glucanase in defense mechanism against malformation in mango (Mangifera indica L.) , 2011 .
[23] Deok-Chun Yang,et al. Defense Genes Induced by Pathogens and Abiotic Stresses in Panax ginseng C. A. Meyer , 2011 .
[24] T. Osawa,et al. Crystal structure and mode of action of a class V chitinase from Nicotiana tabacum , 2011, Plant Molecular Biology.
[25] G. Tuskan,et al. Annotation and comparative analysis of the glycoside hydrolase genes in Brachypodium distachyon , 2010, BMC Genomics.
[26] A. Moir,et al. Purification and characterization of a new chitinase from latex of Ipomoea carnea , 2010 .
[27] M. Tamoi,et al. Chitinase Gene Expression in Response to Environmental Stresses in Arabidopsis thaliana: Chitinase Inhibitor Allosamidin Enhances Stress Tolerance , 2009, Bioscience, biotechnology, and biochemistry.
[28] Janick Mathys,et al. Plant pathogenesis-related (PR) proteins: a focus on PR peptides. , 2008, Plant physiology and biochemistry : PPB.
[29] Brandi L. Cantarel,et al. The Carbohydrate-Active EnZymes database (CAZy): an expert resource for Glycogenomics , 2008, Nucleic Acids Res..
[30] J. Rose,et al. Plant glycosyl hydrolases and biofuels: a natural marriage. , 2008, Current opinion in plant biology.
[31] Z. Minić. Physiological roles of plant glycoside hydrolases , 2008, Planta.
[32] N. Sakthivel,et al. Heterologous expression of new antifungal chitinase from wheat. , 2007, Protein expression and purification.
[33] M. Tamoi,et al. Rice chitinases: sugar recognition specificities of the individual subsites. , 2006, Glycobiology.
[34] Rupinder Tewari,et al. Biotechnological aspects of chitinolytic enzymes: a review , 2006, Applied Microbiology and Biotechnology.
[35] L. Jouanin,et al. Plant glycoside hydrolases involved in cell wall polysaccharide degradation. , 2006, Plant physiology and biochemistry : PPB.
[36] S. Somerville,et al. The role of plant cell wall polysaccharide composition in disease resistance. , 2004, Trends in plant science.
[37] D. Cosgrove. Cell wall loosening by expansins. , 1998, Plant physiology.
[38] J. Beintema. Structural features of plant chitinases and chitin‐binding proteins , 1994, FEBS letters.