SLs signal transduction gene CsMAX2 of cucumber positively regulated to salt, drought and ABA stress in Arabidopsis thaliana L.
暂无分享,去创建一个
[1] Z. Nisa,et al. Exogenous strigolactones enhance tolerance in soybean seedlings in response to alkaline stress. , 2022, Physiologia plantarum.
[2] Yanlong Dong,et al. Overexpression of histone demethylase gene SlJMJ524 from tomato confers Cd tolerance by regulating metal transport-related protein genes and flavonoid content in Arabidopsis. , 2022, Plant science : an international journal of experimental plant biology.
[3] F. Cardinale,et al. The Potential of the Synthetic Strigolactone Analogue GR24 for the Maintenance of Photosynthesis and Yield in Winter Wheat under Drought: Investigations on the Mechanisms of Action and Delivery Modes , 2021, Plants.
[4] Jianbin Yan,et al. Strigolactone mimic 2-nitrodebranone is highly active in Arabidopsis growth and development. , 2021, The Plant journal : for cell and molecular biology.
[5] Xuan Lan Thi Hoang,et al. Ectopic expression of GmHP08 enhances resistance of transgenic Arabidopsis toward drought stress , 2021, Plant Cell Reports.
[6] Fei-bo Wu,et al. Strigolactone GR24 improves cadmium tolerance by regulating cadmium uptake, nitric oxide signaling and antioxidant metabolism in barley (Hordeum vulgare L.). , 2021, Environmental pollution.
[7] Yan Liang,et al. ζ-Carotene Isomerase Suppresses Tillering in Rice through the Coordinated Biosynthesis of Strigolactone and Abscisic Acid. , 2020, Molecular plant.
[8] Z. Nisa,et al. Identification and Expression Analysis of Strigolactone Biosynthetic and Signaling Genes in Response to Salt and Alkaline Stresses in Soybean (Glycine max). , 2020, DNA and cell biology.
[9] Xiaoe Yang,et al. A comparative study of root cadmium radial transport in seedlings of two wheat (Triticum aestivum L.) genotypes differing in grain cadmium accumulation. , 2020, Environmental pollution.
[10] Jiayang Li,et al. Transcriptional regulation of strigolactone signalling in Arabidopsis , 2020, Nature.
[11] Tao Yang,et al. The SUPPRESSOR OF MAX2 1 (SMAX1)-LIKE SMXL6, SMXL7, and SMXL8 Act as Negative Regulators in Response to Drought Stress in Arabidopsis. , 2020, Plant & cell physiology.
[12] Yongjun Zhao,et al. Effects of strigolactone on photosynthetic and physiological characteristics in salt-stressed rice seedlings , 2020, Scientific Reports.
[13] Xiaodong Zheng,et al. Exogenous Brassinolide Alleviates Salt Stress in Malus hupehensis Rehd. by Regulating the Transcription of NHX-Type Na+(K+)/H+ Antiporters , 2020, Frontiers in Plant Science.
[14] M. Noman,et al. Overexpression of GmCAMTA12 Enhanced Drought Tolerance in Arabidopsis and Soybean , 2019, International journal of molecular sciences.
[15] C. van der Schoot,et al. Strigolactone-Based Node-to-Bud Signaling May Restrain Shoot Branching in Hybrid Aspen , 2019, Plant & cell physiology.
[16] Xiangyang Hu,et al. Powerdress as the novel regulator enhances Arabidopsis seeds germination tolerance to high temperature stress by histone modification of SOM locus. , 2019, Plant science : an international journal of experimental plant biology.
[17] O. Leyser,et al. Connective auxin transport contributes to strigolactone-mediated shoot branching control independent of the transcription factor BRC1 , 2019, PLoS genetics.
[18] Lifang Wu,et al. Overexpression of the Stress-Inducible SsMAX2 Promotes Drought and Salt Resistance via the Regulation of Redox Homeostasis in Arabidopsis , 2019, International journal of molecular sciences.
[19] Xiao Zhang,et al. Functional Analysis of MAX2 in Phototropins-Mediated Cotyledon Flattening in Arabidopsis , 2018, Front. Plant Sci..
[20] C. Rameau,et al. Physcomitrella patens MAX2 characterization suggests an ancient role for this F-box protein in photomorphogenesis rather than strigolactone signalling. , 2018, The New phytologist.
[21] C. Beveridge,et al. Strigolactones positively regulate chilling tolerance in pea and in Arabidopsis. , 2018, Plant, cell & environment.
[22] S. Al‐Babili,et al. The interaction of strigolactones with abscisic acid during the drought response in rice , 2018, Journal of experimental botany.
[23] F. Cardinale,et al. Strigolactones: mediators of osmotic stress responses with a potential for agrochemical manipulation of crop resilience , 2018, Journal of experimental botany.
[24] Baihong Zhang,et al. AhGLK1 affects chlorophyll biosynthesis and photosynthesis in peanut leaves during recovery from drought , 2018, Scientific Reports.
[25] V. Raja,et al. Abiotic stress: Interplay between ROS, hormones and MAPKs , 2017 .
[26] Vivek Kumar,et al. Abscisic Acid Signaling and Abiotic Stress Tolerance in Plants: A Review on Current Knowledge and Future Prospects , 2017, Front. Plant Sci..
[27] M. Strnad,et al. Low levels of strigolactones in roots as a component of the systemic signal of drought stress in tomato. , 2016, The New phytologist.
[28] Rui Li,et al. Apple F-Box Protein MdMAX2 Regulates Plant Photomorphogenesis and Stress Response , 2016, Front. Plant Sci..
[29] O. Leyser,et al. SMAX1-LIKE7 Signals from the Nucleus to Regulate Shoot Development in Arabidopsis via Partially EAR Motif-Independent Mechanisms[OPEN] , 2016, Plant Cell.
[30] Y. Kapulnik,et al. Expression of MAX2 under SCARECROW promoter enhances the strigolactone/MAX2 dependent response of Arabidopsis roots to low-phosphate conditions , 2016, Planta.
[31] Nicholas Morffy,et al. Functional redundancy in the control of seedling growth by the karrikin signaling pathway , 2016, Planta.
[32] Wenbin Li,et al. Overexpression of soybean miR172c confers tolerance to water deficit and salt stress, but increases ABA sensitivity in transgenic Arabidopsis thaliana. , 2015, Journal of experimental botany.
[33] Zefu Lu,et al. Strigolactone Signaling in Arabidopsis Regulates Shoot Development by Targeting D53-Like SMXL Repressor Proteins for Ubiquitination and Degradation[OPEN] , 2015, Plant Cell.
[34] O. Leyser,et al. Strigolactone signalling: standing on the shoulders of DWARFs. , 2014, Current opinion in plant biology.
[35] Seok-Hyeon Kim,et al. Chlorophyll fluorescence as a diagnostic tool for abiotic stress tolerance in wild and cultivated strawberry species , 2014, Horticulture, Environment, and Biotechnology.
[36] C. Foyer,et al. Ectopic phytocystatin expression leads to enhanced drought stress tolerance in soybean (Glycine max) and Arabidopsis thaliana through effects on strigolactone pathways and can also result in improved seed traits. , 2014, Plant biotechnology journal.
[37] K. Ljung,et al. Auxin and Strigolactone Signaling Are Required for Modulation of Arabidopsis Shoot Branching by Nitrogen Supply1[W][OPEN] , 2014, Plant Physiology.
[38] K. Shinozaki,et al. The transcriptional regulatory network in the drought response and its crosstalk in abiotic stress responses including drought, cold, and heat , 2014, Front. Plant Sci..
[39] K. Shinozaki,et al. Positive regulatory role of strigolactone in plant responses to drought and salt stress , 2013, Proceedings of the National Academy of Sciences.
[40] Hui Shen,et al. Regulation of Drought Tolerance by the F-Box Protein MAX2 in Arabidopsis1[C][W][OPEN] , 2013, Plant Physiology.
[41] Steven M. L. Smith,et al. SUPPRESSOR OF MORE AXILLARY GROWTH2 1 Controls Seed Germination and Seedling Development in Arabidopsis1[W][OPEN] , 2013, Plant Physiology.
[42] Yanming Zhu,et al. Expression of wild soybean WRKY20 in Arabidopsis enhances drought tolerance and regulates ABA signalling. , 2013, Journal of experimental botany.
[43] S. Al‐Babili,et al. The biology of strigolactones. , 2013, Trends in plant science.
[44] O. Leyser,et al. Strigolactone Can Promote or Inhibit Shoot Branching by Triggering Rapid Depletion of the Auxin Efflux Protein PIN1 from the Plasma Membrane , 2013, PLoS biology.
[45] C. Beveridge,et al. Strigolactones Are Involved in Root Response to Low Phosphate Conditions in Arabidopsis[W][OA] , 2012, Plant Physiology.
[46] M. Yusuf,et al. 24-epibrassinolide modulates growth, nodulation, antioxidant system, and osmolyte in tolerant and sensitive varieties of Vigna radiata under different levels of nickel: a shotgun approach. , 2012, Plant physiology and biochemistry : PPB.
[47] Ling Zhu,et al. MAX2 affects multiple hormones to promote photomorphogenesis. , 2012, Molecular plant.
[48] K. Ljung,et al. Strigolactone signaling is required for auxin-dependent stimulation of secondary growth in plants , 2011, Proceedings of the National Academy of Sciences.
[49] E. Blumwald,et al. Hormone balance and abiotic stress tolerance in crop plants. , 2011, Current opinion in plant biology.
[50] M. Tester,et al. Genetic analysis of abiotic stress tolerance in crops. , 2011, Current opinion in plant biology.
[51] H. Rolletschek,et al. ABA biosynthesis and degradation contributing to ABA homeostasis during barley seed development under control and terminal drought-stress conditions. , 2011, Journal of experimental botany.
[52] T. Lynch,et al. Direct targets of the transcription factors ABA-Insensitive(ABI)4 and ABI5 reveal synergistic action by ABI4 and several bZIP ABA response factors , 2011, Plant Molecular Biology.
[53] Richard J. Challis,et al. Strigolactone regulation of shoot branching in chrysanthemum (Dendranthema grandiflorum) , 2010, Journal of experimental botany.
[54] K. Yoneyama,et al. Strigolactones: structures and biological activities. , 2009, Pest management science.
[55] Y. Kamiya,et al. Inhibition of shoot branching by new terpenoid plant hormones , 2008, Nature.
[56] Hui Shen,et al. The F-Box Protein MAX2 Functions as a Positive Regulator of Photomorphogenesis in Arabidopsis1[C][W][OA] , 2007, Plant Physiology.
[57] A. Kamei,et al. Molecular responses to drought, salinity and frost: common and different paths for plant protection. , 2003, Current opinion in biotechnology.
[58] H. Leyser,et al. MAX1 and MAX2 control shoot lateral branching in Arabidopsis. , 2002, Development.
[59] Hong Gil Nam,et al. ORE9, an F-Box Protein That Regulates Leaf Senescence in Arabidopsis , 2001, The Plant Cell Online.
[60] S. Merlot,et al. The ABI1 and ABI2 protein phosphatases 2C act in a negative feedback regulatory loop of the abscisic acid signalling pathway. , 2001, The Plant journal : for cell and molecular biology.
[61] J. Zeevaart,et al. The 9-cis-epoxycarotenoid cleavage reaction is the key regulatory step of abscisic acid biosynthesis in water-stressed bean. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[62] C. Forney,et al. Improving the thiobarbituric acid-reactive-substances assay for estimating lipid peroxidation in plant tissues containing anthocyanin and other interfering compounds , 1999, Planta.
[63] K. Shinozaki,et al. A novel cis-acting element in an Arabidopsis gene is involved in responsiveness to drought, low-temperature, or high-salt stress. , 1994, The Plant cell.
[64] Q. Shen,et al. WRKY transcription factors: key components in abscisic acid signalling. , 2012, Plant biotechnology journal.