Sucrose concentration in the growth medium affects the cell wall composition of tobacco pollen tubes
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[1] Wei Li,et al. The microtubule cytoskeleton and pollen tube Golgi vesicle system are required for in vitro S-RNase internalization and gametic self-incompatibility in apple. , 2014, Plant & cell physiology.
[2] Yi Cai,et al. Apical F-actin-regulated exocytic targeting of NtPPME1 is essential for construction and rigidity of the pollen tube cell wall. , 2013, The Plant journal : for cell and molecular biology.
[3] P. Hepler,et al. Control of cell wall extensibility during pollen tube growth. , 2013, Molecular plant.
[4] E. Onelli,et al. Microtubule depolymerization affects endocytosis and exocytosis in the tip and influences endosome movement in tobacco pollen tubes. , 2013, Molecular plant.
[5] L. Zhang,et al. Disruption of cellulose synthesis by 2,6-dichlorobenzonitrile affects the structure of the cytoskeleton and cell wall construction in Arabidopsis. , 2013, Plant biology.
[6] Anja Geitmann,et al. The pollen tube paradigm revisited. , 2012, Current opinion in plant biology.
[7] Anja Geitmann,et al. The Cell Wall of the Arabidopsis Pollen Tube—Spatial Distribution, Recycling, and Network Formation of Polysaccharides1[C][W][OA] , 2012, Plant Physiology.
[8] Anja Geitmann,et al. Pollen tube growth: Getting a grip on cell biology through modeling , 2012 .
[9] Jeremy N. Skepper,et al. An Osmotic Model of the Growing Pollen Tube , 2012, PloS one.
[10] Sebastian Wolf,et al. Growth control by cell wall pectins , 2012, Protoplasma.
[11] G. Janssen,et al. Wall architecture with high porosity is established at the tip and maintained in growing pollen tubes of Nicotiana tabacum. , 2011, The Plant journal : for cell and molecular biology.
[12] C. Chen,et al. Arabidopsis CSLD1 and CSLD4 are required for cellulose deposition and normal growth of pollen tubes , 2011, Journal of experimental botany.
[13] Anja Geitmann,et al. Regulator or Driving Force? The Role of Turgor Pressure in Oscillatory Plant Cell Growth , 2011, PloS one.
[14] A. Emons,et al. Distribution of Callose Synthase, Cellulose Synthase, and Sucrose Synthase in Tobacco Pollen Tube Is Controlled in Dissimilar Ways by Actin Filaments and Microtubules1[W] , 2010, Plant Physiology.
[15] A. Geitmann,et al. Under pressure, cell walls set the pace. , 2010, Trends in plant science.
[16] Jian Wu,et al. BoPMEI1, a pollen-specific pectin methylesterase inhibitor, has an essential role in pollen tube growth , 2010, Planta.
[17] Y. Chebli,et al. Morphogenesis of complex plant cell shapes: the mechanical role of crystalline cellulose in growing pollen tubes , 2010, Sexual Plant Reproduction.
[18] A. Geitmann,et al. Polar growth in pollen tubes is associated with spatially confined dynamic changes in cell mechanical properties. , 2009, Developmental biology.
[19] Peter K Hepler,et al. Exocytosis Precedes and Predicts the Increase in Growth in Oscillating Pollen Tubes[W] , 2009, The Plant Cell Online.
[20] A. Geitmann,et al. Mechanics and modeling of plant cell growth. , 2009, Trends in plant science.
[21] J. Boyer. Cell wall biosynthesis and the molecular mechanism of plant enlargement. , 2009, Functional plant biology : FPB.
[22] A. Bacic,et al. Molecular control of the glucan synthase-like protein NaGSL1 and callose synthesis during growth of Nicotiana alata pollen tubes. , 2008, The Biochemical journal.
[23] J. Marrison,et al. An aniline blue staining procedure for confocal microscopy and 3D imaging of normal and perturbed cellular phenotypes in mature Arabidopsis embryos: Aniline blue staining of Arabidopsis embryos , 2008 .
[24] C. Faleri,et al. Sucrose Synthase Is Associated with the Cell Wall of Tobacco Pollen Tubes1[W] , 2008, Plant Physiology.
[25] Jesús Cuartero,et al. Biomechanics of isolated tomato (Solanum lycopersicum L.) fruit cuticles: the role of the cutin matrix and polysaccharides. , 2007, Journal of experimental botany.
[26] Monika S. Doblin,et al. Proteomic and biochemical evidence links the callose synthase in Nicotiana alata pollen tubes to the product of the NaGSL1 gene. , 2007, The Plant journal : for cell and molecular biology.
[27] D. Chen,et al. Localization of arabinogalactan proteins in anther, pollen, and pollen tube of Nicotiana tabacum L. , 2007, Protoplasma.
[28] P. Schopfer,et al. Biomechanics of plant growth. , 2006, American journal of botany.
[29] V. Citovsky,et al. Pollen-specific pectin methylesterase involved in pollen tube growth. , 2006, Developmental biology.
[30] M. Bosch,et al. Silencing of the tobacco pollen pectin methylesterase NtPPME1 results in retarded in vivo pollen tube growth , 2006, Planta.
[31] Peter K Hepler,et al. Pectin Methylesterases and Pectin Dynamics in Pollen Tubes , 2005, The Plant Cell Online.
[32] F. Baluška,et al. Effects of Brefeldin A on Pollen Germination and Tube Growth. Antagonistic Effects on Endocytosis and Secretion1[W] , 2005, Plant Physiology.
[33] D. Cosgrove. Growth of the plant cell wall , 2005, Nature Reviews Molecular Cell Biology.
[34] Peter K Hepler,et al. Pectin Methylesterase, a Regulator of Pollen Tube Growth1[w] , 2005, Plant Physiology.
[35] A. Geitmann,et al. Pectin and the role of the physical properties of the cell wall in pollen tube growth of Solanum chacoense , 2005, Planta.
[36] A. Geitmann,et al. More Than a Leak Sealant. The Mechanical Properties of Callose in Pollen Tubes1 , 2005, Plant Physiology.
[37] M. Messerli,et al. Ionic and osmotic disruptions of the lily pollen tube oscillator: testing proposed models , 2003, Planta.
[38] H. Vihinen,et al. Movement of generative cell and vegetative nucleus in tobacco pollen tubes is dependent on microtubule cytoskeleton but independent of the synthesis of callose plugs , 2002, Sexual Plant Reproduction.
[39] J. Marrison,et al. Technical advance: an aniline blue staining procedure for confocal microscopy and 3D imaging of normal and perturbed cellular phenotypes in mature Arabidopsis embryos. , 2000, The Plant journal : for cell and molecular biology.
[40] G. Cai,et al. Identification and Characterization of a Novel Microtubule-Based Motor Associated with Membranous Organelles in Tobacco Pollen Tubes , 2000, Plant Cell.
[41] M. Cresti,et al. Localization of pectins in the pollen tube wall of Ornithogalum virens L. Does the pattern of pectin distribution depend on the growth rate of the pollen tube? , 2000, Planta.
[42] A. Bacic,et al. Location of cellulose and callose in pollen tubes and grains of Nicotiana tabacum , 1998, Planta.
[43] A. Bacic,et al. Membrane fractionation and enrichment of callose synthase from pollen tubes of Nicotiana alata Link et Otto , 1998, Planta.
[44] P. K. Hepler,et al. POLLEN GERMINATION AND TUBE GROWTH. , 1997, Annual review of plant physiology and plant molecular biology.
[45] R. Benkert,et al. The turgor pressure of growing lily pollen tubes , 1997, Protoplasma.
[46] P. Hepler,et al. Enforced growth-rate fluctuation causes pectin ring formation in the cell wall of Lilium longiflorum pollen tubes , 1996, Planta.
[47] A. Geitmann,et al. The Role of the Cytoskeleton and Dictyosome Activity in the Pulsatory Growth of Nicotiana tabacum and Petunia hybrida Pollen Tubes , 1996 .
[48] A. Geitmann,et al. Immunogold localization of arabinogalactan proteins, unesterified and esterified pectins in pollen grains and pollen tubes ofNicotiana tabacum L. , 1995, Protoplasma.
[49] M. Cresti,et al. Distribution of unesterified and esterified pectins in cell walls of pollen tubes of flowering plants , 1994, Sexual Plant Reproduction.
[50] M. Kroh,et al. Ultrastructure of cell wall and plugs of tobacco pollen tubes after chemical extraction of polysaccharides , 1982, Planta.
[51] M. Steer,et al. Determination of secretory vesicle production rates by dictyosomes in pollen tubes of Tradescantia using cytochalasin D. , 1981, Journal of cell science.
[52] J. Brewbaker,et al. THE ESSENTIAL ROLE OF CALCIUM ION IN POLLEN GERMINATION AND POLLEN TUBE GROWTH , 1963 .
[53] Thomas Rausch,et al. Elaborate spatial patterning of cell-wall PME and PMEI at the pollen tube tip involves PMEI endocytosis, and reflects the distribution of esterified and de-esterified pectins. , 2008, The Plant journal : for cell and molecular biology.
[54] D. Ye,et al. Roles of Pectin Methylesterases in Pollen‐Tube Growth , 2007 .
[55] M. Cresti,et al. Callose deposition and plug formation in Petunia pollen tubes in situ , 2004, Planta.
[56] M. Cresti,et al. Germination and early tube development in vitro of Lycopersicum peruvianum pollen: Ultrastructural features , 2004, Planta.
[57] L. Loguercio. Pollen treatment in high osmotic potential: a simple tool for in vitro preservation and manipulation of viability in gametophytic populations , 2002 .
[58] Johnw . Anderson,et al. 2,6-Dichlorobenzonitrile, a cellulose biosynthesis inhibitor, affects morphology and structural integrity of petunia and lily pollen tubes , 2002 .
[59] L. Taiz,et al. Plant Cell Expansion: Regulation of Cell Wall Mechanical Properties , 1984 .