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Separation of metabolic and non‐metabolic steps of Rb + uptake in spring wheat roots with different K + status
Author(s) -
Jensén Paul
Publication year - 1981
Publication title -
physiologia plantarum
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.351
H-Index - 146
eISSN - 1399-3054
pISSN - 0031-9317
DOI - 10.1111/j.1399-3054.1981.tb02713.x
Subject(s) - chemistry , biophysics , cooperativity , allosteric regulation , transmembrane protein , diffusion , membrane transport , metabolism , metabolic pathway , biochemistry , membrane , biology , enzyme , thermodynamics , physics , receptor
Uptake of Rb + from a complete nutrient solution with 2.0 mM Rb + was studied in roots of spring wheat seedlings ( Triticum aestivum L. cv. Svenno) with different K + levels. The relationship between Rb + uptake and concentration of K + in the roots indicated a negative feedback mechanism operating through allosteric control. The Rb + uptake process in root cells was divided into two steps: (1) binding of the ion in the free space, and (ii) transmembrane transport into the cytoplasm. Metabolic and non‐metabolic components of uptake were separated by addition of the metabolic inhibitor 2,4‐dinitrophenol (DNP) to the nutrient solution. It is suggested that metabolic Rb + uptake requires energy in two uptake steps (for binding to the carrier entity in the free space and for transmembrane transport) or in one step only (for transmembrane transport), dependent on the K + status of the roots. The change from metabolic to non‐metabolic binding in the free space is accomplished by changing the conformational state of the carrier (slow/fast transitions). There may be a hysteretic effect on metabolic Rb + uptake through a slow transition between carrier states. This is superimposed on the negative cooperativity, strengthening further cooperativity at intermediate K + levels in the roots. Non‐metabolic Rb + uptake probably consists of two components, a carrier‐mediated (facilitated diffusion) and a parallel diffusive component.