Cysteine and Hydrogen Sulfide: A Complementary Association for Plant Acclimation to Abiotic Stress
暂无分享,去创建一个
[1] H. Ali,et al. Crosstalk of hydrogen sulfide and nitric oxide requires calcium to mitigate impaired photosynthesis under cadmium stress by activating defense mechanisms in Vigna radiata. , 2020, Plant physiology and biochemistry : PPB.
[2] E. Lindquist,et al. Modulation of Plant and Fungal Gene Expression Upon Cd Exposure and Symbiosis in Ericoid Mycorrhizal Vaccinium myrtillus , 2020, Frontiers in Microbiology.
[3] F. J. Corpas. Nitric Oxide and Hydrogen Sulfide in Higher Plants under Physiological and Stress Conditions , 2019, Antioxidants.
[4] Dandan Huang,et al. Regulation of Hydrogen Sulfide Metabolism by Nitric Oxide Inhibitors and the Quality of Peaches during Cold Storage , 2019, Antioxidants.
[5] J. M. Palma,et al. Nitric oxide (NO) and hydrogen sulfide (H2S) in plants: Which is first? , 2019, Journal of experimental botany.
[6] C. Kaya,et al. Integrative roles of nitric oxide and hydrogen sulfide in melatonin-induced tolerance of pepper (Capsicum annuum L.) plants to iron deficiency and salt stress alone or in combination. , 2019, Physiologia plantarum.
[7] C. Masclaux-Daubresse,et al. A New Role for SAG12 Cysteine Protease in Roots of Arabidopsis thaliana , 2019, Front. Plant Sci..
[8] M. H. Siddiqui,et al. Hydrogen Sulfide-Mediated Activation of O-Acetylserine (Thiol) Lyase and l/d-Cysteine Desulfhydrase Enhance Dehydration Tolerance in Eruca sativa Mill , 2018, International journal of molecular sciences.
[9] Zhuping Jin,et al. Hydrogen Sulfide Regulates Energy Production to Delay Leaf Senescence Induced by Drought Stress in Arabidopsis , 2018, Front. Plant Sci..
[10] M. Janicka,et al. Interaction between the signaling molecules hydrogen sulfide and hydrogen peroxide and their role in vacuolar H+ -ATPase regulation in cadmium-stressed cucumber roots. , 2018, Physiologia plantarum.
[11] L. Romero,et al. Hydrogen Sulfide Signaling in Plants: Emerging Roles of Protein Persulfidation , 2018, Front. Plant Sci..
[12] C. García-Mata,et al. Hydrogen Sulfide Increases Production of NADPH Oxidase-Dependent Hydrogen Peroxide and Phospholipase D-Derived Phosphatidic Acid in Guard Cell Signaling1 , 2018, Plant Physiology.
[13] Zhuping Jin,et al. Hydrogen sulfide alleviates the cold stress through MPK4 in Arabidopsis thaliana. , 2017, Plant physiology and biochemistry : PPB.
[14] Z. Yang,et al. A cadmium stress-responsive gene AtFC1 confers plant tolerance to cadmium toxicity , 2017, BMC Plant Biology.
[15] K. Tomizawa,et al. Cysteinyl-tRNA synthetase governs cysteine polysulfidation and mitochondrial bioenergetics , 2017, Nature Communications.
[16] M. Filipovic,et al. More than just an intermediate: hydrogen sulfide signalling in plants , 2017, Journal of experimental botany.
[17] L. Peres,et al. NO, hydrogen sulfide does not come first during tomato response to high salinity. , 2017, Nitric oxide : biology and chemistry.
[18] D. Lefer,et al. 3-Mercaptopyruvate sulfurtransferase produces potential redox regulators cysteine- and glutathione-persulfide (Cys-SSH and GSSH) together with signaling molecules H2S2, H2S3 and H2S , 2017, Scientific Reports.
[19] L. Romero,et al. Persulfidation proteome reveals the regulation of protein function by hydrogen sulfide in diverse biological processes in Arabidopsis , 2017, Journal of experimental botany.
[20] M. Mobin,et al. Nitric oxide-induced synthesis of hydrogen sulfide alleviates osmotic stress in wheat seedlings through sustaining antioxidant enzymes, osmolyte accumulation and cysteine homeostasis. , 2017, Nitric oxide : biology and chemistry.
[21] L. Romero,et al. Hydrogen Sulfide Regulates the Cytosolic/Nuclear Partitioning of Glyceraldehyde-3-Phosphate Dehydrogenase by Enhancing its Nuclear Localization , 2017, Plant & cell physiology.
[22] Yongsheng Liu,et al. Functional analysis of the role of hydrogen sulfide in the regulation of dark-induced leaf senescence in Arabidopsis , 2017, Scientific Reports.
[23] S. Kanaujia. Understanding Toxic Metal–Binding Proteins and Peptides , 2017 .
[24] L. Modolo,et al. Salinity-induced accumulation of endogenous H2S and NO is associated with modulation of the antioxidant and redox defense systems in Nicotiana tabacum L. cv. Havana. , 2017, Plant science : an international journal of experimental plant biology.
[25] J. Hancock. Harnessing Evolutionary Toxins for Signaling: Reactive Oxygen Species, Nitric Oxide and Hydrogen Sulfide in Plant Cell Regulation , 2017, Front. Plant Sci..
[26] A. Shahpiri,et al. Heterologous expression of a rice metallothionein isoform (OsMTI-1b) in Saccharomyces cerevisiae enhances cadmium, hydrogen peroxide and ethanol tolerance , 2017, Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology].
[27] Xiaofeng Wang,et al. Hydrogen sulfide - cysteine cycle system enhances cadmium tolerance through alleviating cadmium-induced oxidative stress and ion toxicity in Arabidopsis roots , 2016, Scientific Reports.
[28] Tetsuro Matsunaga,et al. Redox Signaling Regulated by Cysteine Persulfide and Protein Polysulfidation , 2016, Molecules.
[29] Chenyang Wang,et al. Alleviation of Drought Stress by Hydrogen Sulfide Is Partially Related to the Abscisic Acid Signaling Pathway in Wheat , 2016, PloS one.
[30] Yujie Jia,et al. Hydrogen sulfide mediates nicotine biosynthesis in tobacco (Nicotiana tabacum) under high temperature conditions. , 2016, Plant physiology and biochemistry : PPB.
[31] Yongsheng Liu,et al. Zinc-Finger Transcription Factor ZAT6 Positively Regulates Cadmium Tolerance through the Glutathione-Dependent Pathway in Arabidopsis1[OPEN] , 2016, Plant Physiology.
[32] L. An,et al. Putrescine protects hulless barley from damage due to UV-B stress via H2S- and H2O2-mediated signaling pathways , 2016, Plant Cell Reports.
[33] J. Hancock,et al. Hydrogen sulfide signaling: interactions with nitric oxide and reactive oxygen species , 2016, Annals of the New York Academy of Sciences.
[34] Xiangyang Hu,et al. Roles of H2S in adaptation of alpine plants Lamiophlomis rotata to altitude gradients , 2015, Plant signaling & behavior.
[35] M. Nebbioso,et al. Biomolecular Modulation of Neurodegenerative Events during Ageing , 2015, Oxidative medicine and cellular longevity.
[36] L. Romero,et al. Signaling in the plant cytosol: cysteine or sulfide? , 2014, Amino Acids.
[37] Guangdong Yang. H2S epigenetic regulation of vascular cell functions , 2015 .
[38] R. Yoshida,et al. 8-Mercapto-Cyclic GMP Mediates Hydrogen Sulfide-Induced Stomatal Closure in Arabidopsis. , 2015, Plant & cell physiology.
[39] Haitao Shi,et al. Hydrogen sulfide regulates abiotic stress tolerance and biotic stress resistance in Arabidopsis. , 2015, Journal of integrative plant biology.
[40] A. Krapp,et al. Plant nitrogen assimilation and its regulation: a complex puzzle with missing pieces. , 2015, Current opinion in plant biology.
[41] Yue-Yi Chen,et al. Cloning and characterization of HbMT2a, a metallothionein gene from Hevea brasiliensis Muell. Arg differently responds to abiotic stress and heavy metals. , 2015, Biochemical and biophysical research communications.
[42] Liping Zhang,et al. Hydrogen Sulfide Alleviates Cadmium-Induced Cell Death through Restraining ROS Accumulation in Roots of Brassica rapa L. ssp. pekinensis , 2015, Oxidative medicine and cellular longevity.
[43] M. Barbieri,et al. Cadmium-inducible expression of the ABC-type transporter AtABCC3 increases phytochelatin-mediated cadmium tolerance in Arabidopsis , 2015, Journal of experimental botany.
[44] A. Papageorgiou,et al. Plant GSTome: structure and functional role in xenome network and plant stress response. , 2015, Current opinion in biotechnology.
[45] Xiangyang Hu,et al. Comparative proteomic analysis reveals the role of hydrogen sulfide in the adaptation of the alpine plant Lamiophlomis rotata to altitude gradient in the Northern Tibetan Plateau , 2015, Planta.
[46] L. Romero,et al. S-Sulfhydration: A Cysteine Posttranslational Modification in Plant Systems1 , 2015, Plant Physiology.
[47] Liping Zhang,et al. Hydrogen sulfide interacts with calcium signaling to enhance the chromium tolerance in Setaria italica. , 2014, Cell calcium.
[48] H. Rennenberg,et al. A detailed view on sulphur metabolism at the cellular and whole-plant level illustrates challenges in metabolite flux analyses. , 2014, Journal of experimental botany.
[49] A. Masi,et al. Low-molecular-weight thiols in plants: functional and analytical implications. , 2014, Archives of biochemistry and biophysics.
[50] S. Kopriva,et al. Molecular mechanisms of regulation of sulfate assimilation: first steps on a long road , 2014, Front. Plant Sci..
[51] C. García-Mata,et al. Hydrogen Sulfide Generated by l-Cysteine Desulfhydrase Acts Upstream of Nitric Oxide to Modulate Abscisic Acid-Dependent Stomatal Closure1[C][W] , 2014, Plant Physiology.
[52] Ming-zhu Wu,et al. Endogenous hydrogen sulfide enhances salt tolerance by coupling the reestablishment of redox homeostasis and preventing salt-induced K⁺ loss in seedlings of Medicago sativa. , 2014, Plant science : an international journal of experimental plant biology.
[53] Jisheng Li,et al. Hydrogen sulfide is involved in maintaining ion homeostasis via regulating plasma membrane Na+/H+ antiporter system in the hydrogen peroxide-dependent manner in salt-stress Arabidopsis thaliana root , 2014, Protoplasma.
[54] J. Schroeder,et al. Phytochelatin-metal(loid) transport into vacuoles shows different substrate preferences in barley and Arabidopsis. , 2014, Plant, cell & environment.
[55] J. Hancock,et al. Hydrogen sulfide and cell signaling: team player or referee? , 2014, Plant physiology and biochemistry : PPB.
[56] A. Christou,et al. Sodium hydrosulfide induces systemic thermotolerance to strawberry plants through transcriptional regulation of heat shock proteins and aquaporin , 2014, BMC Plant Biology.
[57] L. Romero,et al. Cysteine and cysteine-related signaling pathways in Arabidopsis thaliana. , 2014, Molecular plant.
[58] Jian‐Kang Zhu,et al. Sulfate availability affects ABA levels and germination response to ABA and salt stress in Arabidopsis thaliana. , 2014, The Plant journal : for cell and molecular biology.
[59] J. R. Lancaster,et al. Chemical foundations of hydrogen sulfide biology. , 2013, Nitric oxide : biology and chemistry.
[60] B. Koffler,et al. Higher sensitivity of pad2-1 and vtc2-1 mutants to cadmium is related to lower subcellular glutathione rather than ascorbate contents , 2013, Protoplasma.
[61] Xin Liu,et al. Hydrogen sulfide is involved in the chilling stress response in Vitis vinifera L. , 2013 .
[62] J. Ahmad,et al. Limited sulfur resource forces Arabidopsis thaliana to shift towards non-sulfur tolerance under cadmium stress , 2013 .
[63] R. Hell,et al. Successful Fertilization Requires the Presence of at Least One Major O-Acetylserine(thiol)lyase for Cysteine Synthesis in Pollen of Arabidopsis1[C][W][OPEN] , 2013, Plant Physiology.
[64] S. Kopriva,et al. Hydrogen sulfide in plants: from dissipation of excess sulfur to signaling molecule. , 2013, Nitric oxide : biology and chemistry.
[65] Wei Cheng,et al. Hydrogen sulfide alleviates hypoxia-induced root tip death in Pisum sativum. , 2013, Plant physiology and biochemistry : PPB.
[66] C. Blindauer,et al. Diversity and distribution of plant metallothioneins: a review of structure, properties and functions. , 2013, Metallomics : integrated biometal science.
[67] Xiaodong Ding,et al. Hydrogen sulfide donor sodium hydrosulfide-improved heat tolerance in maize and involvement of proline. , 2013, Journal of plant physiology.
[68] F. Zhao,et al. Proteomic analysis of copper stress responses in the roots of two rice (Oryza sativa L.) varieties differing in Cu tolerance , 2013, Plant and Soil.
[69] L. Zagorchev,et al. A Central Role for Thiols in Plant Tolerance to Abiotic Stress , 2013, International journal of molecular sciences.
[70] A. Christou,et al. Hydrogen sulfide induces systemic tolerance to salinity and non-ionic osmotic stress in strawberry plants through modification of reactive species biosynthesis and transcriptional regulation of multiple defence pathways , 2013, Journal of experimental botany.
[71] S. Dey,et al. The cysteine regulatory complex from plants and microbes: what was old is new again. , 2013, Current opinion in structural biology.
[72] P. Perata,et al. Low Oxygen Response Mechanisms in Green Organisms , 2013, International journal of molecular sciences.
[73] L. Romero,et al. L-Cysteine Desulfhydrase 1 modulates the generation of the signaling molecule sulfide in plant cytosol , 2013, Plant signaling & behavior.
[74] L. Romero,et al. S-sulfocysteine synthase function in sensing chloroplast redox status , 2013, Plant signaling & behavior.
[75] J. Crespo,et al. Cysteine-Generated Sulfide in the Cytosol Negatively Regulates Autophagy and Modulates the Transcriptional Profile in Arabidopsis[W] , 2012, Plant Cell.
[76] A. Pareek,et al. Clustered metallothionein genes are co-regulated in rice and ectopic expression of OsMT1e-P confers multiple abiotic stress tolerance in tobacco via ROS scavenging , 2012, BMC Plant Biology.
[77] L. Sweetlove,et al. Mitochondrial Cysteine Synthase Complex Regulates O-Acetylserine Biosynthesis in Plants* , 2012, The Journal of Biological Chemistry.
[78] Ping Liu,et al. Hydrogen sulfide is a mediator in H2O2-induced seed germination in Jatropha Curcas , 2012, Acta Physiologiae Plantarum.
[79] W. Shen,et al. Roles of hydrogen sulfide and nitric oxide in the alleviation of cadmium-induced oxidative damage in alfalfa seedling roots , 2012, BioMetals.
[80] Zhong-Guang Li,et al. Hydrogen sulfide donor sodium hydrosulfide-induced heat tolerance in tobacco (Nicotiana tabacum L) suspension cultured cells and involvement of Ca(2+) and calmodulin. , 2012, Plant science : an international journal of experimental plant biology.
[81] L. Zagorchev,et al. Redox state of low-molecular-weight thiols and disulphides during somatic embryogenesis of salt-treated suspension cultures of Dactylis glomerata L. , 2012, Free radical research.
[82] R. Wade,et al. Allosterically gated enzyme dynamics in the cysteine synthase complex regulate cysteine biosynthesis in Arabidopsis thaliana. , 2012, Structure.
[83] D. Ow,et al. Fission Yeast HMT1 Lowers Seed Cadmium through Phytochelatin-Dependent Vacuolar Sequestration in Arabidopsis1[C][W] , 2012, Plant Physiology.
[84] C. Foyer,et al. Glutathione in plants: an integrated overview. , 2012, Plant, cell & environment.
[85] Sheng Xu,et al. Hydrogen sulfide enhances alfalfa (Medicago sativa) tolerance against salinity during seed germination by nitric oxide pathway , 2012, Plant and Soil.
[86] S. Snyder,et al. Hydrogen sulfide-linked sulfhydration of NF-κB mediates its antiapoptotic actions. , 2012, Molecular cell.
[87] S. Shiu,et al. Evolutionary Relationships and Functional Diversity of Plant Sulfate Transporters , 2011, Front. Plant Sci..
[88] Zhuping Jin,et al. Hydrogen sulfide improves drought resistance in Arabidopsis thaliana. , 2011, Biochemical and biophysical research communications.
[89] J. Hancock,et al. Hydrogen sulfide effects on stomatal apertures , 2011, Plant signaling & behavior.
[90] Jeffrey C. Cameron,et al. Plant Glutathione Biosynthesis: Diversity in Biochemical Regulation and Reaction Products , 2011, Front. Plant Sci..
[91] G. Falasca,et al. Cadmium tolerance and phytochelatin content of Arabidopsis seedlings over-expressing the phytochelatin synthase gene AtPCS1 , 2011, Journal of experimental botany.
[92] Zhao‐Jun Wei,et al. Hydrogen sulfide acts as a regulator of flower senescence in plants , 2011 .
[93] Z. Pei,et al. Hydrogen sulphide enhances photosynthesis through promoting chloroplast biogenesis, photosynthetic enzyme expression, and thiol redox modification in Spinacia oleracea seedlings , 2011, Journal of experimental botany.
[94] Hideki Takahashi,et al. Sulfur assimilation in photosynthetic organisms: molecular functions and regulations of transporters and assimilatory enzymes. , 2011, Annual review of plant biology.
[95] H. Puchta,et al. Homologs of Breast Cancer Genes in Plants , 2011, Front. Plant Sci..
[96] C. Foyer,et al. Ascorbate and Glutathione: The Heart of the Redox Hub1 , 2011, Plant Physiology.
[97] C. García-Mata,et al. Hydrogen sulphide, a novel gasotransmitter involved in guard cell signalling. , 2010, The New phytologist.
[98] J. Hancock,et al. A novel hydrogen sulfide donor causes stomatal opening and reduces nitric oxide accumulation. , 2010, Plant physiology and biochemistry : PPB.
[99] L. Romero,et al. Low abundance does not mean less importance in cysteine metabolism , 2010, Plant signaling & behavior.
[100] L. Taconnat,et al. Arabidopsis GLUTATHIONE REDUCTASE1 Plays a Crucial Role in Leaf Responses to Intracellular Hydrogen Peroxide and in Ensuring Appropriate Gene Expression through Both Salicylic Acid and Jasmonic Acid Signaling Pathways1[C][W][OA] , 2010, Plant Physiology.
[101] R. Banerjee,et al. Redox Biochemistry of Hydrogen Sulfide* , 2010, The Journal of Biological Chemistry.
[102] C. Blindauer,et al. Metallothioneins: unparalleled diversity in structures and functions for metal ion homeostasis and more. , 2010, Natural product reports.
[103] Y. Zuily-Fodil,et al. Homoglutathione synthetase and glutathione synthetase in drought-stressed cowpea leaves: expression patterns and accumulation of low-molecular-weight thiols. , 2010, Journal of plant physiology.
[104] Zhao‐Jun Wei,et al. Hydrogen sulfide protects soybean seedlings against drought-induced oxidative stress , 2010, Acta Physiologiae Plantarum.
[105] L. Romero,et al. An O-Acetylserine(thiol)lyase Homolog with l-Cysteine Desulfhydrase Activity Regulates Cysteine Homeostasis in Arabidopsis1[C][W] , 2009, Plant Physiology.
[106] G. An,et al. Orthologs of the Class A4 Heat Shock Transcription Factor HsfA4a Confer Cadmium Tolerance in Wheat and Rice[C][W] , 2009, The Plant Cell Online.
[107] S. Snyder,et al. H2S Signals Through Protein S-Sulfhydration , 2009, Science Signaling.
[108] D. Peršoh,et al. Multi-tasking phytochelatin synthases , 2009 .
[109] G. Queval,et al. H2O2-activated up-regulation of glutathione in Arabidopsis involves induction of genes encoding enzymes involved in cysteine synthesis in the chloroplast. , 2009, Molecular plant.
[110] H. Hesse,et al. Analysis of cytosolic and plastidic serine acetyltransferase mutants and subcellular metabolite distributions suggests interplay of the cellular compartments for cysteine biosynthesis in Arabidopsis. , 2008, Plant, cell & environment.
[111] E. Freisinger. Plant MTs-long neglected members of the metallothionein superfamily. , 2008, Dalton transactions.
[112] L. Romero,et al. Cytosolic cysteine in redox signaling , 2008, Plant signaling & behavior.
[113] S. Tabata,et al. Comparative Genomics and Reverse Genetics Analysis Reveal Indispensable Functions of the Serine Acetyltransferase Gene Family in Arabidopsis[W][OA] , 2008, The Plant Cell Online.
[114] L. Romero,et al. Knocking Out Cytosolic Cysteine Synthesis Compromises the Antioxidant Capacity of the Cytosol to Maintain Discrete Concentrations of Hydrogen Peroxide in Arabidopsis1[W] , 2008, Plant Physiology.
[115] P. Goldsbrough,et al. Examining the Specific Contributions of Individual Arabidopsis Metallothioneins to Copper Distribution and Metal Tolerance1[OA] , 2008, Plant Physiology.
[116] Dan Chen,et al. Characteristic and Expression Analysis of a Metallothionein Gene, OsMT2b, Down-Regulated by Cytokinin Suggests Functions in Root Development and Seed Embryo Germination of Rice1[OA] , 2008, Plant Physiology.
[117] Mun'delanji C. Vestergaard,et al. Chelation of Cadmium Ions by Phytochelatin Synthase: Role of the Cystein-rich C-Terminal , 2008, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[118] E. Pilon-Smits,et al. The functions of NifS-like proteins in plant sulfur and selenium metabolism , 2008 .
[119] M. Gutensohn,et al. Analysis of the Arabidopsis O-Acetylserine(thiol)lyase Gene Family Demonstrates Compartment-Specific Differences in the Regulation of Cysteine Synthesis[W] , 2008, The Plant Cell Online.
[120] Jean-Pierre Jacquot,et al. Redox-sensitive GFP in Arabidopsis thaliana is a quantitative biosensor for the redox potential of the cellular glutathione redox buffer. , 2007, The Plant journal : for cell and molecular biology.
[121] Kazuki Saito,et al. Physiological Roles of the β-Substituted Alanine Synthase Gene Family in Arabidopsis1[W][OA] , 2007, Plant Physiology.
[122] J. Papenbrock,et al. Characterization of cysteine-degrading and H2S-releasing enzymes of higher plants - from the field to the test tube and back. , 2007, Plant biology.
[123] B. Poinssot,et al. Identification of PAD2 as a gamma-glutamylcysteine synthetase highlights the importance of glutathione in disease resistance of Arabidopsis. , 2006, The Plant journal : for cell and molecular biology.
[124] T. Reiter,et al. NO• chemistry: a diversity of targets in the cell , 2006, Redox report : communications in free radical research.
[125] P. Moore,et al. Evidence for the formation of a novel nitrosothiol from the gaseous mediators nitric oxide and hydrogen sulphide. , 2006, Biochemical and biophysical research communications.
[126] S. Clemens. Evolution and function of phytochelatin synthases. , 2006, Journal of plant physiology.
[127] R. Hell,et al. Functional analysis of the cysteine synthase protein complex from plants: structural, biochemical and regulatory properties. , 2006, Journal of plant physiology.
[128] M. George Cherian,et al. Metallothionein and Liver Cell Regeneration , 2006, Experimental biology and medicine.
[129] Jiangbo Guo,et al. Coordinated responses of phytochelatins and metallothioneins to heavy metals in garlic seedlings , 2005 .
[130] J. Jez,et al. Molecular Basis of Cysteine Biosynthesis in Plants , 2005, Journal of Biological Chemistry.
[131] Thomas Rausch,et al. Sulfur metabolism: a versatile platform for launching defence operations. , 2005, Trends in plant science.
[132] R. Leplae,et al. Variations in plant metallothioneins: the heavy metal hyperaccumulator Thlaspi caerulescens as a study case , 2005, Planta.
[133] O. Dhankher,et al. Arsenic and mercury tolerance and cadmium sensitivity in Arabidopsis plants expressing bacterial γ‐glutamylcysteine synthetase , 2005, Environmental toxicology and chemistry.
[134] J. Vangronsveld,et al. Cadmium tolerance in Thlaspi caerulescens: I. Growth parameters, metal accumulation and phytochelatin synthesis in response to cadmium , 2005 .
[135] A. Puppo,et al. Glutathione and homoglutathione play a critical role in the nodulation process of Medicago truncatula. , 2005, Molecular plant-microbe interactions : MPMI.
[136] J. Tzen,et al. Cloning and Expression of a Seed-Specific Metallothionein-Like Protein from Sesame , 2005, Bioscience, biotechnology, and biochemistry.
[137] M. Noji,et al. Characterization and Expression Analysis of a Serine Acetyltransferase Gene Family Involved in a Key Step of the Sulfur Assimilation Pathway in Arabidopsis1 , 2005, Plant Physiology.
[138] J. Schroeder,et al. Overexpression of phytochelatin synthase in Arabidopsis leads to enhanced arsenic tolerance and cadmium hypersensitivity. , 2004, Plant & cell physiology.
[139] P. Goldsbrough,et al. A plant type 2 metallothionein (MT) from cork tissue responds to oxidative stress. , 2004, Journal of experimental botany.
[140] M. Ynsa,et al. Increased cysteine availability is essential for cadmium tolerance and accumulation in Arabidopsis thaliana. , 2004, Plant biotechnology journal.
[141] M. Wójcik,et al. Phytochelatin synthesis and cadmium localization in wild type of Arabidopsis thaliana , 2004, Plant Growth Regulation.
[142] P. A. Rea,et al. Weeds, Worms, and More. Papain's Long-Lost Cousin, Phytochelatin Synthase12 , 2004, Plant Physiology.
[143] R. Hell,et al. O-acetylserine (thiol) lyase: an enigmatic enzyme of plant cysteine biosynthesis revisited in Arabidopsis thaliana. , 2004, Journal of experimental botany.
[144] M. Tausz,et al. The glutathione system as a stress marker in plant ecophysiology: is a stress-response concept valid? , 2004, Journal of experimental botany.
[145] P. Goldsbrough,et al. Higher levels of ectopic expression of Arabidopsis phytochelatin synthase do not lead to increased cadmium tolerance and accumulation , 2003 .
[146] P. Goldsbrough,et al. Characterization of the Arabidopsis metallothionein gene family: tissue-specific expression and induction during senescence and in response to copper. , 2003, The New phytologist.
[147] A. Wachter,et al. Phytochelatin synthase (PCS) protein is induced in Brassica juncea leaves after prolonged Cd exposure. , 2003, Journal of experimental botany.
[148] J. R. Howarth,et al. The serine acetyltransferase gene family in Arabidopsis thaliana and the regulation of its expression by cadmium , 2003, Plant Molecular Biology.
[149] P. Goldsbrough,et al. Overexpression of Arabidopsis Phytochelatin Synthase Paradoxically Leads to Hypersensitivity to Cadmium Stress1 , 2003, Plant Physiology.
[150] E. Blumwald,et al. Salinity-induced glutathione synthesis in Brassica napus , 2002, Planta.
[151] C. Brunold,et al. Increasing the Glutathione Content in a Chilling-Sensitive Maize Genotype Using Safeners Increased Protection against Chilling-Induced Injury , 2001 .
[152] M. Fricker,et al. Quantitative in vivo measurement of glutathione in Arabidopsis cells. , 2001, The Plant journal : for cell and molecular biology.
[153] P. A. Rea,et al. A New Pathway for Heavy Metal Detoxification in Animals , 2001, The Journal of Biological Chemistry.
[154] C. Xiang,et al. The biological functions of glutathione revisited in arabidopsis transgenic plants with altered glutathione levels. , 2001, Plant physiology.
[155] M. C. Rubio,et al. Glutathione and homoglutathione synthetases of legume nodules. Cloning, expression, and subcellular localization. , 2000, Plant physiology.
[156] R. Hell,et al. Genomic and functional characterization of the oas gene family encoding O-acetylserine (thiol) lyases, enzymes catalyzing the final step in cysteine biosynthesis in Arabidopsis thaliana. , 2000, Gene.
[157] K. Saito,et al. beta-Cyanoalanine synthase is a mitochondrial cysteine synthase-like protein in spinach and Arabidopsis. , 2000, Plant physiology.
[158] C. Cobbett. Phytochelatins and their roles in heavy metal detoxification. , 2000, Plant physiology.
[159] Y. Yamaguchi,et al. Three Arabidopsis genes encoding proteins with differential activities for cysteine synthase and beta-cyanoalanine synthase. , 2000, Plant & cell physiology.
[160] I. Iturbe-Ormaetxe,et al. Glutathione and homoglutathione synthesis in legume root nodules. , 1999, Plant physiology.
[161] P. Stamp,et al. Effect of growing season on the photosynthetic apparatus and leaf antioxidative defenses in two maize genotypes of different chilling tolerance , 1999 .
[162] J. Schroeder,et al. Tolerance to toxic metals by a gene family of phytochelatin synthases from plants and yeast , 1999, The EMBO journal.
[163] P. A. Rea,et al. AtPCS1, a phytochelatin synthase from Arabidopsis: isolation and in vitro reconstitution. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[164] C. Cobbett,et al. Phytochelatin Synthase Genes from Arabidopsis and the Yeast Schizosaccharomyces pombe , 1999, Plant Cell.
[165] C. Foyer,et al. Manipulation of glutathione and amino acid biosynthesis in the chloroplast , 1998, Plant physiology.
[166] C. Xiang,et al. Glutathione Metabolic Genes Coordinately Respond to Heavy Metals and Jasmonic Acid in Arabidopsis , 1998, Plant Cell.
[167] C. Foyer,et al. ASCORBATE AND GLUTATHIONE: Keeping Active Oxygen Under Control. , 1998, Annual review of plant physiology and plant molecular biology.
[168] T. Rausch,et al. cDNA cloning and expression analysis of genes encoding GSH synthesis in roots of the heavy-metal accumulator Brassica juncea L.: evidence for Cd-induction of a putative mitochondrial γ-glutamylcysteine synthetase isoform , 1998, Plant Molecular Biology.
[169] W. Van Camp,et al. Catalase is a sink for H2O2 and is indispensable for stress defence in C3 plants , 1997, The EMBO journal.
[170] L. Jouanin,et al. The role of glycine in determining the rate of glutathione synthesis in poplar. Possible implications for glutathione production during stress , 1997 .
[171] P. Goldsbrough,et al. Purification and Immunological Identification of Metallothioneins 1 and 2 from Arabidopsis thaliana , 1997, Plant physiology.
[172] T. Rausch,et al. In seedlings of the heavy metal accumulator Brassica juncea Cu2+ differentially affects transcript amounts for γ‐glutamylcysteine synthetase (γ‐ECS) and metallothionein (MT2) , 1997 .
[173] L. Jouanin,et al. Synthesis of Glutathione in Leaves of Transgenic Poplar Overexpressing [gamma]-Glutamylcysteine Synthetase , 1996, Plant physiology.
[174] K. Marrs. THE FUNCTIONS AND REGULATION OF GLUTATHIONE S-TRANSFERASES IN PLANTS. , 1996, Annual review of plant physiology and plant molecular biology.
[175] W. E. Rauser. Phytochelatins and Related Peptides (Structure, Biosynthesis, and Function) , 1995, Plant physiology.
[176] L. Jouanin,et al. Overexpression of Glutathione Reductase but Not Glutathione Synthetase Leads to Increases in Antioxidant Capacity and Resistance to Photoinhibition in Poplar Trees , 1995, Plant physiology.
[177] P. Goldsbrough,et al. Structure, organization and expression of the metallothionein gene family inArabidopsis , 1995, Molecular and General Genetics MGG.
[178] P. Thibault,et al. Three families of thiol peptides are induced by cadmium in maize. , 1995, The Plant journal : for cell and molecular biology.
[179] S. Schneider,et al. Regulation of Glutathione Synthesis in Suspension Cultures of Parsley and Tobacco , 1995 .
[180] S. Klapheck,et al. Synthesis of Phytochelatins and Homo-Phytochelatins in Pisum sativum L , 1995, Plant physiology.
[181] S. Ledger,et al. Cloning and characterization of five cDNAs for genes differentially expressed during fruit development of kiwifruit (Actinidia deliciosa var.deliciosa) , 1994, Plant Molecular Biology.
[182] I. Zimmer,et al. Hydroxymethyl-Phytochelatins [([gamma]-Glutamylcysteine)n-Serine] Are Metal-Induced Peptides of the Poaceae , 1994, Plant physiology.
[183] M. May,et al. Oxidative Stimulation of Glutathione Synthesis in Arabidopsis thaliana Suspension Cultures , 1993, Plant physiology.
[184] R. Hell,et al. λ-Glutamylcysteine synthetase in higher plants: catalytic properties and subcellular localization , 1990, Planta.
[185] P. Schröder,et al. Emission of volatile sulfur compounds from spruce trees. , 1990, Plant physiology.
[186] A. Meister. Glutathione metabolism and its selective modification. , 1988, The Journal of biological chemistry.
[187] B. Lane,et al. The wheat-germ Ec protein is a zinc-containing metallothionein , 1987 .
[188] G. Kats,et al. Effects of continuous hydrogen sulfide fumigation on crop and forest plants , 1978 .
[189] L. G. Wilson,et al. Light-dependent Emission of Hydrogen Sulfide from Plants. , 1978, Plant physiology.
[190] J. P. Hollis,et al. Nematodes: Biological Control in Rice Fields: Role of Hydrogen Sulfide , 1965, Science.
[191] Z. H. Siddiqui,et al. Role of nanomaterials in plants under challenging environments. , 2017, Plant physiology and biochemistry : PPB.
[192] X. Bai,et al. MAN3 gene regulates cadmium tolerance through the glutathione-dependent pathway in Arabidopsis thaliana. , 2015, The New phytologist.
[193] R. Hell,et al. Evidence for several cysteine transport mechanisms in the mitochondrial membranes of Arabidopsis thaliana. , 2014, Plant & cell physiology.
[194] Dietmar Rieder,et al. A novel RB E3 Ubiquitin Ligase (NRBE3) promotes cancer cell proliferation through a regulation loop with RB/E2F1 , 2013 .
[195] Hua Li,et al. Hydrogen sulfide interacting with abscisic acid in stomatal regulation responses to drought stress in Arabidopsis. , 2013, Plant physiology and biochemistry : PPB.
[196] L. Folkes,et al. Reactivity of hydrogen sulfide with peroxynitrite and other oxidants of biological interest. , 2011, Free radical biology & medicine.
[197] D. Jaillard,et al. Increased intracellular H₂O₂ availability preferentially drives glutathione accumulation in vacuoles and chloroplasts. , 2011, Plant, cell & environment.
[198] Maria Müller,et al. Modified Levels of Cysteine Affect Glutathione Metabolism in Plant Cells , 2008 .
[199] W. E. Rauser. Structure and function of metal chelators produced by plants , 2007, Cell Biochemistry and Biophysics.
[200] M. Crowe,et al. Developing pineapple fruit has a small transcriptome dominated by metallothionein. , 2005, Journal of experimental botany.
[201] R. Henry,et al. cDNA microarray analysis of developing grape (Vitis vinifera cv. Shiraz) berry skin , 2004, Functional & Integrative Genomics.
[202] B. Halliwell,et al. The presence of glutathione and glutathione reductase in chloroplasts: A proposed role in ascorbic acid metabolism , 2004, Planta.
[203] M. Tausz,et al. The Role of Thiols in Plant Adaptation to Environmental Stress , 2003 .
[204] C. Cobbett. Metallothioneins and Phytochelatins: Molecular Aspects , 2003 .
[205] C. Cobbett,et al. Phytochelatins and metallothioneins: roles in heavy metal detoxification and homeostasis. , 2002, Annual review of plant biology.
[206] P. von Ballmoos,et al. Increasing the glutathione content in a chilling-sensitive maize genotype using safeners increased protection against chilling-induced injury. , 2001, Plant physiology.
[207] S. Kopriva,et al. Influence of Chilling Stress on the Intercellular Distribution of Assimilatory Sulfate Reduction and Thiols in Zea mays , 2001 .
[208] M. Tausz,et al. Significance of Glutathione to Plant Adaptation to the Environment , 2001, Plant Ecophysiology.
[209] P. von Ballmoos,et al. Inhibition of glutathione synthesis reduces chilling tolerance in maize , 2000, Planta.
[210] L. Jouanin,et al. Modification of thiol contents in poplars (Populus tremula × P. alba) overexpressing enzymes involved in glutathione synthesis , 1997, Planta.
[211] L. Jouanin,et al. Regulation of glutathione synthesis in leaves of transgenic poplar (Populus tremula X P. alba) overexpressing glutathione synthetase , 1995 .
[212] P. Jackson,et al. Plant metallothioneins. , 1993, The Biochemical journal.
[213] A. W. Naylor,et al. Effect of valinomycin and gramicidin d on the reflection coefficient of soybean root systems. , 1980, Plant physiology.