Wax-deficient anther1 Is Involved in Cuticle and Wax Production in Rice Anther Walls and Is Required for Pollen Development[W]
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Gynheung An | Heinz Saedler | Inhwan Hwang | Ki-Hong Jung | Lukas Schreiber | I. Hwang | K. Jung | H. Saedler | L. Schreiber | G. An | A. Yephremov | Min-jung Han | R. Franke | Yang-Seok Lee | Dong-yeun Lee | A. Faust | Yong-Woo Kim | Yang-Seok Lee | Rochus Franke | Min-Jung Han | Dong-yeun Lee | Andrea Faust | Alexander Yephremov | Yong-Woo Kim
[1] L. Schreiber,et al. Protecting against water loss: analysis of the barrier properties of plant cuticles. , 2001, Journal of experimental botany.
[2] D. Kemp,et al. A procedure for in vitro amplification of DNA segments that lie outside the boundaries of known sequences. , 1988, Nucleic acids research.
[3] R. Datla,et al. Male gametophyte development in bread wheat (Triticum aestivum L.): molecular, cellular, and biochemical analyses of a sporophytic contribution to pollen wall ontogeny. , 2002, The Plant journal : for cell and molecular biology.
[4] R. Jetter,et al. Tomato fruit cuticular waxes and their effects on transpiration barrier properties: functional characterization of a mutant deficient in a very-long-chain fatty acid beta-ketoacyl-CoA synthase. , 2004, Journal of experimental botany.
[5] A. Aharoni,et al. The SHINE Clade of AP2 Domain Transcription Factors Activates Wax Biosynthesis, Alters Cuticle Properties, and Confers Drought Tolerance when Overexpressed in Arabidopsis w⃞ , 2004, The Plant Cell Online.
[6] C. Nawrath. The Biopolymers Cutin and Suberin , 2002, The arabidopsis book.
[7] D. Murphy,et al. Intra- and extracellular lipid composition and associated gene expression patterns during pollen development in Brassica napus. , 1997, The Plant journal : for cell and molecular biology.
[8] M. Bevan,et al. GUS fusions: beta‐glucuronidase as a sensitive and versatile gene fusion marker in higher plants. , 1987, The EMBO journal.
[9] K. Jung,et al. T-DNA insertional mutagenesis for functional genomics in rice. , 2000, The Plant journal : for cell and molecular biology.
[10] S. Gubatz,et al. Pollen Wall and Sporopollenin , 1992 .
[11] L. Kunst,et al. Significance of the Expression of the CER6 Condensing Enzyme for Cuticular Wax Production in Arabidopsis1 , 2002, Plant Physiology.
[12] U. Grossniklaus,et al. FIDDLEHEAD, a gene required to suppress epidermal cell interactions in Arabidopsis, encodes a putative lipid biosynthetic enzyme. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[13] P. Schnable,et al. The Endoplasmic Reticulum-Associated Maize GL8 Protein Is a Component of the Acyl-Coenzyme A Elongase Involved in the Production of Cuticular Waxes1 , 2002, Plant Physiology.
[14] G. An,et al. T-DNA Insertional Mutagenesis for Activation Tagging in Rice1 , 2002, Plant Physiology.
[15] R. Jetter,et al. Plant Cuticular Lipid Export Requires an ABC Transporter , 2004, Science.
[16] D. Murphy,et al. Biogenesis and function of the lipidic structures of pollen grains , 1998, Sexual Plant Reproduction.
[17] W. Stiekema,et al. Molecular characterization of the CER1 gene of arabidopsis involved in epicuticular wax biosynthesis and pollen fertility. , 1995, The Plant cell.
[18] S. Tabata,et al. Disruption of the novel plant protein NEF1 affects lipid accumulation in the plastids of the tapetum and exine formation of pollen, resulting in male sterility in Arabidopsis thaliana. , 2004, The Plant journal : for cell and molecular biology.
[19] I. Hwang,et al. Rice Undeveloped Tapetum1 Is a Major Regulator of Early Tapetum Developmentw⃞ , 2005, The Plant Cell Online.
[20] J. Jaworski,et al. KCS1 encodes a fatty acid elongase 3-ketoacyl-CoA synthase affecting wax biosynthesis in Arabidopsis thaliana. , 1999, The Plant journal : for cell and molecular biology.
[21] P. Schnable,et al. Characterization of two GL8 paralogs reveals that the 3-ketoacyl reductase component of fatty acid elongase is essential for maize (Zea mays L.) development. , 2005, The Plant journal : for cell and molecular biology.
[22] K. Jung,et al. Isolation and Characterization of a Rice Cysteine Protease Gene, OsCP1, Using T-DNA Gene-Trap System , 2004, Plant Molecular Biology.
[23] K. Haas,et al. Epicuticular wax crystalloids in rice and sugar cane leaves are reinforced by polymeric aldehydes , 2001 .
[24] J. Lambert,et al. 1H NMR analysis of sporopollenin from Typha Angustifolia , 1999 .
[25] A. Rahier,et al. Role of highly conserved residues in the reaction catalyzed by recombinant Delta7-sterol-C5(6)-desaturase studied by site-directed mutagenesis. , 2000, Biochemistry.
[26] D. Taylor,et al. CUT1, an Arabidopsis Gene Required for Cuticular Wax Biosynthesis and Pollen Fertility, Encodes a Very-Long-Chain Fatty Acid Condensing Enzyme , 1999, Plant Cell.
[27] James M. Lee,et al. Promoter elements controlling developmental and environmental regulation of a tobacco ribosomal protein gene L34 , 1996, Plant Molecular Biology.
[28] L. Schreiber,et al. Ontogenetic and seasonal development of wax composition and cuticular transpiration of ivy (Hedera helix L.) sun and shade leaves , 1998, Planta.
[29] Sudhir Kumar,et al. MEGA2: molecular evolutionary genetics analysis software , 2001, Bioinform..
[30] R. Datla,et al. The classical Ubisch bodies carry a sporophytically produced structural protein (RAFTIN) that is essential for pollen development , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[31] R. Griffin. HIGH-RESOLUTION SOLID-STATE , 1988 .
[32] J. Ohlrogge,et al. Analysis of the aliphatic monomer composition of polyesters associated with Arabidopsis epidermis: occurrence of octadeca-cis-6, cis-9-diene-1,18-dioate as the major component. , 2004, The Plant journal : for cell and molecular biology.
[33] Huanquan Zheng,et al. Disruptions of the Arabidopsis Enoyl-CoA Reductase Gene Reveal an Essential Role for Very-Long-Chain Fatty Acid Synthesis in Cell Expansion during Plant Morphogenesis , 2005, The Plant Cell Online.
[34] L. Schreiber,et al. Apoplastic polyesters in Arabidopsis surface tissues--a typical suberin and a particular cutin. , 2005, Phytochemistry.
[35] P. Schnable,et al. Sequence Analysis of the Cloned glossy8 Gene of Maize Suggests That It May Code for a [beta]-Ketoacyl Reductase Required for the Biosynthesis of Cuticular Waxes , 1997, Plant physiology.
[36] G. Bianchi,et al. Composition of epicuticular wax of rice,Oryza sativa , 1979, Experientia.
[37] G. Kerstiens. Plant Cuticles-an Integrated Functional Approach , 1996 .
[38] T. Komari,et al. Transformation of rice mediated by Agrobacterium tumefaciens , 1997, Plant Molecular Biology.
[39] P. Schnable,et al. The glossy1 Locus of Maize and an Epidermis-Specific cDNA from Kleinia odora Define a Class of Receptor-Like Proteins Required for the Normal Accumulation of Cuticular Waxes , 1997, Plant physiology.
[40] E. Ashworth,et al. Chemically Induced Cuticle Mutation Affecting Epidermal Conductance to Water Vapor and Disease Susceptibility in Sorghum bicolor (L.) Moench , 1994, Plant physiology.
[41] P. Kolattukudy,et al. Resolution and purification of an aldehyde-generating and an alcohol-generating fatty acyl-CoA reductase from pea leaves (Pisum sativum L.). , 1997, Archives of biochemistry and biophysics.
[42] Michael P. Cummings,et al. MEGA (Molecular Evolutionary Genetics Analysis) , 2004 .
[43] Robert L. Fischer,et al. Alterations in CER6, a Gene Identical to CUT1, Differentially Affect Long-Chain Lipid Content on the Surface of Pollen and Stems , 2000, Plant Cell.
[44] H. Owen,et al. DEX1, a novel plant protein, is required for exine pattern formation during pollen development in Arabidopsis. , 2001, Plant physiology.
[45] J. Browse,et al. The Acyl-CoA Synthetase Encoded by LACS2 Is Essential for Normal Cuticle Development in Arabidopsis , 2004, The Plant Cell Online.
[46] R. Wiermann,et al. Influence of EPTC (S-Ethyl-Dipropyl-Thiocarbamate) on the Composition of Surface Waxes and Sporopollenin Structure in Zea mays* , 1995 .
[47] K. Feldmann,et al. Leaf Epicuticular Waxes of the Eceriferum Mutants in Arabidopsis , 1995, Plant physiology.
[48] K. Kalantidis,et al. The Arabidopsis MALE STERILITY 2 protein shares similarity with reductases in elongation/condensation complexes. , 1997, The Plant journal : for cell and molecular biology.
[49] L. Kunst,et al. Biosynthesis and secretion of plant cuticular wax. , 2003, Progress in lipid research.
[50] R. Wiermann,et al. Studies on Sporopollenin Biosynthesis in Cucurbita maxima (DUCH.) — II. The Involvement of Aliphatic Metabolism , 1999 .
[51] K. Jung,et al. Characterization of a rice chlorophyll-deficient mutant using the T-DNA gene-trap system. , 2003, Plant & cell physiology.
[52] S. Tabata,et al. A novel male-sterile mutant of Arabidopsis thaliana, faceless pollen-1, produces pollen with a smooth surface and an acetolysis-sensitive exine , 2003, Plant Molecular Biology.
[53] S. Steuernagel,et al. Comparative FTIR and 13C CP/MAS NMR Spectroscopic Investigations on Sporopollenin of Different Systematic Origins , 1993 .
[54] G. An,et al. Systematic reverse genetic screening of T-DNA tagged genes in rice for functional genomic analyses: MADS-box genes as a test case. , 2003, Plant & cell physiology.
[55] D. Armanini,et al. Volume regulation of human lymphocytes by aldosterone in isotonic media. , 1989, The American journal of physiology.
[56] D. Murphy,et al. Composition and role of tapetal lipid bodies in the biogenesis of the pollen coat of Brassica napus , 1999, Planta.
[57] D. M. Schneider,et al. High resolution solid state C NMR spectroscopy of sporopollenins from different plant taxa. , 1988, Plant physiology.
[58] R. Scott. Molecular and Cellular Aspects of Plant Reproduction: Pollen exine – the sporopollenin enigma and the physics of pattern , 1994 .