» Articles » PMID: 16668257

Ethylene Promotes Elongation Growth and Auxin Promotes Radial Growth in Ranunculus Sceleratus Petioles

Overview
Journal Plant Physiol
Specialty Physiology
Date 1991 Jul 1
PMID 16668257
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

Submergence induces elongation in the petioles of Ranunculus sceleratus L., after a rise in endogenous ethylene levels in the tissue. Petioles of isolated leaves also elongate 100% in 24 hours when treated with ethylene gas, without a change in the radius. Application of silver thiosulfate, aminoethoxyvinylglycine (AVG), abscisic acid (ABA), or methyl jasmonate inhibits this elongation response. Gibberellic acid treatment promotes ethylene-induced elongation, without an effect on the radius. Indoelastic acid (IAA) induces radial growth in the petioles, irrespective of the presence or absence of added ethylene. High concentrations of IAA will also induce elongation growth, but this is largely due to auxin-induced ethylene synthesis; treatment with silver thiosulfate, AVG, ABA, or methyl jasmonate inhibit this auxin-promoted elongation growth. However, the radial growth induced by IAA is not affected by gibberellic acid, and not specifically inhibited by ABA, methyl jasmonate, silver thiosulfate, or AVG. These results support the idea that petiole cell elongation during "accommodation growth" can be separated from radial expansion. The radial expansion may well be regulated by IAA. However, effects of high levels of IAA are probably anomalous, since they do not mimic normal developmental patterns.

Citing Articles

as a Model Species to Decrypt the Role of Ethylene in Plant Adaptation to Salinity.

Prokopovica V, Ievinsh G Plants (Basel). 2023; 12(2).

PMID: 36679083 PMC: 9862674. DOI: 10.3390/plants12020370.


Salinity and Heavy Metal Tolerance, and Phytoextraction Potential of Plants from a Sandy Coastal Beach.

Ievinsh G, Landorfa-Svalbe Z, Andersone-Ozola U, Karlsons A, Osvalde A Life (Basel). 2022; 12(12).

PMID: 36556324 PMC: 9782882. DOI: 10.3390/life12121959.


Indoleacetic Acid Levels in Wheat and Rice Seedlings under Oxygen Deficiency and Subsequent Reoxygenation.

Yemelyanov V, Lastochkin V, Chirkova T, Lindberg S, Shishova M Biomolecules. 2020; 10(2).

PMID: 32054127 PMC: 7072260. DOI: 10.3390/biom10020276.

References
1.
Cosgrove D . Biophysical control of plant cell growth. Annu Rev Plant Physiol. 1986; 37:377-405. DOI: 10.1146/annurev.pp.37.060186.002113. View

2.
Eisinger W, Croner L, Taiz L . Ethylene-induced lateral expansion in etiolated pea stems : kinetics, cell wall synthesis, and osmotic potential. Plant Physiol. 1983; 73(2):407-12. PMC: 1066474. DOI: 10.1104/pp.73.2.407. View

3.
Goliber T, Feldman L . Osmotic stress, endogenous abscisic acid and the control of leaf morphology in Hippuris vulgaris L. Plant Cell Environ. 1989; 12(2):163-71. DOI: 10.1111/j.1365-3040.1989.tb01929.x. View

4.
Metraux J, Kende H . The role of ethylene in the growth response of submerged deep water rice. Plant Physiol. 1983; 72(2):441-6. PMC: 1066253. DOI: 10.1104/pp.72.2.441. View

5.
Burg S . Ethylene in plant growth. Proc Natl Acad Sci U S A. 1973; 70(2):591-7. PMC: 433312. DOI: 10.1073/pnas.70.2.591. View