Pollen development and function under heat stress: from effects to responses
暂无分享,去创建一个
[1] Xuan Xu,et al. Reactive oxygen species and heavy metal stress in plants: Impact on the cell wall and secondary metabolism , 2019, Environmental and Experimental Botany.
[2] M. Farooq,et al. Thermal Stress Impacts on Reproductive Development and Grain Yield in Grain Legumes , 2018, Journal of Plant Biology.
[3] F. Blanco-Herrera,et al. Modulation of Auxin Levels in Pollen Grains Affects Stamen Development and Anther Dehiscence in Arabidopsis , 2018, International journal of molecular sciences.
[4] P. Kyle,et al. Risk of increased food insecurity under stringent global climate change mitigation policy , 2018, Nature Climate Change.
[5] R. Siciliano,et al. Response mechanisms induced by exposure to high temperature in anthers from thermo-tolerant and thermo-sensitive tomato plants: A proteomic perspective , 2018, PloS one.
[6] Interactions of Brassinosteroids with Major Phytohormones: Antagonistic Effects , 2018, Journal of Plant Growth Regulation.
[7] Y. Ruan,et al. Evidence for a specific and critical role of mitogen-activated protein kinase 20 in uni-to-binucleate transition of microgametogenesis in tomato. , 2018, The New phytologist.
[8] T. Dresselhaus,et al. Epigenetic responses to abiotic stresses during reproductive development in cereals , 2018, Plant Reproduction.
[9] J. Hormaza,et al. Pollen wall development in mango (Mangifera indica L., Anacardiaceae) , 2018, Plant Reproduction.
[10] Ethylene production and signaling in tomato (Solanum lycopersicum) pollen grains is responsive to heat stress conditions , 2018, Plant Reproduction.
[11] R. C. Izaurralde,et al. Indicators of climate change in agricultural systems , 2018, Climatic Change.
[12] Ajay Saini,et al. Heat-stress priming and alternative splicing-linked memory , 2018, Journal of experimental botany.
[13] Matthew H. Koski,et al. Geographic variation in pollen color is associated with temperature stress. , 2018, The New phytologist.
[14] V. S. Bhatia,et al. Screening soybean genotypes for high temperature tolerance by in vitro pollen germination, pollen tube length, reproductive efficiency and seed yield , 2018, Indian Journal of Plant Physiology.
[15] W. Vriezen,et al. Exploring the natural variation for reproductive thermotolerance in wild tomato species , 2018, Euphytica.
[16] Ting Chen,et al. Heat stress induces spikelet sterility in rice at anthesis through inhibition of pollen tube elongation interfering with auxin homeostasis in pollinated pistils , 2018, Rice.
[17] Dabing Zhang,et al. The role of receptor-like kinases in regulating plant male reproduction , 2018, Plant Reproduction.
[18] Hong-Ju Li,et al. Multilayered signaling pathways for pollen tube growth and guidance , 2018, Plant Reproduction.
[19] H. Robert,et al. Auxin production as an integrator of environmental cues for developmental growth regulation. , 2018, Journal of experimental botany.
[20] H. Cho,et al. Genome-wide Analysis of Alternative Splicing in An Inbred Cabbage (Brassica oleracea L.) Line ‘HO’ in Response to Heat Stress , 2017, Current genomics.
[21] P. Duque,et al. Alternative Splicing Control of Abiotic Stress Responses. , 2017, Trends in plant science.
[22] Katja E. Jaeger,et al. Transcriptional Regulation of the Ambient Temperature Response by H2A.Z Nucleosomes and HSF1 Transcription Factors in Arabidopsis. , 2017, Molecular plant.
[23] High temperature-induced production of unreduced pollen and its cytological effects in Populus , 2017, Scientific Reports.
[24] P. Testillano,et al. Inhibition of Histone H3K9 Methylation by BIX-01294 Promotes Stress-Induced Microspore Totipotency and Enhances Embryogenesis Initiation , 2017, Front. Plant Sci..
[25] R. Visser,et al. Screening for pollen tolerance to high temperatures in tomato , 2017, Euphytica.
[26] Impa M. Somayanda,et al. Resilience of Pollen and Post-Flowering Response in Diverse Sorghum Genotypes Exposed to Heat Stress under Field Conditions , 2017 .
[27] F. Brandizzi,et al. Maintaining the factory: the roles of the unfolded protein response in cellular homeostasis in plants. , 2017, The Plant journal : for cell and molecular biology.
[28] Hong-Tao Xie,et al. Reactive oxygen species mediate tapetal programmed cell death in tobacco and tomato , 2017, BMC Plant Biology.
[29] K. Kuchitsu,et al. Autophagy, programmed cell death and reactive oxygen species in sexual reproduction in plants , 2017, Journal of Plant Research.
[30] S. Howell,et al. The Unfolded Protein Response Supports Plant Development and Defense as well as Responses to Abiotic Stress , 2017, Front. Plant Sci..
[31] W. Karłowski,et al. Dual Role of the Histone Variant H2A.Z in Transcriptional Regulation of Stress-Response Genes[OPEN] , 2017, Plant Cell.
[32] N. Firon,et al. Pollen Development at High Temperature: From Acclimation to Collapse1[OPEN] , 2017, Plant Physiology.
[33] E. Coissac,et al. The evolutionary fate of the chloroplast and nuclear rps16 genes as revealed through the sequencing and comparative analyses of four novel legume chloroplast genomes from Lupinus , 2017, DNA research : an international journal for rapid publication of reports on genes and genomes.
[34] P. Costantino,et al. An auxin maximum in the middle layer controls stamen development and pollen maturation in Arabidopsis. , 2017, The New phytologist.
[35] Ligeng Ma,et al. Alternative Splicing in Plant Genes: A Means of Regulating the Environmental Fitness of Plants , 2017, International journal of molecular sciences.
[36] Shaohua Li,et al. Integrating Omics and Alternative Splicing Reveals Insights into Grape Response to High Temperature1[OPEN] , 2017, Plant Physiology.
[37] E. Schleiff,et al. Alternative splicing in tomato pollen in response to heat stress† , 2016, DNA research : an international journal for rapid publication of reports on genes and genomes.
[38] H. Kaur,et al. Hormonal regulation of reproductive growth under normal and heat-stress conditions in legume and other model crop species , 2016, Journal of experimental botany.
[39] R. Mittler. ROS Are Good. , 2017, Trends in plant science.
[40] K. Shinozaki,et al. Transcriptional Regulatory Network of Plant Heat Stress Response. , 2017, Trends in plant science.
[41] Tetsuya Higashiyama,et al. Gametophytic Pollen Tube Guidance: Attractant Peptides, Gametic Controls, and Receptors1[OPEN] , 2016, Plant Physiology.
[42] G. Coupland,et al. Competence to Flower: Age-Controlled Sensitivity to Environmental Cues1[OPEN] , 2016, Plant Physiology.
[43] S. Sankaranarayanan,et al. Structure-Activity Relation of AMOR Sugar Molecule That Activates Pollen-Tubes for Ovular Guidance1[OPEN] , 2016, Plant Physiology.
[44] Hyun Kyung Lee,et al. Pollen Acceptance or Rejection: A Tale of Two Pathways. , 2016, Trends in plant science.
[45] S. Howell,et al. IRE1, a component of the unfolded protein response signaling pathway, protects pollen development in Arabidopsis from heat stress. , 2016, The Plant journal : for cell and molecular biology.
[46] S. Howell,et al. Managing the protein folding demands in the endoplasmic reticulum of plants. , 2016, The New phytologist.
[47] F. Van Breusegem,et al. Spreading the news: subcellular and organellar reactive oxygen species production and signalling. , 2016, Journal of experimental botany.
[48] L. Schreiber,et al. Defective Pollen Wall 2 (DPW2) Encodes an Acyl Transferase Required for Rice Pollen Development1[OPEN] , 2016, Plant Physiology.
[49] Nobuhiro Suzuki,et al. ROS, Calcium, and Electric Signals: Key Mediators of Rapid Systemic Signaling in Plants1[OPEN] , 2016, Plant Physiology.
[50] D. Bartels,et al. Lipid signalling in plant responses to abiotic stress. , 2016, Plant, cell & environment.
[51] Prakash P. Kumar,et al. Plant hormone-mediated regulation of stress responses , 2016, BMC Plant Biology.
[52] I. Rieu,et al. Acclimation to high temperature during pollen development , 2016, Plant Reproduction.
[53] J. A. Traverso,et al. NADPH Oxidase-Dependent Superoxide Production in Plant Reproductive Tissues , 2016, Front. Plant Sci..
[54] E. Schleiff,et al. Unfolded protein response in pollen development and heat stress tolerance , 2016, Plant Reproduction.
[55] A. Millar,et al. The Roles of Mitochondrial Reactive Oxygen Species in Cellular Signaling and Stress Response in Plants1[OPEN] , 2016, Plant Physiology.
[56] N. Firon,et al. Heat stress regimes for the investigation of pollen thermotolerance in crop plants , 2016, Plant Reproduction.
[57] Y. Ruan,et al. Critical Roles of Vacuolar Invertase in Floral Organ Development and Male and Female Fertilities Are Revealed through Characterization of GhVIN1-RNAi Cotton Plants1[OPEN] , 2016, Plant Physiology.
[58] E. Schleiff,et al. HsfA2 Controls the Activity of Developmentally and Stress-Regulated Heat Stress Protection Mechanisms in Tomato Male Reproductive Tissues1[OPEN] , 2016, Plant Physiology.
[59] G. Wessel,et al. Fertilization Mechanisms in Flowering Plants , 2016, Current Biology.
[60] Nobuhiro Suzuki,et al. ABA Is Required for Plant Acclimation to a Combination of Salt and Heat Stress , 2016, PloS one.
[61] J. Lämke,et al. A hit‐and‐run heat shock factor governs sustained histone methylation and transcriptional stress memory , 2016, The EMBO journal.
[62] M. Nepi,et al. It is a matter of timing: asynchrony during pollen development and its consequences on pollen performance in angiosperms—a review , 2016, Protoplasma.
[63] E. Schleiff,et al. HsfA 2 Controls the Activity of Developmentally and Stress-Regulated Heat Stress Protection Mechanisms in Tomato Male Reproductive Tissues 1 [ OPEN ] , 2016 .
[64] J. Fíla,et al. Male gametophyte development and function in angiosperms: a general concept , 2016, Plant Reproduction.
[65] K. Jung,et al. Defective Tapetum Cell Death 1 (DTC1) Regulates ROS Levels by Binding to Metallothionein during Tapetum Degeneration1[OPEN] , 2015, Plant Physiology.
[66] H. Nayyar,et al. Responses of mungbean (Vigna radiata L.) genotypes to heat stress: Effects on reproductive biology, leaf function and yield traits , 2015 .
[67] P. Winter,et al. Epigenetic events in plant male germ cell heat stress responses , 2015, Plant Reproduction.
[68] Z. Wilson,et al. Anther and pollen development: A conserved developmental pathway , 2015, Journal of integrative plant biology.
[69] E. Pressman,et al. Heat-Treatment-Responsive Proteins in Different Developmental Stages of Tomato Pollen Detected by Targeted Mass Accuracy Precursor Alignment (tMAPA). , 2015, Journal of proteome research.
[70] Björn Rotter,et al. Identification of novel small ncRNAs in pollen of tomato , 2015, BMC Genomics.
[71] C. Faleri,et al. Heat stress affects the cytoskeleton and the delivery of sucrose synthase in tobacco pollen tubes , 2015, Planta.
[72] D. Funck,et al. Role of proline and GABA in sexual reproduction of angiosperms , 2015, Front. Plant Sci..
[73] F. Berger,et al. Chromatin remodelling during male gametophyte development. , 2015, The Plant journal : for cell and molecular biology.
[74] S. Munné-Bosch,et al. Ethylene Response Factors: A Key Regulatory Hub in Hormone and Stress Signaling1 , 2015, Plant Physiology.
[75] Xiangdong Fu,et al. A Gibberellin-Mediated DELLA-NAC Signaling Cascade Regulates Cellulose Synthesis in Rice[OPEN] , 2015, Plant Cell.
[76] C. Foyer,et al. Interplay between reactive oxygen species and hormones in the control of plant development and stress tolerance. , 2015, Journal of experimental botany.
[77] T. Higashiyama,et al. The mechanism and key molecules involved in pollen tube guidance. , 2015, Annual review of plant biology.
[78] Frank Vogler,et al. Knockin' on pollen's door: live cell imaging of early polarization events in germinating Arabidopsis pollen , 2015, Front. Plant Sci..
[79] R. C. Symonds,et al. Expression of genes for the biosynthesis of compatible solutes during pollen development under heat stress in tomato (Solanum lycopersicum). , 2015, Journal of plant physiology.
[80] E. Schleiff,et al. Chaperone network composition in Solanum lycopersicum explored by transcriptome profiling and microarray meta-analysis. , 2015, Plant, cell & environment.
[81] Kemal Kazan,et al. Diverse roles of jasmonates and ethylene in abiotic stress tolerance. , 2015, Trends in plant science.
[82] Anther response to high-temperature stress during development and pollen thermotolerance heterosis as revealed by pollen tube growth and in vitro pollen vigor analysis in upland cotton , 2015, Planta.
[83] Guo‐Liang Wang,et al. Comparative phosphoproteome analysis of Magnaporthe oryzae-responsive proteins in susceptible and resistant rice cultivars. , 2015, Journal of proteomics.
[84] M. Kanaoka,et al. Apoplastic ROS production upon pollination by RbohH and RbohJ in Arabidopsis , 2015, Plant signaling & behavior.
[85] R. Slotkin,et al. ARGONAUTE 6 bridges transposable element mRNA‐derived siRNAs to the establishment of DNA methylation , 2015, The EMBO journal.
[86] M. Schmid,et al. Control of flowering by ambient temperature. , 2015, Journal of experimental botany.
[87] Julie A. Dickerson,et al. Comparisons of computational methods for differential alternative splicing detection using RNA-seq in plant systems , 2014, BMC Bioinformatics.
[88] A. Roychoudhury,et al. Reactive oxygen species (ROS) and response of antioxidants as ROS-scavengers during environmental stress in plants , 2014, Front. Environ. Sci..
[89] R. Scheibe,et al. Pollen tube growth: where does the energy come from? , 2014, Plant signaling & behavior.
[90] C. Douglas,et al. New views of tapetum ultrastructure and pollen exine development in Arabidopsis thaliana. , 2014, Annals of botany.
[91] A. W. van Heusden,et al. The Metabolic Basis of Pollen Thermo-Tolerance: Perspectives for Breeding , 2014, Metabolites.
[92] Xuebin Zhang,et al. Spatial and temporal variations of regional high temperature events in China , 2014 .
[93] S. Mitra,et al. Understanding the pollen and ovule characters and fruit set of fruit crops in relation to temperature and genotype – a review , 2014 .
[94] Hong-Tao Xie,et al. Spatiotemporal Production of Reactive Oxygen Species by NADPH Oxidase Is Critical for Tapetal Programmed Cell Death and Pollen Development in Arabidopsis[C][W] , 2014, Plant Cell.
[95] R. Perumal,et al. Physiological differences among sorghum (Sorghum bicolor L. Moench) genotypes under high temperature stress , 2014 .
[96] T. Romeis,et al. Pollen tube NAD(P)H oxidases act as a speed control to dampen growth rate oscillations during polarized cell growth. , 2014, The Plant journal : for cell and molecular biology.
[97] L. Schreiber,et al. ABORTED MICROSPORES Acts as a Master Regulator of Pollen Wall Formation in Arabidopsis[C][W][OPEN] , 2014, Plant Cell.
[98] Kazuki Saito,et al. OsATG7 is required for autophagy-dependent lipid metabolism in rice postmeiotic anther development , 2014, Autophagy.
[99] D. Honys,et al. A new link between stress response and nucleolar function during pollen development in Arabidopsis mediated by AtREN1 protein. , 2014, Plant, cell & environment.
[100] T. Higashiyama,et al. Ca2+-Activated Reactive Oxygen Species Production by Arabidopsis RbohH and RbohJ Is Essential for Proper Pollen Tube Tip Growth[W] , 2014, Plant Cell.
[101] M. Lukac,et al. Effect of Rht alleles on the tolerance of wheat grain set to high temperature and drought stress during booting , 2017 .
[102] Liming Zhou,et al. A calcium-dependent protein kinase interacts with and activates a calcium channel to regulate pollen tube growth. , 2014, Molecular plant.
[103] Dabing Zhang,et al. Specification of tapetum and microsporocyte cells within the anther. , 2014, Current opinion in plant biology.
[104] A. Cheung,et al. Reactive oxygen species mediate pollen tube rupture to release sperm for fertilization in Arabidopsis , 2014, Nature Communications.
[105] P. Hedden,et al. The role of gibberellin signalling in plant responses to abiotic stress , 2014, Journal of Experimental Biology.
[106] P. Hedden,et al. DELLA activity is required for successful pollen development in the Columbia ecotype of Arabidopsis , 2013, The New phytologist.
[107] D. Geelen,et al. The impact of environmental stress on male reproductive development in plants: biological processes and molecular mechanisms , 2013, Plant, cell & environment.
[108] H. Pathak,et al. Ascorbic acid at pre-anthesis modulate the thermotolerance level of wheat (Triticum aestivum) pollen under heat stress , 2013, Journal of Plant Biochemistry and Biotechnology.
[109] K. Siddique,et al. Heat-stress-induced reproductive failures in chickpea (Cicer arietinum) are associated with impaired sucrose metabolism in leaves and anthers. , 2013, Functional plant biology : FPB.
[110] D. Lituiev,et al. ANXUR Receptor-Like Kinases Coordinate Cell Wall Integrity with Growth at the Pollen Tube Tip Via NADPH Oxidases , 2013, PLoS biology.
[111] Xuncheng Liu,et al. Involvement of histone modifications in plant abiotic stress responses. , 2013, Journal of integrative plant biology.
[112] K. L. Bokszczanin,et al. Perspectives on deciphering mechanisms underlying plant heat stress response and thermotolerance , 2013, Front. Plant Sci..
[113] W. Weckwerth,et al. Cell-specific analysis of the tomato pollen proteome from pollen mother cell to mature pollen provides evidence for developmental priming. , 2013, Journal of proteome research.
[114] W. Schapaugh,et al. Soybean Pollen Anatomy, Viability and Pod Set under High Temperature Stress , 2013 .
[115] G. Krouk,et al. ABA transport and transporters. , 2013, Trends in plant science.
[116] F. Takaiwa,et al. Recent Advances in Understanding the Control of Secretory Proteins by the Unfolded Protein Response in Plants , 2013, International journal of molecular sciences.
[117] Zhixiang Chen,et al. Silencing of tomato RBOH1 and MPK2 abolishes brassinosteroid-induced H₂O₂ generation and stress tolerance. , 2013, Plant, cell & environment.
[118] J. Nemhauser,et al. The Protein Chaperone HSP90 Can Facilitate the Divergence of Gene Duplicates , 2013, Genetics.
[119] S. Howell,et al. Endoplasmic Reticulum (ER) Stress Response and Its Physiological Roles in Plants , 2013, International journal of molecular sciences.
[120] D. Tan,et al. Reproductive biology of chickpea response to heat stress in the field is associated with the performance in controlled environments , 2013 .
[121] D. Geelen,et al. Sexual polyploidization in plants – cytological mechanisms and molecular regulation , 2013, The New phytologist.
[122] S. Rogers,et al. Cyclic Nucleotide Gated Channels 7 and 8 Are Essential for Male Reproductive Fertility , 2013, PloS one.
[123] Li-Ke Shen,et al. Ca2+-Dependent Protein Kinase11 and 24 Modulate the Activity of the Inward Rectifying K+ Channels in Arabidopsis Pollen Tubes[W] , 2013, Plant Cell.
[124] Shuxun Yu,et al. Transcriptomic analysis of differentially expressed genes during anther development in genetic male sterile and wild type cotton by digital gene-expression profiling , 2013, BMC Genomics.
[125] K. Jung,et al. Rice GLYCOSYLTRANSFERASE1 Encodes a Glycosyltransferase Essential for Pollen Wall Formation1[C][W][OA] , 2012, Plant Physiology.
[126] R. Mittler,et al. A Cyclic Nucleotide-Gated Channel (CNGC16) in Pollen Is Critical for Stress Tolerance in Pollen Reproductive Development1[W][OA] , 2012, Plant Physiology.
[127] M. Trovato,et al. Proline is required for male gametophyte development in Arabidopsis , 2012, BMC Plant Biology.
[128] Yamile Marquez,et al. Alternative splicing in plants – coming of age , 2012, Trends in plant science.
[129] E. Pressman,et al. Ethylene is involved in maintaining tomato (Solanum lycopersicum) pollen quality under heat-stress conditions , 2012, AoB PLANTS.
[130] R. Parish,et al. Tapetal development and abiotic stress: a centre of vulnerability. , 2012, Functional plant biology : FPB.
[131] A. Murphy,et al. ER-localized auxin transporter PIN8 regulates auxin homeostasis and male gametophyte development in Arabidopsis , 2012, Nature Communications.
[132] Xiaowei Han,et al. A heat-activated calcium-permeable channel--Arabidopsis cyclic nucleotide-gated ion channel 6--is involved in heat shock responses. , 2012, The Plant journal : for cell and molecular biology.
[133] M. Herrero,et al. Male–female interaction and temperature variation affect pollen performance in Citrus , 2012 .
[134] O. Nilsson,et al. Analysis of the Developmental Roles of the Arabidopsis Gibberellin 20-Oxidases Demonstrates That GA20ox1, -2, and -3 Are the Dominant Paralogs[C][W] , 2012, Plant Cell.
[135] R. Mittler,et al. How do plants feel the heat? , 2012, Trends in biochemical sciences.
[136] E. Pressman,et al. Variations in Carbohydrate Content and Sucrose-Metabolizing Enzymes in Tomato (Solanum lycopersicum L.) Stamen Parts during Pollen Maturation , 2012 .
[137] I. Ebersberger,et al. The plant heat stress transcription factor (Hsf) family: structure, function and evolution. , 2012, Biochimica et biophysica acta.
[138] T. Tsukamoto,et al. Pathfinding in angiosperm reproduction: pollen tube guidance by pistils ensures successful double fertilization , 2012, Wiley interdisciplinary reviews. Developmental biology.
[139] A. Hedhly. Sensitivity of flowering plant gametophytes to temperature fluctuations , 2011 .
[140] N. Suzuki,et al. Respiratory burst oxidases: the engines of ROS signaling. , 2011, Current opinion in plant biology.
[141] Nobutaka Mitsuda,et al. Arabidopsis HsfB1 and HsfB2b Act as Repressors of the Expression of Heat-Inducible Hsfs But Positively Regulate the Acquired Thermotolerance1[C][W][OA] , 2011, Plant Physiology.
[142] D. Oosterhuis,et al. How does timing, duration, and severity of heat stress influence pollen-pistil interactions in angiosperms? , 2011, Plant signaling & behavior.
[143] Chi Zhang,et al. The mechanisms of brassinosteroids' action: from signal transduction to plant development. , 2011, Molecular plant.
[144] K. Mishiba,et al. Arabidopsis IRE1 catalyses unconventional splicing of bZIP60 mRNA to produce the active transcription factor , 2011, Scientific reports.
[145] J. Chory,et al. Methylation of a Phosphatase Specifies Dephosphorylation and Degradation of Activated Brassinosteroid Receptors , 2011, Science Signaling.
[146] V. Rakitin,et al. Ethylene synthesis in petunia stigma tissues governs the growth of pollen tubes in progamic phase of fertilization , 2011, Russian Journal of Plant Physiology.
[147] Y. Charng,et al. The role of class A1 heat shock factors (HSFA1s) in response to heat and other stresses in Arabidopsis. , 2011, Plant, cell & environment.
[148] S. Rothstein,et al. Heat induces the splicing by IRE1 of a mRNA encoding a transcription factor involved in the unfolded protein response in Arabidopsis , 2011, Proceedings of the National Academy of Sciences.
[149] Jie Song,et al. The final split: the regulation of anther dehiscence. , 2011, Journal of experimental botany.
[150] Jörg D. Becker,et al. Whole Genome Analysis of Gene Expression Reveals Coordinated Activation of Signaling and Metabolic Pathways during Pollen-Pistil Interactions in Arabidopsis1[C][W] , 2011, Plant Physiology.
[151] Dabing Zhang,et al. Rice MADS3 Regulates ROS Homeostasis during Late Anther Development[W][OA] , 2011, Plant Cell.
[152] E. Schleiff,et al. Crosstalk between Hsp90 and Hsp70 Chaperones and Heat Stress Transcription Factors in Tomato[W] , 2011, Plant Cell.
[153] W. Fricke,et al. In planta function of compatible solute transporters of the AtProT family , 2010, Journal of experimental botany.
[154] R. Vabulas,et al. Protein folding in the cytoplasm and the heat shock response. , 2010, Cold Spring Harbor perspectives in biology.
[155] Yong Ding,et al. Dynamic changes in genome-wide histone H3 lysine 4 methylation patterns in response to dehydration stress in Arabidopsis thaliana , 2010, BMC Plant Biology.
[156] Hideyuki Takahashi,et al. Auxins reverse plant male sterility caused by high temperatures , 2010, Proceedings of the National Academy of Sciences.
[157] Hong Ma,et al. Brassinosteroids control male fertility by regulating the expression of key genes involved in Arabidopsis anther and pollen development , 2010, Proceedings of the National Academy of Sciences.
[158] P. Wigge,et al. H2A.Z-Containing Nucleosomes Mediate the Thermosensory Response in Arabidopsis , 2010, Cell.
[159] P. Craufurd,et al. Physiological and proteomic approaches to address heat tolerance during anthesis in rice (Oryza sativa L.) , 2009, Journal of experimental botany.
[160] W. Vriezen,et al. Developmental and heat stress-regulated expression of HsfA2 and small heat shock proteins in tomato anthers , 2009, Journal of Experimental Botany.
[161] E. Farmer,et al. Arabidopsis lox3 lox4 double mutants are male sterile and defective in global proliferative arrest , 2010, Plant Molecular Biology.
[162] A. Zafra,et al. Cellular localization of ROS and NO in olive reproductive tissues during flower development , 2010, BMC Plant Biology.
[163] F. Berger,et al. Histone3 variants in plants , 2010, Chromosoma.
[164] M. Endo,et al. High temperatures cause male sterility in rice plants with transcriptional alterations during pollen development. , 2009, Plant & cell physiology.
[165] E. Pressman,et al. Transcriptional profiling of maturing tomato (Solanum lycopersicum L.) microspores reveals the involvement of heat shock proteins, ROS scavengers, hormones, and sugars in the heat stress response , 2009, Journal of experimental botany.
[166] M. Matsuoka,et al. Gibberellin Modulates Anther Development in Rice via the Transcriptional Regulation of GAMYB[W] , 2009, The Plant Cell Online.
[167] Simona M Cristescu,et al. Jasmonates act with salicylic acid to confer basal thermotolerance in Arabidopsis thaliana. , 2009, The New phytologist.
[168] N. Fedoroff,et al. The Arabidopsis membrane-bound transcription factor AtbZIP60 is a novel plant-specific endoplasmic reticulum stress transducer. , 2009, Plant signaling & behavior.
[169] G. Falasca,et al. Auxin Regulates Arabidopsis Anther Dehiscence, Pollen Maturation, and Filament Elongation[W] , 2008, The Plant Cell Online.
[170] Christian Hermans,et al. Proline accumulation in plants: a review , 2008, Amino Acids.
[171] M. Tegeder,et al. Distinct expression of members of the LHT amino acid transporter family in flowers indicates specific roles in plant reproduction , 2008, Sexual Plant Reproduction.
[172] A. Wahid,et al. Heat tolerance in plants: An overview , 2007 .
[173] Zhiqing Jin,et al. Possible correlation between high temperature-induced floret sterility and endogenous levels of IAA, GAs and ABA in rice (Oryza sativa L.) , 2007, Plant Growth Regulation.
[174] J. Micol,et al. The JAZ family of repressors is the missing link in jasmonate signalling , 2007, Nature.
[175] K. Boote,et al. Effects of season-long high temperature growth conditions on sugar-to-starch metabolism in developing microspores of grain sorghum (Sorghum bicolor L. Moench) , 2007, Planta.
[176] N. Smirnoff,et al. Reactive oxygen species produced by NADPH oxidase are involved in pollen tube growth. , 2007, The New phytologist.
[177] Faye M. Rosin,et al. RNA Interference Silencing of Chalcone Synthase, the First Step in the Flavonoid Biosynthesis Pathway, Leads to Parthenocarpic Tomato Fruits[C] , 2007, Plant Physiology.
[178] M. Endo,et al. Premature progression of anther early developmental programs accompanied by comprehensive alterations in transcription during high-temperature injury in barley plants , 2007, Molecular Genetics and Genomics.
[179] Luke E. Berchowitz,et al. Pollen tetrad-based visual assay for meiotic recombination in Arabidopsis , 2007, Proceedings of the National Academy of Sciences.
[180] M. Nepi,et al. Pollen carbohydrates and water content during development, presentation, and dispersal: a short review , 2006, Protoplasma.
[181] E. Pressman,et al. Pollen grains of heat tolerant tomato cultivars retain higher carbohydrate concentration under heat stress conditions , 2006 .
[182] S. Sato,et al. Moderate increase of mean daily temperature adversely affects fruit set of Lycopersicon esculentum by disrupting specific physiological processes in male reproductive development. , 2006, Annals of botany.
[183] H. Kamada,et al. Anther-specific expression of mutated melon ethylene receptor gene Cm-ERS1/H70A affected tapetum degeneration and pollen grain production in transgenic tobacco plants , 2006, Plant Cell Reports.
[184] K. Shinozaki,et al. The NAC Transcription Factors NST1 and NST2 of Arabidopsis Regulate Secondary Wall Thickenings and Are Required for Anther Dehiscencew⃞ , 2005, The Plant Cell Online.
[185] I. Singh,et al. Physiological and Molecular Effects of 24-Epibrassinolide, a Brassinosteroid on Thermotolerance of Tomato , 2005, Plant Growth Regulation.
[186] R. Deal,et al. The Nuclear Actin-Related Protein ARP6 Is a Pleiotropic Developmental Regulator Required for the Maintenance of FLOWERING LOCUS C Expression and Repression of Flowering in Arabidopsisw⃞ , 2005, The Plant Cell Online.
[187] Bingru Huang,et al. Effects of Abscisic Acid, Salicylic Acid, Ethylene and Hydrogen Peroxide in Thermotolerance and Recovery for Creeping Bentgrass , 2005, Plant Growth Regulation.
[188] Hong Ma. Molecular genetic analyses of microsporogenesis and microgametogenesis in flowering plants. , 2005, Annual review of plant biology.
[189] C. Weber,et al. Role of Hsp17.4-CII as Coregulator and Cytoplasmic Retention Factor of Tomato Heat Stress Transcription Factor HsfA21 , 2004, Plant Physiology.
[190] M. Herrero,et al. Effect of temperature on pollen tube kinetics and dynamics in sweet cherry, Prunus avium (Rosaceae). , 2004, American journal of botany.
[191] D. Luo,et al. Gibberellin regulates Arabidopsis floral development via suppression of DELLA protein function , 2004, Development.
[192] R. Sangwan. Change in the amino-acid content during male gametophyte formation of Datura metel in Situ , 1978, Theoretical and Applied Genetics.
[193] P. Chourey,et al. Starch Biosynthesis during Pollen Maturation Is Associated with Altered Patterns of Gene Expression in Maize1 , 2002, Plant Physiology.
[194] S. Tachibana,et al. Suppression of S-adenosylmethionine decarboxylase activity is a major cause for high-temperature inhibition of pollen germination and tube growth in tomato (Lycopersicon esculentum Mill.). , 2002, Plant & cell physiology.
[195] K. Omasa,et al. Rice (Oryza sativa L.) cultivars tolerant to high temperature at flowering: anther characteristics. , 2002, Annals of botany.
[196] S. Tachibana,et al. The early increase of S-adenosylmethionine decarboxylase activity is essential for the normal germination and tube growth in tomato (Lycopersicon esculentum Mill.) pollen , 2001 .
[197] M. Jahn,et al. Effects of high-temperature stress on microsporogenesis in heat-sensitive and heat-tolerant genotypes of Phaseolus vulgaris , 2001 .
[198] T. Tsukaguchi,et al. Ultrastructural study on degeneration of tapetum in anther of snap bean (Phaseolus vulgaris L.) under heat stress , 2001, Sexual Plant Reproduction.
[199] G. Barendse,et al. Effect of Gibberellic Acid on Cell Division and Cell Elongation in Anthers of the Gibberellin Deficient gib-1 Mutant of Tomato , 2001 .
[200] D. Preuss,et al. Pollen tube targeting and axon guidance: parallels in tip growth mechanisms. , 2000, Trends in cell biology.
[201] A. Dandekar,et al. Regulation of proline accumulation in Arabidopsis thaliana (L.) Heynh during development and in response to desiccation , 1995 .
[202] M. Cresti,et al. High Humidity and Heat Stress Causes Dissociation of Endoplasmic Reticulum in Tobacco Pollen , 1991 .
[203] J. C. Cook,et al. Brassinolide, a plant growth-promoting steroid isolated from Brassica napus pollen , 1979, Nature.
[204] G. L. Davis. Systematic embryology of the angiosperms , 1967 .
[205] E. L. Spencer. INFLUENCE OF NITROGEN SUPPLY ON THE RATE OF MULTIPLICATION OF TOBACCO-MOSAIC VIRUS. , 1941, Plant physiology.