Membrane potential changes during pollen germination and tube growth

Maria Breygina1, A. V. Smirnova1, Н. П. Матвеева1, I. P. Yermakov1
1Biological Faculty, Moscow State University, Moscow, Russia

Tóm tắt

Từ khóa


Tài liệu tham khảo

Bedlack, R.S., Wei, M., and Loew, L.M., Localized Membrane Deporizations and Localized Calcium Influx during Electric Field-Guided Neurite Growth, Neuron, 1992, vol. 9, pp. 393–403.

Brauner, T., Hulser, D.F., and Strasser, R.J., Comparative Measurements of Membrane Potentials with Microelectrodes and Voltage-Sensitive Dyes, Biochim. Biophys. Acta, 1984, vol. 771, pp. 208–216.

Breygina, M.A., Matveeva, N.P., and Yermakov, I.P., The Role of Cl− in Pollen Germination and Tube Growth, Ontogenez, 2009, vol. 40, no. 3, pp. 199–207.

Certal, A.C., Almeida, R.B., Carvalho, L.M., Wong, E., Moreno, N., Michard, E., Carneiro, J., Rodirguez-Leon, J., Wu, H.-M., Cheung, A.Y., and Feijo, J.A., Exclusion of a Proton ATPase from the Apical Membrane Is Associated with Cell Polarity and Tip Growth in Nicotiana tabacum Pollen Tubes, Plant Cell, 2008, vol. 20, pp. 614–634.

Cheung, A.Y. and Wu, H.-M., Structural and Functional Compartmentalization in Pollen Tubes, J. Exper. Botany, 2007, vol. 58, pp. 75–82.

Cheung, A.Y. and Wu, H.-M., Structural and Signaling Networks for the Polar Cell Growth Machinery in Pollen Tubes, Annu. Rev. Plant Biol., 2008, vol. 59, pp. 547–572.

Dutta, R. and Robinson, K.R., Identification and Characterization of Stretch-Activated Ion Channels in Pollen Protoplasts, Plant Physiol., 2004, vol. 135, pp. 1398–1406.

Emri, M., Balkay, L., Krasznai, Z., Tron, L., and Marian, T., Wide Applicability of a Flow Cytometric Assay to Measure Absolute Membrane Potentials on the Millivolt Scale, Eur. Biophys. J., 1998, vol. 28, pp. 78–83.

Fan, L.-M., Wang, Y.-F., and Wu, W.-H., Outward K+ Channels in Brassica chinensis Pollen Protoplasts Are Regulated by External and Internal pH, Protoplasma, 2003, vol. 220, pp. 143–152.

Feijó, J.A., Malhó, R., and Obermeyer, G., Ion Dynamics and Its Possible Role during in Vitro Pollen Germination and Tube Growth, Protoplasma, 1995, vol. 187, pp. 155–167.

Gamalei, I.A., Kirpichnikova, K.M., Ishchenko, A.M., Zhakhov, I.V., and Klyubin, I.V., Mekhanizm Giperpolyarizatsii Plazmaticheskoi Membrany Makrofagov I Astrotsitov Pri Aktivatsii, Tsitologiia, 1998, vol. 40, nos. 8/9, pp. 773–778.

Gamaley, I.A., Kirpichnikova, K.M., and Klyubin, I.V., Superoxide Release Is Involved in Membrane Potential Changes in Mouse Peritoneal Macrophages, Free Rad. Biol. Med., 1998, vol. 24, pp. 168–174.

Gross, D., Loew, L.M., and Webb, W.W., Optical Imaging of Cell Membrane Potential Changes Induced by Applied Electrical Fields, Biophys. J., 1986, vol. 50, pp. 339–348.

Haugland, R.P., The Handbook: A Guide to Fluorescent Probes and Labeling Technologies, Fugene: OR, Molecular Probes Inc., 2005.

Hepler, P.K., Lovy-Wheeler, A., McKenna, S., and Kunkel, J.G., Ions and Pollen Tube Growth, in The Pollen Tube, Berlin, Heidelberg, Springer-Verlag, 2006, pp. 47–69.

Heslop-Harrison, J., Pollen Germination and Pollen Tube Growth, Int. Rev. Cytol., 1987, vol. 107, pp. 1–78.

Holdaway-Clarke, T.L. and Hepler, P.K., Control of Pollen Tube Growth: Role of Ion Gradients and Fluxes, New Phytologist., 2003, vol. 159, pp. 539–556.

Iwano, M., Shiba, H., Miwa, T., Che, F.-S., Takayama, S., Nagai, T., Miyawaki, A., and Isogai, A., Ca21 Dynamics in a Pollen Grain and Papilla Cell during Pollination of Arabidopsis, Plant Physiol., 2004, vol. 136, pp. 3562–3571.

Johnson, I., Fluorescent Probes for Living Cells, Histochem. J., 1998, vol. 30, pp. 123–140.

Kroh, M. and Mnuiman, B., Exocytosis in Non-plasmolyzed and Plasmolyzed Tobacco Pollen Tubes. A Freeze-Fracture Study, Planta, 1985, vol. 166, pp. 287–299.

Kropf, D.L., Establishment and Expression of Cellular Polarity in Fucoid Zygotes, Microbiol. Rev., 1992, vol. 56, pp. 316–339.

Loew, L.M., Potentiometric Dyes: Imaging Electrical Activity of Cell Membranes, Pure Appl. Chem., 1996, vol. 68, pp. 1405–1409.

Malhó, R., Read, N.D., Trewavas, A.J., and Pais, M.S., Calcium Channel Activity during Pollen Tube Growth and Reorientation, The Plant Cell, 1995, vol. 7, pp. 1173–1184.

Matveeva, N.P., Andreyuk, D.S., and Yermakov, I.P., Transport of Cl− across the Plasma Membrane during Pollen Grain Germination in Tobacco, Biokhimiya, 2003, vol. 68, no. 11, pp. 1550–1555.

Matveeva, N.P., Andreyuk, D.S., Lazareva, E.A., and Yermakov, I.P., The Effect of Concanavalin A on Membrane Potential and Intracellular pH during Activation in Vitro of Tobacco Pollen Grains, Fiziol. Rast., 2004, vol. 51, no. 4, pp. 549–554.

Matveeva, N.P., Voitsekh, O.O., Andreyuk, D.S., and Yermakov, I.P., Role of H+-ATPase and Alternative Oxidase in Regulation of Intracellular pH at Different Stages of Development of the Tobacco Male Gametophyte, Ontogenez, 2002, vol. 33, no. 6, pp. 436–443.

Messerli, M.A., Smith, P.J.S., Lewis, R.C., and Robinson, K.R., Chloride Fluxes in Lity Pollen Tubes: A Critical Reevaluation, Plant J., 2004, vol. 40, pp. 799–812.

Michard, E., Alves, F., and Feijó, J.A., The Role of Ion Fluxes in Polarized Cell Growth and Morphogenesis: The Pollen Tube as an Experimental Paradigm, Int. J. Dev. Biol., 2009, vol. 52, pp. 2296–2296.

Montana, V., Farkas, D.L., and Loew, L.M., Dual Wavelength Ratiometric Fluorescence Measurements of Membrane Potential, Biochemistry, 1989, vol. 28, pp. 4536–4539.

Mouline, K., Very, A.-A., Gaymard, F., Boucherez, J., Pilot, G., Devic, M., Bouchez, D., Thibaud, K.-B., and Sentenac, H., Pollen Tube Development and Competitive Ability Are Impaired by Disruption of a Shaker K+ Channel in Arabidopsis, Genes Devel., 2002, vol. 16, pp. 339–350.

Nuccitelli, R., Ionic Currents in Morphogenesis, Experientia, 1988, vol. 44, pp. 657–666.

Obermeyer, G. and Blatt, M.R., Electrical Properties of Intact Pollen Grains of Lilium longiflorum: Characteristics of the Non-germinating Pollen Grain, J. Exper. Botany, 1995, vol. 46, pp. 803–813.

Plašek, J. and Sigler, K., Slow Fluorescent Indicators of Membrane Potential: A Survey of Different Approaches to Probe Response Analysis, J. Photochem. Photobiol. B: Biology, 1996, vol. 33, pp. 101–124.

Roberts, S.K., Plasma Membrane Anion Channels in Higher Plants and Their Putative Functions in Roots, New Phytol., 2006, vol. 169, pp. 647–666.

Robinson, K.R. and Messerli, M.A., Left/Right, Up/Down: The Role of Endogenous Electrical Fields as Directional Signals in Development, Repair and Invasion, BioEssays, 2003, vol. 25, pp. 759–766.

Sundelacruz, S., Levin, M., and Kaplan, D.L., Membrane Potential Controls Adipogenic and Osteogenic Differentiation of Mesenchymal Stem Cells, PLoS ONE, 2008, vol. 3, no. 11, p. e3737.

Tanaka, I., Kutazume, C., and Ito, M., Isolation and Culture of Lily Pollen Protoplasts, Plant Sci., 1978, vol. 50, pp. 205–211.

Taylor, L.P. and Hepler, P.K., Pollen Germination and Tube Growth, Annu. Rev. Plant Physiol. Plant Mol. Biol., 1997, vol. 48, pp. 461–491.

Weisenseel, M.H., Nuccitelli, R., and Jaffe, L.F., Large Electrical Currents Traverse Growing Pollen Tubes, J. Cell Biol., 1975, vol. 9, pp. 556–567.

Weisenseel, M.H. and Wenisch, H.H., The Membrane Potential of Growing Lily Pollen, J. Plant Physiol., 1980, vol. 99, pp. 313–323.

Zhang, J., Davidson, R.M., Wei, M.-de, and Loew, L.M., Membrane Electric Properties by Combined Patch Clamp and Fluorescence Ratio Imaging in Single Neurons, Biophys. J., 1998, vol. 74, pp. 48–53.

Zhao, J., Mollet, J.-C., and Lord, E.M., Lily (Lilium longiflorum L.) Pollen Protoplast Adhesion Is Increased in the Presence of the Peptide SCA, Sex Plant Reprod., 2004, vol. 16, pp. 227–233.

Zonia, L., Cordeiro, S., Tupy, J., and Feijó, J.A., Oscillatory Chloride Efflux at the Pollen Tube Apex Has a Role in Growth and Cell Volume Regulation and Is Targeted by Inositol 3,4,5,6-Tetrakisphosphate, Plant Cell, 2002, vol. 14, pp. 2233–2249.