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A cytochemical study on the role of ATPases during pollen germination in Agapanthus umbelatus L'Her.

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Summary

Cytochemical detection of ATPase activity in the pollen grain (PG) and pollen tube (PT) of Agapanthus umbelatus showed that the enzymes concerned presented specific patterns of membrane distribution according to their ionic dependencies and to the timecourse of germination and tube growth. In the pollen tubes Ca2+-ATPases were mainly localized in mitochondria and ER membranes, while Mg2+-ATPases were found especially in the tonoplast and in the membrane of the P-particles. K+-ATPases showed a high activity at the plasma membrane. In the pollen grain similar patterns of ATPase activity were observed. The highest activity of all three types was observed at the plasma membrane of the grain and at the intine and inner exine layers of the cell wall. The activity observed in the pollen grain cell wall decreased with germination time. In vivo germination studies in the presence of specific inhibitors of the ATPases showed patterns of inhibition that could be correlated with the corresponding ATPase putative role.

The results are discussed in terms of the ultrastructural organization of the PG and PT, especially those correlated with (1) formation and maintenance of ionic gradients throughout the PT, (2) polarized growth and (3) hydrodynamics of PT elongation.

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Abbreviations

PT:

Pollen tube

PG:

pollen grain

PTW:

pollentube wall

PGW:

pollen-grain wall

ER:

endoplasmic reticulum

NEM:

N-ethylmaleimide

References

  • Anthon GE, Spanswick RM (1986) Purification and properties of the H+-translocating ATPases from the plasma membrane of tomato roots. Plant Physiol 81:1080–1085

    Google Scholar 

  • Bednarska E (1989) The effect of exogenous Ca2+ ions on pollen grain germination and pollen tube growth. Investigations with 45Ca2+ together with verapamil, La3+, and ruthenium red. Sex Plant Reprod 2:53–58

    Google Scholar 

  • Brewbaker JL, Kwack BH (1963) The essential role of calcium ion in pollen germination and pollen tube growth. Am J Bot 50:859–865

    CAS  Google Scholar 

  • Briskin DP (1986) Plasma membrane H+-transporting ATPase, role in potassium ion transport? Physiol Plant 68:159–163

    Google Scholar 

  • Buckout TJ (1984) Characterization of Ca2+ transport in purified endoplasmic reticulum membrane vesicles from Lepidium sativum L. roots. Plant Physiol 76:962–967

    Google Scholar 

  • Bush DR, Sze H (1986) Calcium transport in tonoplast and endoplasmic reticulum vesicles isolated from cultured carrot cells. Plant Physiol 80:549–555

    Google Scholar 

  • Chanson A, McNaughton E, Taiz L (1984) Evidence for a KCl-stimulated, Mg2+-ATPase on the Golgi of corn coleoptiles. Plant Physiol 76:498–507

    Google Scholar 

  • Cresti M, Ciampolini F, Mulcahy DLM, Mulcahy G (1985) Ultra-structure of Nicotiana alata pollen, its germination and early tube formation. Am J Bot 72:719–727

    Google Scholar 

  • Doll S, Hauer R (1981) Determination of the membrane potential of vacuoles isolated from red-beet storage tissue. Planta 152:153–158

    Google Scholar 

  • Elleman CJ, Dickinson HG (1986) Pollen-stigma interactions in Brassica. IV. Structural reorganization in the pollen grains during hydrations. J Cell Sci 80:141–157

    Google Scholar 

  • Fichmann J, Taiz L, Gallagher S, Leonard RT, Depta H, Robinson DG (1989) Immunological comparisons of the coated vesicle H+-ATPases of plants and animals. Protoplasma 153:117–125

    Google Scholar 

  • Gallagher SR, Leonard RT (1982) Effect of vanadate, molybdate and azide on membrane-associated ATPase and soluble phosphatase activities of corn roots. Physiol Plant 70:1335–1440

    Google Scholar 

  • Giannini JL, Gildensoph LH, Reynolds-Niesman I, Briskin DP (1987) Calcium transport in sealed vesicles from red beet (Beta vulgaris L.) storage tissue. I. Characterization of a Ca2+-pumping ATPase associated with the endoplasmic reticulum. Plant Physiol 85:1129–1136

    Google Scholar 

  • Hager A, Hermsdorf P (1981) A H+/Ca2+ antiporter in membranes of microsomal vesicles from maize coleoptiles, a secondary energized Ca2+ pump. Z Naturforsch B 36:1009–1012

    Google Scholar 

  • Hager A, Berthold W, Biber W, Edel H-G, Lanz Ch, Schiebel G (1986) Primary and secondary energized ion translocating systems on membranes of plant cells. Ber Deutsch Bot Ges 99:281–295

    Google Scholar 

  • Hulstaert CE, Kalicharan D, Hardonk MJ (1983) Cytochemical demonstration of phosphatases in the rat liver by a ceriumbased method in combination with osmium tetroxide and potassium ferrocynaide postfixation. Histochemistry 78:71–79

    Google Scholar 

  • Jiao X-Z, Ni J-S, Li W-L, Wang YZ (1988) Comparative studies on vacuolar membrane, mitochondrial and plasma membrane-ATPases of rice and oat roots. Acta Biol Expt Sin 21:409–416

    Google Scholar 

  • Katz DB, Sussman MR, Mierzwa RJ, Evert RF (1988) Cytochemical localization of ATPase activity in oat roots localizes a plasma membrane-associated soluble phosphatase, not the proton pump. Plant Physiol 86:841–847

    Google Scholar 

  • Lin J, Uwate WJ, Stallman V (1977) Ultrastructural localization of acid phosphatase in the pollen tube of Prunus avium L. (sweet cherry). Planta 135:183–190

    Google Scholar 

  • Leigh RA, Walker RR (1980) ATPase and acid phosphatase activities associated with vacuoles isolated from storage roots of red beet (Beta vulgaris L.). Planta 150:222–229

    Google Scholar 

  • Malhó R, Feijó JA, Pais MSS (1991) Effect of electrical fields and external ionic currents on pollen tube orientation. Sex Plant Reprod 5:57–63

    Google Scholar 

  • Mascarenhas JP (1975) The biochemistry of angiosperm pollen development. Bot Rev 41:259–314

    Google Scholar 

  • Mollenhauer HH (1964) Plastic embedding for use in electron microscopy. Stain Technol 39:111–114

    Google Scholar 

  • Poole RJ (1978) Energy coupling for membrane transport. Annu Rev Plant Physiol 29:437–460

    Google Scholar 

  • Rasi-Caldogno F, Pugliarello MC, De Michelis MI (1987) The Ca2+-transport ATPase of plant plasma membrane catalyzes an H+/Ca2+ exchange. Plant Physiol 83:994–1000

    Google Scholar 

  • Reiss H-D, Herth W, Schnepf E (1983) The tip-to-base calcium gradient in pollen tubes of Lilium longiflorum measured by proton-induced X-ray emission (PIXE). Protoplasma 115:153–159

    Google Scholar 

  • Rodríguez-Rosales MP, Roldán M, Belver A, Donaire JP (1989) Correlation between in vitro germination capacity and proton extrusion in olive pollen. Plant Physiol Biochem 27:723–728

    Google Scholar 

  • Schessner M, Schnorr B (1990) Actin cytoskeleton and calcium-ATPase in the process of abomasal mucus secretion in cattle. Cell Tissue Res 260:109–116

    Google Scholar 

  • Schroeder JI, Hedrich R (1989) Involvement of ion channels and active transport in osmoregulation and signaling of higher plant cells. Trends Biochem Sci 14:187–192

    Google Scholar 

  • Smith FA, Raven JA (1979) Intracellular pH and its regulation. Annu Rev Plant Physiol 30:289–311

    Google Scholar 

  • Sze H (1985) H+-translocating ATPases, advances using membrane vesicles. Annu Rev Plant Physiol 36:175–208

    Google Scholar 

  • Wagner GJ, Lin W (1982) An active proton pump of intact vacuoles isolated from Tulipa petals. Biochim Biophys Acta 689:261–266

    Google Scholar 

  • Weisenseel MH, Jaffe LF (1976) The major growth current trough lily pollen tubes enters as K+ and leaves as H+. Planta 133:1–7

    Google Scholar 

  • Weisenseel MH, Nuccitelli R, Jaffe LF (1975) Large electrical currents traverse growing pollen tubes. J Cell Biol 66:556–567

    Google Scholar 

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Feijó, J.A., Malhó, R. & Pais, M.S.S. A cytochemical study on the role of ATPases during pollen germination in Agapanthus umbelatus L'Her.. Sexual Plant Reprod 5, 138–145 (1992). https://doi.org/10.1007/BF00194873

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