Ligand Specificity of Bean Leaf Soluble Auxin-binding Protein
- 1 July 1980
- journal article
- research article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 66 (1) , 112-118
- https://doi.org/10.1104/pp.66.1.112
Abstract
Axillary buds of intact pea seedlings (Pisum sativum L. cv Alaska) do not grow and are said to be dormant. Decapitation of the terminal bud promotes the growth of these axillary buds, which then develop in the same manner as terminal buds. We previously showed that unique sets of proteins are expressed in dormant and growing buds. Here we describe the cloning, sequencing, and expression of a cDNA clone (pGB8) that is homologous to ribosomal protein L27 from rat. RNA corresponding to this clone increases 13-fold 3 h after decapitation, reaches a maximum enhancement of about 35-fold after 12 h, and persists at slightly reduced levels at later times. Terminal buds, root apices, and elongating internodes also contain pGB8 mRNA but fully expanded leaflets and fully elongated internodes do not. In situ hybridization analysis demonstrates that pGB8 mRNA increases in all parts of the bud within 1 h of decapitation. Under appropriate conditions, growing buds can be made to stop growing and become dormant; these buds subsequently can grow again. Therefore, buds have the capacity to undergo multiple cycles of growth and dormancy. RNA gel blots show that pGB8 expression is reduced to dormancy levels as soon as buds stop growing. However, in situ hybridization experiments show that pGB8 expression continues at growing-bud levels in the apical meristem for 2 d after it is reduced in the rest of the bud. When cultured stems containing buds are treated with indoleacetic acid at concentrations ≥10 μm, bud growth and expression of pGB8 in the buds are inhibited.Keywords
This publication has 17 references indexed in Scilit:
- Co-purification of Pea and Bean Leaf Soluble Auxin-binding Proteins with Ribulose-1,5-Bisphosphate CarboxylasePlant Physiology, 1980
- Light Activation of Ribulose Bisphosphate CarboxylasePlant Physiology, 1978
- Properties of a Solubilized Microsomal Auxin-binding Protein from Coleoptiles and Primary Leaves of Zea maysPlant Physiology, 1978
- Auxin Transport InhibitorsPlant Physiology, 1977
- Specificity of Auxin-binding Sites on Maize Coleoptile Membranes as Possible Receptor Sites for Auxin ActionPlant Physiology, 1977
- Characterization of Naphthaleneacetic Acid Binding to Receptor Sites on Cellular Membranes of Maize Coleoptile TissuePlant Physiology, 1977
- Identification of chloroplast membrane peptides with subunits of coupling factor and ribulose-1,5 diphosphate carboxylaseArchives of Biochemistry and Biophysics, 1976
- Auxin Transport InhibitorsPlant Physiology, 1975
- The Interaction of Some Auxin Antagonists and 2,4‐D in Root GrowthPhysiologia Plantarum, 1951
- Studies on Growth and Metabolism of Roots. IV. Positive and Negative Auxin Effects on Cell ElongationPhysiologia Plantarum, 1950