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PMID: 16330526 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Oscillations in plant membrane transport: model predictions, experimental validation, and physiological implications.

Journal of experimental botany ·Vol. 57 ·No. 1 ·2006-00-00 ·Pages 171-84

Shabala S, Shabala L, Gradmann D, Chen Z, Newman I, Mancuso S

Abstract

Although oscillations in membrane-transport activity are ubiquitous in plants, the ionic mechanisms of ultradian oscillations in plant cells remain largely unknown, despite much phenomenological data. The physiological role of such oscillations is also the subject of much speculation. Over the last decade, much experimental evidence showing oscillations in net ion fluxes across the plasma membrane of plant cells has been accumulated using the non-invasive MIFE technique. In this study, a recently proposed feedback-controlled oscillatory model was used. The model adequately describes the observed ion flux oscillations within the minute range of periods and predicts: (i) strong dependence of the period of oscillations on the rate constants for the H+ pump; (ii) a substantial phase shift between oscillations in net H+ and K+ fluxes; (iii) cessation of oscillations when H+ pump activity is suppressed; (iv) the existence of some 'window' of external temperatures and ionic concentrations, where non-damped oscillations are observed: outside this range, even small changes in external parameters lead to progressive damping and aperiodic behaviour; (v) frequency encoding of environmental information by oscillatory patterns; and (vi) strong dependence of oscillatory characteristics on cell size. All these predictions were successfully confirmed by direct experimental observations, when net ion fluxes were measured from root and leaf tissues of various plant species, or from single cells. Because oscillatory behaviour is inherent in feedback control systems having phase shifts, it is argued from this model that suitable conditions will allow oscillations in any cell or tissue. The possible physiological role of such oscillations is discussed in the context of plant adaptive responses to salinity, temperature, osmotic, hypoxia, and pH stresses.

MeSH Terms
Adaptation, Physiological Cell Membrane/physiology Cell Size Feedback, Physiological Ion Pumps/physiology Ion Transport/physiology Models, Biological Oscillometry Oxygen/metabolism Plant Physiological Phenomena Potassium/metabolism Proton Pumps/physiology Sodium Chloride/metabolism Temperature
Chemicals
Ion Pumps Proton Pumps Sodium Chloride Potassium Oxygen
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Shabala Sergey
School of Agricultural Science, University of Tasmania, Hobart, Australia. Sergey.Shabala@utas.edu.au
Shabala Lana
Gradmann Dietrich
Chen Zhonghua
Newman Ian
Mancuso Stefano
Article Info
Journal
Journal of experimental botany
Abbr.
J Exp Bot
ISSN
0022-0957
Published
2006-00-00
Epub
2005-00-05
Pages
171-84
Language
English
Region
England
NLM ID
9882906
Subset
IM
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