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2005 | 27 | 1 |

Tytuł artykułu

Biophysical mechanisms of physiological water exchange with the surroundings by the cells of the Nitella translucens and Chara corallina plants

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
In the present study, we discussed the biophysical mechanisms of stationary wa ter ex change with the surroundings by the Nitella translucens and Chara corallina plants. It was postulated that these plants, which subsist under total immersion in a water medium, conduct water exchange within single cells individually. With the application of the equations of mechanistic formalism for membrane transport to our investigations (Kargol and Kargol 2000, Kargol 2001, Kargol 2002, Kargol and Kargol 2003, 2003*), it was demonstrated that individual cells of these plants can simultaneously absorb and remove considerable amounts of water at constant cell volume, i.e. under stationary conditions. Water absorption is osmosis-driven, and its removal is effected by the cell turgor pressure.

Wydawca

-

Rocznik

Tom

27

Numer

1

Opis fizyczny

p.71-77,fig.,ref.

Twórcy

autor
  • Swietokrzyska Academy, Swietokrzyska 15, 25-406 Kielce, Poland
autor

Bibliografia

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  • Kargol A. 2001. A mechanistic model of transport processes in porous membranes generated by osmotic and hydrostatic pressures, J. Membrane Sci. 191: 61-69.
  • Kargol M, Kargol A. 2003. Mechanistic formalism for membrane transport generated by osmotic and mechanical pressure. Gen. Physiol. Biophys. 22: 51-68.
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  • Kargol M. 2002. Mechanistic approach to membrane mass transport processes, Cellular and Molecular Biol. Let ters. 7: 983-993.
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  • Kargol M., Kargol A. 2004. A new approach to the issues of water exchange regulation by a living cell under stationary conditions, J. Biology Physics – sending to publication.
  • Kargol M., Kargol A. 2003*. Mechanistic equations for membrane substance transport and their identity with Kedem-Katchalsky equations. Biophysical Chemistry 103: 117-127.
  • Kargol M., Suchanek G., Kargol A. 2001. Modification and quantitative analysis of the Münch model in the integrated system of water translocation in plants, Gen. Physiol. Biophys. 20: 191-202.
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Typ dokumentu

Bibliografia

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