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R E Cleland

Showing results (31-40 of 73) with videos related to

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FEBS Letters|September 3, 1999
Voltammetric detection of superoxide production by photosystem IIR E Cleland, S C Grace
Plant & Cell Physiology|January 1, 1991
Galactose inhibits auxin-induced growth of Avena coleoptiles by two mechanismsS P Cheung, R E Cleland
Planta|August 1, 1990
Light-stimulated cell expansion in bean (Phaseolus vulgaris L.) leaves. I. Growth can occur without photosynthesisE Van Volkenburgh, R E Cleland
Planta|October 1, 1990
Biophysical basis of growth promotion in primary leaves of Phaseolus vulgaris L. by hormones versus light: solute accumulation and the growth potentialT G Brock, R E Cleland
Planta|December 7, 2013
Proton excretion and cell expansion in bean leavesE Van Volkenburgh, R E Cleland
Planta|November 12, 2013
Role of acid efflux during growth promotion of primary leaves of Phaseolus vulgaris L. by hormones and lightT G Brock, R E Cleland
Planta|January 14, 2014
Effects of fusicoccin on the activity of a key pH-stat enzyme, PEP-carboxylaseR G Stout, R E Cleland
Plant Physiology|January 1, 1989
Comparison of the lipid composition of oat root and coleoptile plasma membranes: lack of short-term change in response to auxinR P Sandstrom, R E Cleland
Plant Physiology|March 1, 1992
Comparison of developmental gradients for growth, ATPase, and fusicoccin-binding activity in mung bean hypocotylsL E Basel, R E Cleland
Plant Physiology|April 1, 1975
Water Stress and Protein Synthesis: II. Interaction between Water Stress, Hydrostatic Pressure, and Abscisic Acid on the Pattern of Protein Synthesis in Avena ColeoptilesR S Dhindsa, R E Cleland
Pageof 8

Showing results (31-40 of 73) with videos related to

Sort By:
Pageof 8
FEBS Letters|September 3, 1999
Voltammetric detection of superoxide production by photosystem IIR E Cleland, S C Grace
Plant & Cell Physiology|January 1, 1991
Galactose inhibits auxin-induced growth of Avena coleoptiles by two mechanismsS P Cheung, R E Cleland
Planta|August 1, 1990
Light-stimulated cell expansion in bean (Phaseolus vulgaris L.) leaves. I. Growth can occur without photosynthesisE Van Volkenburgh, R E Cleland
Planta|October 1, 1990
Biophysical basis of growth promotion in primary leaves of Phaseolus vulgaris L. by hormones versus light: solute accumulation and the growth potentialT G Brock, R E Cleland
Planta|December 7, 2013
Proton excretion and cell expansion in bean leavesE Van Volkenburgh, R E Cleland
Planta|November 12, 2013
Role of acid efflux during growth promotion of primary leaves of Phaseolus vulgaris L. by hormones and lightT G Brock, R E Cleland
Planta|January 14, 2014
Effects of fusicoccin on the activity of a key pH-stat enzyme, PEP-carboxylaseR G Stout, R E Cleland
Plant Physiology|January 1, 1989
Comparison of the lipid composition of oat root and coleoptile plasma membranes: lack of short-term change in response to auxinR P Sandstrom, R E Cleland
Plant Physiology|March 1, 1992
Comparison of developmental gradients for growth, ATPase, and fusicoccin-binding activity in mung bean hypocotylsL E Basel, R E Cleland
Plant Physiology|April 1, 1975
Water Stress and Protein Synthesis: II. Interaction between Water Stress, Hydrostatic Pressure, and Abscisic Acid on the Pattern of Protein Synthesis in Avena ColeoptilesR S Dhindsa, R E Cleland
Pageof 8