Modifications of extracellular electric and ionic gradients preceding the transition from tip growth to isodiametric expansion in the apical cell of the fern gametophyte.

Fern (Onoclea sensibilis L.) gametophytes exposed to blue light are induced to undergo a morphological transition from a tip-growing filament to a planar prothallus. Extracellular measurements of electric currents and localized ion activities around the apical cell of 8 to 10 day-old gametophytes were made with a vibrating probe and ion selective electrodes. In darkness, we observed exit current densities of an average of 75 nanoamperes per square centimeter near the tip and 2 to 15 nanoamperes per square centimeter along the lateral walls of this cell. Measurements with ion selective electrodes for H(+), K(+), and Ca(2+) showed that this cell was bounded by a thin layer of medium that was depleted in K(+) and Ca(2+) and exhibited a lower pH than the bulk solution. Both the K(+) and Ca(2+) depletion zones and the zone of higher acidity were particularly pronounced at the tip end of the cell; the pH at 2 micrometers from the tip was nearly 0.5 units more acid than the bulk medium at pH 6. Disruption of steady state, external gradients with media that contained lower concentrations of H(+), K(+), Ca(2+), or Cl(-) produced certain differences in the rates of restoration of particular ion zones, raising the possibility that some of the ion migrations are interdependent. Within 15 minutes after irradiation with blue light, current leaving the tip declined to levels which were indistinguishable from those leaving the lateral walls and there was a rapid lowering in the rates of tip acidification and K(+) depletion near the tip. The rapid dissipation of both the longitudinally aligned electrical field and the tip-localized asymmetries in external cation distribution in blue light suggest that loss of electrical polarity in this tip growing cell may be an initial step in the chain of events which govern changes in cell shape.

[1]  W. J. Lucas,et al.  Ion transport and the vibrating probe. , 1986, Biophysical journal.

[2]  H. Sze H+-Translocating ATPases: Advances Using Membrane Vesicles , 1985 .

[3]  J. Caldwell,et al.  Transcellular ion currents in the water mold Achlya. Amino acid proton symport as a mechanism of current entry , 1984, The Journal of cell biology.

[4]  M. Jarvis Structure and properties of pectin gels in plant cell walls , 1984 .

[5]  B. Horwitz,et al.  Electric Currents around Growing Trichoderma Hyphae, before and after Photoinduction of Conidiation. , 1984, Plant physiology.

[6]  L. Taiz,et al.  Plant Cell Expansion: Regulation of Cell Wall Mechanical Properties , 1984 .

[7]  M. Furuya Photomorphogenesis in Ferns , 1983 .

[8]  T. J. Cooke,et al.  Electrical Changes in the Apical Cell of the Fern Gametophyte during Irradiation with Photomorphogenetically Active Light. , 1982, Plant physiology.

[9]  M. Weisenseel,et al.  Ionic Currents as Control Mechanism in Cytomorphogenesis , 1981 .

[10]  R Y Tsien,et al.  Neutral carrier ion-selective microelectrodes for measurement of intracellular free calcium. , 1980, Biochimica et biophysica acta.

[11]  R. J. Poole Energy Coupling for Membrane Transport , 1978 .

[12]  R. Nuccitelli Oöplasmic segregation and secretion in the Pelvetia egg is accompanied by a membrane-generated electrical current. , 1978, Developmental biology.

[13]  R. Nuccitelli,et al.  Electrical controls of development. , 1977, Annual review of biophysics and bioengineering.

[14]  R. Cleland,et al.  Control of plant cell enlargement by hydrogen ions. , 1977, Current topics in developmental biology.

[15]  B. D. Davis Bending growth in fern gametophyte protonema , 1975 .

[16]  R. Nuccitelli,et al.  The pulse current pattern generated by developing fucoid eggs , 1975, The Journal of cell biology.

[17]  R. Nuccitelli,et al.  Spontaneous current pulses through developing fucoid eggs. , 1974, Proceedings of the National Academy of Sciences of the United States of America.

[18]  R. Keynes,et al.  ELECTROGENIC ION PUMPS , 1974, Annals of the New York Academy of Sciences.

[19]  V. Raghavan,et al.  Photomorphogenesis and nucleic acid metabolism in fern gametophytes. , 1973, Advances in morphogenesis.

[20]  J. Dainty,et al.  Ionic relations of cells of Chara australis I , 1960 .