Plant metabolomics in biotic and abiotic stress: a critical overview
暂无分享,去创建一个
[1] K. Choudhary,et al. Glycine Betaine , 2022, Journal of Pharmacy and Nutrition Sciences.
[2] B. Misra. New software tools, databases, and resources in metabolomics: updates from 2020 , 2021, Metabolomics.
[3] I. Kosakivska,et al. Molecular mechanisms of plant adaptive responses to heavy metals stress , 2020, Cell biology international.
[4] Yulong Ding,et al. Mechanisms of Selected Plant Hormones under Heavy Metal Stress , 2020 .
[5] A. Kisiala,et al. Phytohormonal Roles in Plant Responses to Heavy Metal Stress: Implications for Using Macrophytes in Phytoremediation of Aquatic Ecosystems , 2020, Environmental toxicology and chemistry.
[6] Shahid Ali,et al. Implications of Abscisic Acid in the Drought Stress Tolerance of Plants , 2020, Agronomy.
[7] Priyanka Singh,et al. Salinity induced physiological and biochemical changes in plants: An omic approach towards salt stress tolerance. , 2020, Plant physiology and biochemistry : PPB.
[8] E. Gomes-Filho,et al. Metabolic changes associated with differential salt tolerance in sorghum genotypes , 2020, Planta.
[9] V. Suseela,et al. Unraveling Arbuscular Mycorrhiza-Induced Changes in Plant Primary and Secondary Metabolome , 2020, Metabolites.
[10] D. P. Singh,et al. Synchronised regulation of disease resistance in primed finger millet plants against the blast disease , 2020, Biotechnology reports.
[11] T. Janda,et al. Multifaceted Role of Salicylic Acid in Combating Cold Stress in Plants: A Review , 2020, Journal of Plant Growth Regulation.
[12] A. García-Villaraco,et al. Elicitation with Bacillus QV15 reveals a pivotal role of F3H on flavonoid metabolism improving adaptation to biotic stress in blackberry , 2020, PloS one.
[13] D. Becker,et al. Proline metabolic dynamics and implications in drought tolerance of peanut plants. , 2020, Plant physiology and biochemistry : PPB.
[14] A. Mahmood,et al. Heat stress in cultivated plants: nature, impact, mechanisms, and mitigation strategies—a review , 2020 .
[15] H. Hilhorst,et al. Overexpression of Ricinus communis L. malate synthase enhances seed tolerance to abiotic stress during germination , 2020 .
[16] Ectopic Expression , 2020, Definitions.
[17] N. Lopes,et al. Metabolomics to Characterize Adaptive and Signaling Responses in Legume Crops under Abiotic Stresses , 2020, ACS omega.
[18] Di Cui,et al. Applications of metabolomics in the research of soybean plant under abiotic stress. , 2019, Food chemistry.
[19] F. Saleem,et al. Metabolomics: A Way Forward for Crop Improvement , 2019, Metabolites.
[20] C. Clément,et al. Impact of Paraburkholderia phytofirmans PsJN on Grapevine Phenolic Metabolism , 2019, International journal of molecular sciences.
[21] A. M. Khattak,et al. Heat Shock Proteins: Dynamic Biomolecules to Counter Plant Biotic and Abiotic Stresses , 2019, International journal of molecular sciences.
[22] M. Yassaie,et al. Comparative metabolomics of temperature sensitive resistance to wheat streak mosaic virus (WSMV) in resistant and susceptible wheat cultivars. , 2019, Journal of plant physiology.
[23] B. Prasanna,et al. Heat Stress , 2019, Patty's Industrial Hygiene.
[24] M. Martin-Magniette,et al. In situ transcriptomic and metabolomic study of the loss of photosynthesis in the leaves of mixotrophic plants exploiting fungi. , 2019, The Plant journal : for cell and molecular biology.
[25] M. Ozturk,et al. Heavy metal stress and responses in plants , 2019, International Journal of Environmental Science and Technology.
[26] L. Piater,et al. Metabolomic Analysis of Defense-Related Reprogramming in Sorghum bicolor in Response to Colletotrichum sublineolum Infection Reveals a Functional Metabolic Web of Phenylpropanoid and Flavonoid Pathways , 2019, Front. Plant Sci..
[27] P. Kachlicki,et al. Analytical Methods for Detection of Plant Metabolomes Changes in Response to Biotic and Abiotic Stresses , 2019, International journal of molecular sciences.
[28] Tatjana M. Hildebrandt. Synthesis versus degradation: directions of amino acid metabolism during Arabidopsis abiotic stress response , 2018, Plant Molecular Biology.
[29] A. Fernie,et al. Abscisic acid, cold and salt stimulate conserved metabolic regulation in the moss Physcomitrella patens. , 2018, Plant biology.
[30] G. Skaracis,et al. Global metabolomics analysis reveals distinctive tolerance mechanisms in different plant organs of lentil (Lens culinaris) upon salinity stress , 2018, Plant and Soil.
[31] B. Cassone,et al. A tale of survival: Molecular defense mechanisms of soybean to overcome Soybean mosaic virus infection , 2018 .
[32] Govindjee,et al. Rice intermediate filament, OsIF, stabilizes photosynthetic machinery and yield under salinity and heat stress , 2018, Scientific Reports.
[33] Francisco Manzano-Agugliaro,et al. Worldwide Research on Plant Defense against Biotic Stresses as Improvement for Sustainable Agriculture , 2018 .
[34] Liyuan Wu,et al. Ionomic, metabolomic and proteomic analyses reveal molecular mechanisms of root adaption to salt stress in Tibetan wild barley. , 2018, Plant physiology and biochemistry : PPB.
[35] K. Dietz,et al. Metabolic features involved in drought stress tolerance mechanisms in peanut nodules and their contribution to biological nitrogen fixation. , 2017, Plant science : an international journal of experimental plant biology.
[36] Bingru Huang,et al. Metabolic Effects of Acibenzolar-S-Methyl for Improving Heat or Drought Stress in Creeping Bentgrass , 2017, Front. Plant Sci..
[37] L. Shi,et al. Comparison of Salt Tolerance in Soja Based on Metabolomics of Seedling Roots , 2017, Front. Plant Sci..
[38] R. M. Rivero,et al. Reactive oxygen species, abiotic stress and stress combination. , 2017, The Plant journal : for cell and molecular biology.
[39] P. Agarwal,et al. Chemical Derivatization of Metabolite Mass Profiling of the Recretohalophyte Aeluropus lagopoides Revealing Salt Stress Tolerance Mechanism , 2017, Marine Biotechnology.
[40] R. Nodari,et al. Molecular responses of genetically modified maize to abiotic stresses as determined through proteomic and metabolomic analyses , 2017, PloS one.
[41] U. Roessner,et al. A Quantitative Profiling Method of Phytohormones and Other Metabolites Applied to Barley Roots Subjected to Salinity Stress , 2017, Front. Plant Sci..
[42] R. Rucińska-Sobkowiak. Water relations in plants subjected to heavy metal stresses , 2016, Acta Physiologiae Plantarum.
[43] Joost T. van Dongen,et al. Mass spectrometry-based plant metabolomics: Metabolite responses to abiotic stress. , 2016, Mass spectrometry reviews.
[44] Xin Lu,et al. Oral secretions from Mythimna separata insects specifically induce defence responses in maize as revealed by high-dimensional biological data. , 2016, Plant, cell & environment.
[45] U. Roessner,et al. Root spatial metabolite profiling of two genotypes of barley (Hordeum vulgare L.) reveals differences in response to short-term salt stress , 2016, Journal of experimental botany.
[46] Z. Abdelgawad,et al. Alleviation of the adverse effects of salinity stress using trehalose in two rice varieties , 2016 .
[47] Jianping Huang,et al. Accelerated dryland expansion under climate change , 2016 .
[48] W. Weckwerth,et al. Primary Metabolism, Phenylpropanoids and Antioxidant Pathways Are Regulated in Potato as a Response to Potato virus Y Infection , 2016, PloS one.
[49] B. Misra,et al. Updates in metabolomics tools and resources: 2014–2015 , 2016, Electrophoresis.
[50] V. Aidinis,et al. Kresoxim-methyl primes Medicago truncatula plants against abiotic stress factors via altered reactive oxygen and nitrogen species signalling leading to downstream transcriptional and metabolic readjustment , 2015, Journal of experimental botany.
[51] J. Araus,et al. Metabolite Profiles of Maize Leaves in Drought, Heat, and Combined Stress Field Trials Reveal the Relationship between Metabolism and Grain Yield1[OPEN] , 2015, Plant Physiology.
[52] Guan-Hong Chen,et al. Increased glutathione contributes to stress tolerance and global translational changes in Arabidopsis. , 2015, The Plant journal : for cell and molecular biology.
[53] J. Kumar,et al. Roles of osmoprotectants in improving salinity and drought tolerance in plants: a review , 2015, Reviews in Environmental Science and Bio/Technology.
[54] T. Sarna,et al. Senescence, Stress, and Reactive Oxygen Species , 2015, Plants.
[55] M. Hirai,et al. Ectopic expression of myo-inositol 3-phosphate synthase induces a wide range of metabolic changes and confers salt tolerance in rice. , 2015, Plant science : an international journal of experimental plant biology.
[56] N. Ullah,et al. Phytohormones and plant responses to salinity stress: a review , 2015, Plant Growth Regulation.
[57] Z. Rengel,et al. Salicylic acid in plant salinity stress signalling and tolerance , 2015, Plant Growth Regulation.
[58] Jie Zhou,et al. Hydrogen peroxide mediates abscisic acid-induced HSP70 accumulation and heat tolerance in grafted cucumber plants. , 2014, Plant, cell & environment.
[59] R. Khavari-Nejad,et al. Abscisic Acid and Cytokinin-Induced Osmotic and Antioxidant Regulation in Two Drought-Tolerant and Drought-Sensitive Cultivars of Wheat During Grain Filling Under Water Deficit in Field Conditions , 2014 .
[60] R. Reiter,et al. Comparative physiological, metabolomic, and transcriptomic analyses reveal mechanisms of improved abiotic stress resistance in bermudagrass [Cynodon dactylon (L). Pers.] by exogenous melatonin , 2014, Journal of experimental botany.
[61] Robert Verpoorte,et al. Extraction for metabolomics: access to the metabolome. , 2014, Phytochemical analysis : PCA.
[62] A. Gómez-Cadenas,et al. Metabolic and Regulatory Responses in Citrus Rootstocks in Response to Adverse Environmental Conditions , 2014, Journal of Plant Growth Regulation.
[63] M. Stobiecki,et al. Influence of abiotic stresses on plant proteome and metabolome changes , 2013, Acta Physiologiae Plantarum.
[64] K. L. Bokszczanin,et al. Perspectives on deciphering mechanisms underlying plant heat stress response and thermotolerance , 2013, Front. Plant Sci..
[65] M. Del Bubba,et al. Response to metal stress of Nicotiana langsdorffii plants wild-type and transgenic for the rat glucocorticoid receptor gene. , 2013, Journal of plant physiology.
[66] P. Singh,et al. Role of salicylic acid on physiological and biochemical mechanism of salinity stress tolerance in plants , 2013, Acta Physiologiae Plantarum.
[67] J. Nuzillard,et al. Metabolomics reveals simultaneous influences of plant defence system and fungal growth in Botrytis cinerea-infected Vitis vinifera cv. Chardonnay berries. , 2012, Journal of experimental botany.
[68] J. Pichtel,et al. Role of proline under changing environments , 2012, Plant signaling & behavior.
[69] A. Fernie,et al. The use of metabolomics to dissect plant responses to abiotic stresses , 2012, Cellular and Molecular Life Sciences.
[70] H. Nayyar,et al. Abscisic acid induces heat tolerance in chickpea (Cicer arietinum L.) seedlings by facilitated accumulation of osmoprotectants , 2012, Acta Physiologiae Plantarum.
[71] V. Kholodova,et al. Water status in Mesembryanthemum crystallinum under heavy metal stress , 2011 .
[72] Wattana Pattanagul. Exogenous Abscisic Acid Enhances Sugar Accumulation in Rice (Oryza sativa L.) under Drought Stress , 2011 .
[73] I. Baldwin,et al. New insights into plant responses to the attack from insect herbivores. , 2010, Annual review of genetics.
[74] A. M. Gil,et al. NMR metabolomics of esca disease-affected Vitis vinifera cv. Alvarinho leaves. , 2010, Journal of experimental botany.
[75] X. Gang,et al. Biotechnological implications from abscisic acid (ABA) roles in cold stress and leaf senescence as an important signal for improving plant sustainable survival under abiotic-stressed conditions , 2010, Critical reviews in biotechnology.
[76] P. C. Nagajyoti,et al. Heavy metals, occurrence and toxicity for plants: a review , 2010 .
[77] Sudesh Kumar Yadav,et al. Cold stress tolerance mechanisms in plants. A review , 2010, Agronomy for Sustainable Development.
[78] S. Yadav. Heavy metals toxicity in plants: An overview on the role of glutathione and phytochelatins in heavy metal stress tolerance of plants , 2010 .
[79] K. Shinozaki,et al. 'Omics' analyses of regulatory networks in plant abiotic stress responses. , 2010, Current opinion in plant biology.
[80] P. Sharifi. Evaluation on Sixty-eight Rice Germplasms in Cold Tolerance at Germination Stage , 2010 .
[81] M. Zielezińska,et al. ABA or cadmium induced phytochelatin synthesis in potato tubers , 2010, Biologia Plantarum.
[82] I. Feussner,et al. Upgrading Root Physiology for Stress Tolerance by Ectomycorrhizas: Insights from Metabolite and Transcriptional Profiling into Reprogramming for Stress Anticipation1[C][W][OA] , 2009, Plant Physiology.
[83] Hideyuki Suzuki,et al. Metabolic Pathways Involved in Cold Acclimation Identified by Integrated Analysis of Metabolites and Transcripts Regulated by DREB1A and DREB2A1[W][OA] , 2009, Plant Physiology.
[84] J. Ton,et al. The multifaceted role of ABA in disease resistance. , 2009, Trends in plant science.
[85] Shao Hongbo,et al. Roles of plant soluble sugars and their responses to plant cold stress , 2009 .
[86] Joachim Kopka,et al. A Central Role of Abscisic Acid in Stress-Regulated Carbohydrate Metabolism , 2008, PloS one.
[87] Joachim Selbig,et al. Integration of Metabolomic and Proteomic Phenotypes , 2008, Molecular & Cellular Proteomics.
[88] Jianhua Zhang,et al. Stomatal movements and long-distance signaling in plants , 2008, Plant signaling & behavior.
[89] G. Howe,et al. Plant immunity to insect herbivores. , 2008, Annual review of plant biology.
[90] V. Shulaev,et al. Metabolomics for plant stress response. , 2008, Physiologia plantarum.
[91] A. Lewandowska,et al. Chaperones in control of protein disaggregation , 2008, The EMBO journal.
[92] Royston Goodacre,et al. Metabolomic technologies and their application to the study of plants and plant-host interactions. , 2007, Physiologia plantarum.
[93] B. Forde,et al. Glutamate in plants: metabolism, regulation, and signalling. , 2007, Journal of experimental botany.
[94] Lijun Liu,et al. Involvement of polyamines in the drought resistance of rice. , 2007, Journal of experimental botany.
[95] M. Foolad,et al. Roles of glycine betaine and proline in improving plant abiotic stress resistance , 2007 .
[96] S. Korban,et al. HEAVY METAL STRESS , 2006 .
[97] J. Cuevas,et al. Abscisic acid modulates polyamine metabolism under water stress in Arabidopsis thaliana , 2006 .
[98] H. Fukuda,et al. A novel R2R3 MYB transcription factor NtMYBJS1 is a methyl jasmonate-dependent regulator of phenylpropanoid-conjugate biosynthesis in tobacco. , 2006, The Plant journal : for cell and molecular biology.
[99] Central role , 2005, Veterinary Record.
[100] R. Sicher,et al. Exogenous trehalose alters Arabidopsis transcripts involved in cell wall modification, abiotic stress, nitrogen metabolism, and plant defense , 2005 .
[101] D. Shin,et al. Jasmonic Acid Differentially Affects Growth, Ion Uptake and Abscisic Acid Concentration in Salt‐tolerant and Salt‐sensitive Rice Cultivars , 2005 .
[102] W. Boland,et al. Direct and indirect defences induced by piercing-sucking and chewing herbivores in Medicago truncatula. , 2005, The New phytologist.
[103] A. Das,et al. Salt tolerance and salinity effects on plants: a review. , 2005, Ecotoxicology and environmental safety.
[104] Alessandra Devoto,et al. Jasmonate‐regulated Arabidopsis stress signalling network , 2005 .
[105] M. M. Chaves,et al. Mechanisms underlying plant resilience to water deficits: prospects for water-saving agriculture. , 2004, Journal of experimental botany.
[106] H. Hirt,et al. Reactive oxygen species: metabolism, oxidative stress, and signal transduction. , 2004, Annual review of plant biology.
[107] V. Shulaev,et al. When Defense Pathways Collide. The Response of Arabidopsis to a Combination of Drought and Heat Stress1[w] , 2004, Plant Physiology.
[108] A. Stroinski,et al. The effect of jasmonic acid on the accumulation of ABA, proline and spermidine and its influence on membrane injury under water deficit in two barley genotypes , 2003, Acta Physiologiae Plantarum.
[109] D. Bouchez,et al. Mitochondrial succinic-semialdehyde dehydrogenase of the γ-aminobutyrate shunt is required to restrict levels of reactive oxygen intermediates in plants , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[110] I. Finkemeier,et al. Salicylic Acid Alleviates the Cadmium Toxicity in Barley Seedlings1 , 2003, Plant Physiology.
[111] K. Shinozaki,et al. Interaction between two cis-acting elements, ABRE and DRE, in ABA-dependent expression of Arabidopsis rd29A gene in response to dehydration and high-salinity stresses. , 2003, The Plant journal : for cell and molecular biology.
[112] R. Dixon,et al. Plant metabolomics: large-scale phytochemistry in the functional genomics era. , 2003, Phytochemistry.
[113] M. Khan,et al. Effects of sodium chloride treatments on growth and ion accumulation of the halophyte Haloxylon recurvum , 2000 .
[114] E. Vierling,et al. Mutants of Arabidopsis thaliana defective in the acquisition of tolerance to high temperature stress. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[115] S. Lindquist,et al. Heat Shock Protein 101 Plays a Crucial Role in Thermotolerance in Arabidopsis , 2000, Plant Cell.
[116] Long-Fei Wu,et al. Glycine Betaine-assisted Protein Folding in a lysAMutant of Escherichia coli * , 2000, The Journal of Biological Chemistry.
[117] A. Hetherington,et al. Abscisic acid , 1999, Current Biology.
[118] D. Nies,et al. Microbial heavy-metal resistance , 1999, Applied Microbiology and Biotechnology.
[119] Harold A. Mooney,et al. Response of Plants to Multiple Stresses , 1993 .
[120] H. Sauter,et al. Metabolic profiling of plants: a new diagnostic technique , 1991 .
[121] B. Spargo,et al. Interactions of sugars with membranes. , 1988, Biochimica et biophysica acta.
[122] P J Sadler,et al. Use of high-resolution proton nuclear magnetic resonance spectroscopy for rapid multi-component analysis of urine. , 1984, Clinical chemistry.
[123] E. Horning,et al. Metabolic profiles: gas-phase methods for analysis of metabolites. , 1971, Clinical chemistry.
[124] Yu-cai Chen,et al. Salicylic Acid , 1875, Reactions Weekly.
[125] Dhriti Kapoor,et al. HEAVY METAL TOXICITY IN PLANTS: A REVIEW , 2018 .
[126] A. Tiku. Antimicrobial Compounds and Their Role in Plant Defense , 2018 .
[127] Roland Molinié,et al. NMR-based Metabolomics to Study the Cold-acclimation Strategy of Two Miscanthus Genotypes. , 2017, Phytochemical analysis : PCA.
[128] M. Stobiecki,et al. Influence of abiotic stresses on plant proteome and metabolome changes , 2013, Acta Physiologiae Plantarum.
[129] I. Dodd. Abscisic acid and stomatal closure: a hydraulic conductance conundrum? , 2013, The New phytologist.
[130] J. Jampílek,et al. Metabolomics - Useful Tool for Study of Plant Responses to Abiotic Stresses , 2012 .
[131] N. Murata,et al. Glycinebetaine protects plants against abiotic stress: mechanisms and biotechnological applications. , 2011, Plant, cell & environment.
[132] John M. Walker,et al. Metabolic Profiling , 2011, Methods in Molecular Biology.
[133] Z. Yang,et al. Salicylic acid alleviates mercury toxicity by preventing oxidative stress in roots of Medicago sativa. , 2009 .
[134] R. Mittler,et al. Abiotic stress, the field environment and stress combination. , 2006, Trends in plant science.
[135] Benoît Jaillard,et al. Origins of root-mediated pH changes in the rhizosphere and their responses to environmental constraints: A review , 2004, Plant and Soil.
[136] P. Tomei,et al. Tradizioni etno-farmacobotaniche nella provincia di Livorno: il territorio della Valle Benedetta , 2003 .
[137] J. Frydman. Folding of newly translated proteins in vivo: the role of molecular chaperones. , 2001, Annual review of biochemistry.
[138] R. Hammerschmidt. PHYTOALEXINS: What Have We Learned After 60 Years? , 1999, Annual review of phytopathology.
[139] A. Osbourn. Saponins and plant defence — a soap story , 1996 .
[140] Charles L. Guy,et al. Cold Acclimation and Freezing Stress Tolerance: Role of Protein Metabolism , 1990 .
[141] Koréneková,et al. Effects of Sodium , 2022 .