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Iron requirement for and effects of promoters and inhibitors of ethylene action on stimulation of Fe(III)-chelate reductase in roots of strategy I species
Authors:Francisco J Romera  Ross M Welch  Wendell A Norvell  Stephen C Schaefer
Institution:(1) Departamento de Agronomia, Universidad de Cordoba, Cordoba, Spain;(2) USDA-ARS, US Plant, Soil and Nutrition Laboratory, Tower Road, Ithaca, NY, USA;(3) US Plant, Soil and Nutrition Laboratory, Tower Road, 14853 Ithaca, NY, USA
Abstract:Stimulation of root Fe(III) reductase activity by iron additions to iron-deficient growth media may be the result of iron activation of 1-aminocyclopropane-1-carboxylic acid (ACC) oxidase required for ethylene biosynthesis. Two different ethylene inhibitors, aminooxyacetic acid (AOA) (20 mgr m; ACC synthase inhibitor) and cobalt (3 mgr m CoCl2; ACC oxidase inhibitor), were used to study the effects of iron supply and cobalt inhibition on ethylene action in controlling the activity of Fe(III)-chelate reductase in pea (Pisum sativum L.) roots. Supplying 20 gm m Fe(III)-N,N-ethylenebis2-(2-hydroxypheyl)-glycine Fe(III)-EDDHA] to either cobalt-treated, iron-deficient Sparkle (normal parent) or E107 (brz mutant genotype) pea seedlings reversed the negative effects of cobalt on root Fe(III)-reductase activity. Re-supplying 20 mgr m Fe(III)-EDDHA to iron-deficient, AOA-treated seedlings did not enhance root Fe(III)-reductase. Apparently, cobalt competes with iron for the active site in ACC oxidase during ethylene synthesis. Inhibition of root reductase activity by cobalt treatment lowered manganese, zinc, magnesium and potassium content of mutant E107 pea seedlings. In contrast, iron enhancement of root reductase activity in iron-deficient, cobalt-treated E107 seedlings resulted in higher seedling accumulations of manganese, zinc, magnesium and potassium. These results support the hypothesis that root cell plasma membrane reductase activity plays a role in cation uptake by root cells.
Keywords:ethylene function  inducible reductase  iron-chelate reductase  iron deficiency  iron-deficiency stress response  roots
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