PLANT PHYSIOLOGY · 1984 · 92 citations · 16 references
Ferricyanide ReductionBotanyExtracellular Electron AcceptorsPlant BiochemistryRedox BiologyOxidative StressCell Membrane PotentialBioenergeticsMembrane TransportBiophysicsBiochemistryIron-deficient RootsMembrane BiologyMembrane SystemMembrane PermeationPlant MetabolismMembrane PotentialNatural SciencesCellular NadphMedicinePlant Physiology
Transfer of electrons from the cytosol of bean (Phaseolus vulgaris L.) root cells to extracellular acceptors such as ferricyanide and Fe(III)EDTA causes a rapid depolarization of the membrane potential. This effect is most pronounced (30-40 millivolts) with root cells of Fe-deficient plants, which have an increased capacity to reduce extracellular ferric salts. Ferrocyanide has no effect. In the state of ferricyanide reduction, H(+) (1H(+)/2 electrons) and K(+) ions are excreted. The reduction of extracellular ferric salts by roots of Fe-deficient bean plants is driven by cellular NADPH (Sijmons, van den Briel, Bienfait 1984 Plant Physiol 75: 219-221). From this and from the membrane potential depolarization, we conclude that trans-plasma membrane electron transfer from NADPH is the primary process in the reduction of extracellular ferric salts.
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Mechanism of Iron Uptake by Peanut Plants
Volker Römheld, Horst Marschner · PLANT PHYSIOLOGY · 1983 · 402 citations · Full text
Nutrition, Engineering, Botany +17
Mechanism of iron uptake by plants
J. C. Brown · Plant Cell & Environment · 1978 · 249 citations
IRON CHLOROSIS IN SOYBEANS AS RELATED TO THE GENOTYPE OF ROOTSTALK
J. C. Brown, Roger S. Holmes, L. O. Tiffin · Soil Science · 1961 · 107 citations