Evolutionary crossroads in developmental biology: Physcomitrella patens
暂无分享,去创建一个
[1] M. Estelle,et al. Report Physcomitrella Patens Auxin-resistant Mutants Affect Conserved Elements of an Auxin-signaling Pathway , 2022 .
[2] L. Vidali,et al. Myosin XI Is Essential for Tip Growth in Physcomitrella patens[W] , 2010, Plant Cell.
[3] H. Kawaide,et al. Endogenous Diterpenes Derived from ent-Kaurene, a Common Gibberellin Precursor, Regulate Protonema Differentiation of the Moss Physcomitrella patens1[W][OA] , 2010, Plant Physiology.
[4] J. Bowman,et al. Interplay of auxin, KANADI and Class III HD-ZIP transcription factors in vascular tissue formation , 2010, Development.
[5] R. Simon,et al. Plant primary meristems: shared functions and regulatory mechanisms. , 2010, Current opinion in plant biology.
[6] R. Quatrano,et al. Role of ABA and ABI3 in Desiccation Tolerance , 2010, Science.
[7] D. Weigel,et al. Transcriptional Control of Gene Expression by MicroRNAs , 2010, Cell.
[8] R. Quatrano,et al. THE SPECIATION HISTORY OF THE PHYSCOMITRIUM—PHYSCOMITRELLA SPECIES COMPLEX , 2010, Evolution; international journal of organic evolution.
[9] M. Kubo,et al. A polycomb repressive complex 2 gene regulates apogamy and gives evolutionary insights into early land plant evolution , 2009, Proceedings of the National Academy of Sciences.
[10] L. Blanchoin,et al. Rapid formin-mediated actin-filament elongation is essential for polarized plant cell growth , 2009, Proceedings of the National Academy of Sciences.
[11] L. Vidali,et al. Rapid Screening for Temperature-Sensitive Alleles in Plants1[W][OA] , 2009, Plant Physiology.
[12] M. Estelle,et al. The TRANSPORT INHIBITOR RESPONSE2 Gene Is Required for Auxin Synthesis and Diverse Aspects of Plant Development1[C][W][OA] , 2009, Plant Physiology.
[13] S. Rensing,et al. Regulation of stem cell maintenance by the Polycomb protein FIE has been conserved during land plant evolution , 2009, Development.
[14] S. Rensing,et al. The evolution of nuclear auxin signalling , 2009, BMC Evolutionary Biology.
[15] Caleb M. Rounds,et al. Lifeact-mEGFP Reveals a Dynamic Apical F-Actin Network in Tip Growing Plant Cells , 2009, PloS one.
[16] J. Langdale,et al. Local Cues and Asymmetric Cell Divisions Underpin Body Plan Transitions in the Moss Physcomitrella patens , 2009, Current Biology.
[17] M. Care,et al. A sequence-anchored genetic linkage map for the moss, Physcomitrella patens , 2008, The Plant journal : for cell and molecular biology.
[18] T. Fujita,et al. Kinesins Are Indispensable for Interdigitation of Phragmoplast Microtubules in the Moss Physcomitrella patens[W] , 2008, The Plant Cell Online.
[19] P. Sætrom,et al. MicroRNA-directed transcriptional gene silencing in mammalian cells , 2008, Proceedings of the National Academy of Sciences.
[20] T. Nishiyama,et al. Class 1 KNOX genes are not involved in shoot development in the moss Physcomitrella patens but do function in sporophyte development , 2008, Evolution & development.
[21] D. Weigel,et al. Specific Gene Silencing by Artificial MicroRNAs in Physcomitrella patens: An Alternative to Targeted Gene Knockouts1[C][W][OA] , 2008, Plant Physiology.
[22] D. Pisano,et al. Mechanistic principles of chromatin remodeling guided by siRNAs and miRNAs , 2008, Cell cycle.
[23] A. Rolland-Lagan. Vein patterning in growing leaves: axes and polarities. , 2008, Current opinion in genetics & development.
[24] L. Vidali,et al. Actin depolymerizing factor is essential for viability in plants, and its phosphoregulation is important for tip growth. , 2008, The Plant journal : for cell and molecular biology.
[25] C. Steber,et al. Molecular aspects of seed dormancy. , 2008, Annual review of plant biology.
[26] R. Quatrano,et al. BRICK1 Is Required for Apical Cell Growth in Filaments of the Moss Physcomitrella patens but Not for Gametophore Morphology[W] , 2008, The Plant Cell Online.
[27] J. Bennetzen,et al. The Physcomitrella Genome Reveals Evolutionary Insights into the Conquest of Land by Plants , 2008, Science.
[28] L. Vidali,et al. Profilin Is Essential for Tip Growth in the Moss Physcomitrella patens[W] , 2007, The Plant Cell Online.
[29] R. Reski,et al. Moss bioreactors producing improved biopharmaceuticals. , 2007, Current opinion in biotechnology.
[30] R. Reski,et al. Filamentous temperature-sensitive Z (FtsZ) isoforms specifically interact in the chloroplasts and in the cytosol of Physcomitrella patens. , 2007, The New phytologist.
[31] R. Quatrano,et al. Microarray analysis of transcriptional responses to abscisic acid and osmotic, salt, and drought stress in the moss, Physcomitrella patens. , 2007, The New phytologist.
[32] Hitoshi Sakakibara,et al. The GID1-Mediated Gibberellin Perception Mechanism Is Conserved in the Lycophyte Selaginella moellendorffii but Not in the Bryophyte Physcomitrella patens[W] , 2007, The Plant Cell Online.
[33] N. Harberd,et al. Step-by-Step Acquisition of the Gibberellin-DELLA Growth-Regulatory Mechanism during Land-Plant Evolution , 2007, Current Biology.
[34] D. Schaefer,et al. Comparison of gene targeting efficiencies in two mosses suggests that it is a conserved feature of Bryophyte transformation , 2007, Biotechnology Letters.
[35] Paul Linstead,et al. An Ancient Mechanism Controls the Development of Cells with a Rooting Function in Land Plants , 2007, Science.
[36] D. Schaefer,et al. In vivo visualization of F-actin structures during the development of the moss Physcomitrella patens. , 2007, The New phytologist.
[37] J. Langdale,et al. Growth from two transient apical initials in the meristem of Selaginella kraussiana , 2007, Development.
[38] J. Bowman,et al. The Ancestral Developmental Tool Kit of Land Plants , 2007, International Journal of Plant Sciences.
[39] R. Quatrano,et al. Characterization and functional analysis of ABSCISIC ACID INSENSITIVE3-like genes from Physcomitrella patens. , 2006, The Plant journal : for cell and molecular biology.
[40] R. Reski,et al. Moss systems biology en route: phytohormones in Physcomitrella development. , 2006, Plant biology.
[41] R. Quatrano,et al. The role of ARPC4 in tip growth and alignment of the polar axis in filaments of Physcomitrella patens. , 2006, Cell motility and the cytoskeleton.
[42] B. Mishler,et al. Desiccation Tolerance in Bryophytes: A Reflection of the Primitive Strategy for Plant Survival in Dehydrating Habitats?1 , 2005, Integrative and comparative biology.
[43] D. Schaefer,et al. Controlled Expression of Recombinant Proteins in Physcomitrella patens by a Conditional Heat-shock Promoter: a Tool for Plant Research and Biotechnology , 2005, Plant Molecular Biology.
[44] R. Quatrano,et al. Actin-Related Protein2/3 Complex Component ARPC1 Is Required for Proper Cell Morphogenesis and Polarized Cell Growth in Physcomitrella patensw⃞ , 2005, The Plant Cell Online.
[45] R. Quatrano,et al. An RNAi System in Physcomitrella patens with an Internal Marker for Silencing Allows for Rapid Identification of Loss of Function Phenotypes , 2005, Plant biology.
[46] F. Berger,et al. Loss of Function of MULTICOPY SUPPRESSOR OF IRA 1 Produces Nonviable Parthenogenetic Embryos in Arabidopsis , 2005, Current Biology.
[47] Detlef Weigel,et al. The Floral Regulator LEAFY Evolves by Substitutions in the DNA Binding Domain , 2005, Science.
[48] T. Lamparter,et al. Targeted site-directed mutagenesis of a heme oxygenase locus by gene replacement in the moss Ceratodon purpureus , 2005, Planta.
[49] Richard C. Moore,et al. The evolution of plant development. , 2004, American journal of botany.
[50] T. Tuschl,et al. Mechanisms of gene silencing by double-stranded RNA , 2004, Nature.
[51] F. Berger,et al. Identification of new members of Fertilisation Independent Seed Polycomb Group pathway involved in the control of seed development in Arabidopsis thaliana , 2004, Development.
[52] R. Quatrano,et al. RNA Interference in the Moss Physcomitrella patens1 , 2003, Plant Physiology.
[53] L. Hennig,et al. Arabidopsis MSI1 is a component of the MEA/FIE Polycomb group complex and required for seed development , 2003, The EMBO journal.
[54] P. Bailey,et al. The basic helix-loop-helix transcription factor family in plants: a genome-wide study of protein structure and functional diversity. , 2003, Molecular biology and evolution.
[55] S. Rensing,et al. Day Length and Temperature Strongly Influence Sexual Reproduction and Expression of a Novel MADS‐Box Gene in the Moss Physcomitrella patens , 2002 .
[56] D. Schaefer,et al. The moss Physcomitrella patens, now and then. , 2001, Plant physiology.
[57] D. R. Wagner,et al. The Arabidopsis SERRATE Gene Encodes a Zinc-Finger Protein Required for Normal Shoot Development , 2001, The Plant Cell Online.
[58] D. Schaefer. Gene targeting in Physcomitrella patens. , 2001, Current opinion in plant biology.
[59] T. Nishiyama,et al. Isolation of homeodomain-leucine zipper genes from the moss Physcomitrella patens and the evolution of homeodomain-leucine zipper genes in land plants. , 2001, Molecular biology and evolution.
[60] D. Cove. The Moss, Physcomitrella patens , 2000, Journal of Plant Growth Regulation.
[61] R. Ligrone,et al. Conducting tissues and phyletic relationships of bryophytes. , 2000, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[62] L. Graham,et al. The origin of plants: body plan changes contributing to a major evolutionary radiation. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[63] J. Goodrich. Plant development:: Medea's maternal instinct , 1998, Current Biology.
[64] R. Reski,et al. Plant nuclear gene knockout reveals a role in plastid division for the homolog of the bacterial cell division protein FtsZ, an ancestral tubulin. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[65] B. Sauer. Inducible gene targeting in mice using the Cre/lox system. , 1998, Methods.
[66] D. Schaefer,et al. Efficient gene targeting in the moss Physcomitrella patens. , 1997, The Plant journal : for cell and molecular biology.
[67] Peter R. Crane,et al. The origin and early evolution of plants on land , 1997, Nature.
[68] W. Peacock,et al. Fertilization-independent seed development in Arabidopsis thaliana. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[69] P. Repetti,et al. A mutation that allows endosperm development without fertilization. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[70] D. Cove,et al. Genetic analysis of the effects of re-transformation of transgenic lines of the mossPhyscomitrella patens , 1996, Molecular and General Genetics MGG.
[71] D. Coates,et al. Molecular Responses to Abscisic Acid and Stress Are Conserved between Moss and Cereals. , 1995, The Plant cell.
[72] J. Schiefelbein,et al. The rhd6 Mutation of Arabidopsis thaliana Alters Root-Hair Initiation through an Auxin- and Ethylene-Associated Process , 1994, Plant physiology.
[73] D. Cove,et al. Stable transformation of the moss Physcomitrella patens , 1991, Molecular and General Genetics MGG.
[74] R. Reski,et al. A cytokinin-sensitive mutant of the moss,Physcomitrella patens, defective in chloroplast division , 1989, Protoplasma.
[75] D. Cove,et al. Gravitropic responses of wild-type and mutant strains of the moss Physcomitrella patens. , 1986, Plant, cell & environment.
[76] J. Hyams,et al. Widespread absence of outer dynein arms in the spermatozoids of lower plants. , 1985, Cell biology international reports.
[77] N. Ashton,et al. The isolation and preliminary characterisation of auxotrophic and analogue resistant mutants of the moss, Physcomitrella patens , 1977, Molecular and General Genetics MGG.
[78] M. Johri,et al. Auxin regulation of caulonema formation in moss protonema. , 1973, Nature: New biology.
[79] J. Bewley. The Conservation of Polyribosomes in the Moss Tortula ruralis during Total Desiccation , 1972 .
[80] P. Engel. THE INDUCTION OF BIOCHEMICAL AND MORPHOLOGICAL MUTANTS IN THE MOSS PHYSCOMITRELLA PATENS , 1968 .
[81] M. Bopp. Development of the protonema and bud formation in mosses , 1963 .
[82] S. Rensing,et al. Microarray analysis of the moss Physcomitrella patens reveals evolutionarily conserved transcriptional regulation of salt stress and abscisic acid signalling , 2009, Plant Molecular Biology.
[83] Alexander Heyl,et al. Unraveling the Evolution of Cytokinin Signaling , 2009 .
[84] N. Ashton,et al. The isolation and physiological analysis of mutants of the moss, Physcomitrella patens, which over-produce gametophores , 2004, Planta.
[85] N. Grimsley,et al. Analysis of gametophytic development in the moss, Physcomitrella patens, using auxin and cytokinin resistant mutants , 2004, Planta.
[86] D. Cove. Regulation of Development in the Moss, Physcomitrella patens , 1992 .
[87] P. Engel. THE INDUCTION OF BIOCHEMICAL AND MORPHOLOGICAL MUTANTS IN THE MOSS PHYSCOMITRELLA PATENS. , 1968 .
[88] Irene Manton. Observations with the Electron Microscope on the Cell Structure of the Antheridium and Spermatozoid of Sphagnum , 1957 .