Works matching DE "PHYSCOMITRELLA patens"
Results: 364
Functional analyses of chitinases in the moss Physcomitrella patens : chitin oligosaccharide-induced gene expression and enzymatic characterization.
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- Bioscience, Biotechnology & Biochemistry, 2016, v. 80, n. 12, p. 2347, doi. 10.1080/09168451.2016.1224640
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Proteomics of Physcomitrella patens protonemata subjected to treatment with 12-oxo-phytodienoic acid.
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- Bioscience, Biotechnology & Biochemistry, 2016, v. 80, n. 12, p. 2357, doi. 10.1080/09168451.2016.1222268
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Overexpression of RelA/SpoT homologs, PpRSH2a and PpRSH2b, induces the growth suppression of the moss Physcomitrella patens.
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- Bioscience, Biotechnology & Biochemistry, 2015, v. 79, n. 1, p. 36, doi. 10.1080/09168451.2014.952617
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Proteomic analysis of Physcomitrella patens treated with 12-oxo-phytodienoic acid, an important oxylipin in plants.
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- Bioscience, Biotechnology & Biochemistry, 2014, v. 78, n. 6, p. 946, doi. 10.1080/09168451.2014.912112
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Light-Responsive Double B-Box Containing Transcription Factors Are Conserved in Physcomitrella patens.
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- Bioscience, Biotechnology & Biochemistry, 2011, v. 75, n. 10, p. 2037, doi. 10.1271/bbb.110359
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Functional Characterization of HY5 Homolog Genes Involved in Early Light-Signaling in Physcomitrella patens.
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- Bioscience, Biotechnology & Biochemistry, 2011, v. 75, n. 8, p. 1533, doi. 10.1271/bbb.110219
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Heterologous Expression and Functional Characterization of a Physcomitrella Pseudo Response Regulator Homolog, PpPRR2, in Arabidopsis.
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- Bioscience, Biotechnology & Biochemistry, 2011, v. 75, n. 4, p. 786, doi. 10.1271/bbb.100859
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Classification of the Genes Involved in the Two-Component System of the Moss Physcomitrella patens.
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- Bioscience, Biotechnology & Biochemistry, 2010, v. 74, n. 12, p. 2542, doi. 10.1271/bbb.100623
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Cloning and Functional Analysis of an Allene Oxide Synthase in Physcomitrella patens.
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- Bioscience, Biotechnology & Biochemistry, 2009, v. 73, n. 10, p. 2356, doi. 10.1271/bbb.90457
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Physcomitrium × stevensoni D.A.Callaghan (Physcomitrium patens × P. eurystomum) (Funariaceae, Bryophyta), a new name for a rarely recorded hybrid moss.
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- Journal of Bryology, 2020, v. 42, n. 2, p. 192, doi. 10.1080/03736687.2020.1725325
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Quantitative methods in like-for-like comparative analyses of Aphanorrhegma (Physcomitrella) patens phyllid development.
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- Journal of Bryology, 2019, v. 41, n. 4, p. 314, doi. 10.1080/03736687.2019.1668109
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Heteroblasty in the moss, Aphanoregma patens (Physcomitrella patens), results from progressive modulation of a single fundamental leaf developmental programme.
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- Journal of Bryology, 2013, v. 35, n. 3, p. 185, doi. 10.1179/1743282013Y.0000000058
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Functional characterization of metallothionein-like genes from Physcomitrella patens: expression profiling, yeast heterologous expression, and disruption of PpMT1.2a gene.
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- Planta: An International Journal of Plant Biology, 2019, v. 250, n. 2, p. 427, doi. 10.1007/s00425-019-03173-8
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PpORS, an ancient type III polyketide synthase, is required for integrity of leaf cuticle and resistance to dehydration in the moss, Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2018, v. 247, n. 2, p. 527, doi. 10.1007/s00425-017-2806-5
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Different dehydrins perform separate functions in Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2017, v. 245, n. 1, p. 101, doi. 10.1007/s00425-016-2596-1
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The phenotype of the CRINKLY4 deletion mutant of Physcomitrella patens suggests a broad role in developmental regulation in early land plants.
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- Planta: An International Journal of Plant Biology, 2016, v. 244, n. 1, p. 275, doi. 10.1007/s00425-016-2526-2
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Structural modelling and transcriptional responses highlight a clade of PpKAI2- LIKE genes as candidate receptors for strigolactones in Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2016, v. 243, n. 6, p. 1441, doi. 10.1007/s00425-016-2481-y
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A nitrate-permeable ion channel in the tonoplast of the moss Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2015, v. 241, n. 5, p. 1207, doi. 10.1007/s00425-015-2250-3
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Blue-light irradiation up-regulates the ent-kaurene synthase gene and affects the avoidance response of protonemal growth in Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2014, v. 240, n. 1, p. 117, doi. 10.1007/s00425-014-2068-4
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Photoheterotrophic growth of Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2014, v. 239, n. 3, p. 605, doi. 10.1007/s00425-013-2000-3
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Cation-permeable vacuolar ion channels in the moss Physcomitrella patens: a patch-clamp study.
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- Planta: An International Journal of Plant Biology, 2013, v. 238, n. 2, p. 357, doi. 10.1007/s00425-013-1902-4
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CHUP1 mediates actin-based light-induced chloroplast avoidance movement in the moss Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2012, v. 236, n. 6, p. 1889, doi. 10.1007/s00425-012-1735-6
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A CELLULOSE SYNTHASE ( CESA) gene essential for gametophore morphogenesis in the moss Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2012, v. 235, n. 6, p. 1355, doi. 10.1007/s00425-011-1579-5
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Chloroplast actin filaments organize meshwork on the photorelocated chloroplasts in the moss Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2011, v. 233, n. 2, p. 357, doi. 10.1007/s00425-010-1299-2
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Regulation of sulfate assimilation in Physcomitrella patens: mosses are different!
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- Planta: An International Journal of Plant Biology, 2010, v. 232, n. 2, p. 461, doi. 10.1007/s00425-010-1190-1
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CYP710A genes encoding sterol C22-desaturase in Physcomitrella patens as molecular evidence for the evolutionary conservation of a sterol biosynthetic pathway in plants.
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- Planta: An International Journal of Plant Biology, 2009, v. 229, n. 6, p. 1311, doi. 10.1007/s00425-009-0916-4
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Gibberellin precursor is involved in spore germination in the moss Physcomitrella patens.
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- Planta: An International Journal of Plant Biology, 2008, v. 229, n. 4, p. 1003, doi. 10.1007/s00425-008-0875-1
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Identification and functional characterization of two Δ-fatty acid desaturases associated with essential linoleic acid biosynthesis in Physcomitrella patens.
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- Journal of Industrial Microbiology & Biotechnology, 2013, v. 40, n. 8, p. 901, doi. 10.1007/s10295-013-1285-3
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Characterization and evolutionary diversification of the phospholipase D gene family in mosses.
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- Frontiers in Genetics, 2022, v. 13, p. 1, doi. 10.3389/fgene.2022.1015393
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Effects of ABA and NaCl on physiological responses in selected bryophyte species.
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- Botany, 2020, v. 98, n. 11, p. 639, doi. 10.1139/cjb-2020-0041
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Reactive oxygen species are required for spore-wall formation in Physcomitrella patens.
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- Botany, 2020, v. 98, n. 10, p. 575, doi. 10.1139/cjb-2020-0012
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Connecting moss lipid droplets to patchoulol biosynthesis.
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- PLoS ONE, 2020, v. 15, n. 12, p. 1, doi. 10.1371/journal.pone.0243620
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High levels of glucose alter Physcomitrella patens metabolism and trigger a differential proteomic response.
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- PLoS ONE, 2020, v. 15, n. 12, p. 1, doi. 10.1371/journal.pone.0242919
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Evolutionary conservation and post-translational control of S-adenosyl-L-homocysteine hydrolase in land plants.
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- PLoS ONE, 2020, v. 15, n. 7, p. 1, doi. 10.1371/journal.pone.0227466
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Physcomitrella patens DCL3 Is Required for 22-24 nt siRNA Accumulation, Suppression of Retrotransposon- Derived Transcripts, and Normal Development.
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- PLoS Genetics, 2008, v. 4, n. 11, p. 1, doi. 10.1371/journal.pgen.1000314
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Analysis of confocal microscopy image data of Physcomitrella chloroplasts to reveal adaptation principles leading to structural stability at the nanoscale.
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- PAMM: Proceedings in Applied Mathematics & Mechanics, 2016, v. 16, n. 1, p. 69, doi. 10.1002/pamm.201610023
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The Complete Mitochondrial Genome Sequence of the Hornwort Megaceros aenigmaticus Shows a Mixed Mode of Conservative Yet Dynamic Evolution in Early Land Plant Mitochondrial Genomes.
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- Journal of Molecular Evolution, 2009, v. 68, n. 6, p. 665, doi. 10.1007/s00239-009-9240-7
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The DEAD-box RNA helicase eIF4A regulates plant development and interacts with the hnRNP LIF2L1 in Physcomitrella patens.
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- Molecular Genetics & Genomics, 2020, v. 295, n. 2, p. 373, doi. 10.1007/s00438-019-01628-x
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Proteome analysis of chloroplasts from the moss Physcomitrella patens (Hedw.) B.S.G.
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- Biochemistry (00062979), 2010, v. 75, n. 12, p. 1470, doi. 10.1134/S0006297910120084
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Proteome analysis of the moss Physcomitrella patens (Hedw.) B.S.G.
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- Biochemistry (00062979), 2009, v. 74, n. 5, p. 480, doi. 10.1134/S0006297909050022
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Comparisons of the Effects of Vibration of Two Centrifugal Systems on the Growth and Morphological Parameters of the Moss Physcomitrella patens.
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- Biological Sciences in Space, 2017, v. 31, p. 9, doi. 10.2187/bss.31.9
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Translocation of Drought-Responsive Proteins from the Chloroplasts.
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- Cells (2073-4409), 2020, v. 9, n. 1, p. 1, doi. 10.3390/cells9010259
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Ultrastructural study on the interaction between Physcomitrella patens and Botrytis cinerea.
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- Plant Pathology, 2018, v. 67, n. 1, p. 42, doi. 10.1111/ppa.12720
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Evolution of the Symbiosis-Specific GRAS Regulatory Network in Bryophytes.
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- Frontiers in Plant Science, 2018, p. N.PAG, doi. 10.3389/fpls.2018.01621
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Corrigendum: Physcomitrella Patens Dehydrins (PpDHNA and PpDHNC) Confer Salinity and Drought Tolerance to Transgenic Arabidopsis Plants.
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- 2018
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- Correction Notice
Perception of Salicylic Acid in Physcomitrella patens.
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- Frontiers in Plant Science, 2017, p. 1, doi. 10.3389/fpls.2017.02145
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Alternate Modes of Photosynthate Transport in the Alternating Generations of Physcomitrella patens.
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- Frontiers in Plant Science, 2017, p. 1, doi. 10.3389/fpls.2017.01956
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ABSCISIC ACID INSENSITIVE3 Is Involved in Cold Response and Freezing Tolerance Regulation in Physcomitrella patens.
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- Frontiers in Plant Science, 2017, p. 1, doi. 10.3389/fpls.2017.01599
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Physcomitrella Patens Dehydrins (PpDHNA and PpDHNC) Confer Salinity and Drought Tolerance to Transgenic Arabidopsis Plants.
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- Frontiers in Plant Science, 2017, p. 1, doi. 10.3389/fpls.2017.01316
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A fundamental developmental transition in Physcomitrium patens is regulated by evolutionarily conserved mechanisms.
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- Evolution & Development, 2021, v. 23, n. 3, p. 123, doi. 10.1111/ede.12376
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