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Plant hormones and plant virus diseases. The auxins.

Systemic virus infection impairs the steady state of auxin hormone in plant with consequent morphogenetic alterations. Most reports indicate a reduction of auxin activity in diseased plants, generally associated with stunting, but a substantial increase in auxin activity has sometimes been observed in cases of severe symptomatology. Treatments of virus-diseased plants with exogenous auxins may inhibit virus replication and reduce symptom severity, although results have been obtained by empirical application and must therefore be considered with caution. There is no information on how virus infection alters auxin metabolism or how this alteration affects both plant growth and development. The considerable progress reached in auxin biochemistry now allows more accurate re-investigations of this important relationship.

Indoleacetic Acids↗

The role of plant hormones in higher plant cellular differentiation. I. A critique.

Primary growth and morphogenesis in higher plants can be explained mechanistically in terms of primary types of cellular differentiation, namely, phenomena of cell division, primary wall growth, intercellular bonding and polarity. Plant hormones fulfil essential roles in regulating these types of differentiation, and it is well established that plant hormones can initiate primary growth and morphogenesis. Secondary and terminal types of cellular differentiation largely determine the usefulness of plants to man; however, regulators of these types remain poorly characterized. Secondary and terminal types need not differentiate in order for primary growth and morphogenesis to occur, and there is no conclusive evidence that factors regulating primary growth and morphogenesis also initiate subsequent types of differentiation.

Cell Differentiation↗

Calcium and plant hormone action.

Plant cells contain all the elements for a calcium-based messenger system that could couple the external stimuli of hormones to their physiological response. These include a highly regulated low cytoplasmic calcium level, plasma membrane and endomembrane calcium pumps and channels, and spatially controlled calcium-dependent regulatory proteins and kinases. However much of the evidence for calcium as a second messenger in plants is fragmentary and circumstantial. There is some evidence linking auxin to fluctuations in free calcium but most of the evidence points to auxin as a calcium antagonist or having little or no effect on calcium levels. The possibility that polar auxin transport is coupled to calcium transport in the opposite direction is strong. There are several recent reports that abscisic acid is a calcium agonists but the data are still preliminary and there are alternative reports that indicate that abscisic acid may actually lower calmodulin levels. There is a close link between gibberellic acid and increases in intracellular free calcium in the barley aleurone system. These studies need to be extended to other gibberellin-dependent physiological responses. The most convincing evidence that has accumulated correlates cytokinin-stimulation of several different responses with increases in intracellular calcium by activation of plasma membrane ion channels. There is also a need to recognize that we don't understand stimulus-response coupling yet in the simplest of plant systems and the higher plants present a daunting challenge to plant scientists. It is unlikely that all hormone effects on all plants will be explained by invoking calcium as a second messenger and we must recognize that the mechanism of action of plant hormones may be quite complex and diverse.

Abscisic Acid↗

The role of plant hormones in higher plant cellular differentiation. II. Experiments with the vascular cambium, and sclereid and tracheid differentiation in the pine, Pinus contorta.

In sterile-cultured explants of stems of the pine Pinus contorta Dougl., fusiform cambial cells differentiated entirely into axial parenchyma cells when exogenous indol-3yl-acetic acid (IAA) was omitted. The normal appearance of the cambial zone was maintained when IAA was included in the medium. The IAA-maintained stability of cambial structure suggests physiological rather than epigenetic control over vascular cambium structure. IAA was essential for the occurrence of callus growth in stem explants. Callus growth was similar in appearance and extent in winter- and summer-explanted material. Tracheids differentiated in explants only when actively differentiating tracheids were already present at the moment of explanting, suggesting the absence of factors necessary for tracheid differentiation in over-wintering tissues. Sclereid differentiation, which normally does not occur in phloem or xylem development in P. contorta, occurred in callus derived from active cambial explants. The sclereids were identical to sclereids which differentiated in pith of intact stems. The possibility that sclereid and tracheid differentiation may be fundamentally similar types of gene expression is discussed. Growth of P. contorta trees in continuous darkness resulted in extensive compression-wood tracheid differentiation in the upright main stem. Normal-wood tracheids differentiated in similar trees grown in light. More tracheids differentiated in light than in darkness. This apparently is the first report of induction of compression-wood tracheid differentiation in the absence of hormone treatment or tilting of trees. Different types and numbers of tracheids differentiated at different position in two-year-old disbudded defoliated stem cuttings of P. contorta in response to apically supplied IAA. No evidence for new tracheid differentiation was seen in control cuttings; however, the results suggest that neither cambial cell division nor tracheid differentiation were actually initiated by IAA. Directed transport of additional regulatory factors toward areas of high IAA concentration is formulated as a hypothesis to explain these observations. Gibberellic acid, (S)-abscisic acid and IAA inhibited tracheid differentiation when individually supplied to basal ends of P. contorta cuttings predisposed to differentiate new tracheids. Experiments with single intact needles on Pinus cembroides var. monophylla cuttings confirmed a previous interpretation that the mature pine needle, rather than the short-shoot apical meristem at its base, promotes tracheid differentiation in the stem.

Abscisic Acid↗

From auxin-binding protein to plant hormone receptor?

Plant scientists have long been expecting the description of hormone receptor proteins from plants. A putative auxin receptor has now been purified and sequenced and we are beginning to discover how the protein functions.

Indoleacetic Acids↗

[Plant hormones].

Explore the source record for details and available documents.

Hormones↗

[Studies on the plant hormones produced by 5 species of endophytic fungi isolated from medicinal plants (Orchidacea)].

OBJECTIVE: To study the plant hormones produced by 5 species of endophytic fungi isolated from medicinal plants and to illustrate the mechanism on endophytic fungi stimulating the growth of plants. METHODS: Extracting plant hormones from mycelia and its culture solution with organic solvent, and detecting them by HPLC. RESULTS: One or more plant hormones [GA3 (Gibberellin), IAA (Indoleacetic acid), ABA (Abscisic acid), Z (Zeatin), ZR (Zeatin riboside)] were detected from the mycelia and its culture solution. CONCLUSIONS: The plant hormones produced by the endophytic fungi are important materials that may be used to reveal the mechanism of endophytic fungi stimulating the growth of medicinal plants (Orchidacea).

Abscisic Acid↗

Plant hormone binding sites.

AIMS: Receptors for plant hormones are becoming identified with increasing rapidity, although a frustrating number remain unknown. There have also been many more hormone-binding proteins described than receptors. This Botanical Briefing summarizes what has been discovered about hormone binding sites, their discovery and descriptions, and will not dwell on receptor functions or activities except where these are relevant to understand binding. SCOPE: Of those receptors identified, each falls into recognized protein superfamilies. Ethylene and cytokinin receptors have intracellular histidine kinase phosphorelay domains, but the ligand-binding sites are distinct, one being buried within membrane-spanning helices, the other in an extracellular loop domain. Brassinosteroid and phytosulfokine receptors are members of the leucine-rich repeat receptor-like protein superfamily and for these the ligand binding sites are likely to be in one of the loops of the extracellular leucine-rich domain. For auxin, the auxin-binding protein ABP1 is a member of the cupin superfamily and the binding site is in a hydrophobic pocket at the head of which is a zinc ion to coordinate the acid group of the ligand. Receptors for other plant hormones have still to be identified. CONCLUSIONS: Plant hormone receptors have been identified through the application of many different techniques; no one technique is likely to prove more successful than any other for discovering new receptors. At present there is structural detail only for auxin binding, although a good model exists for the amino acid residues needed for Cu(I) and ethylene binding. In this respect plant biology is very poor and effort needs to be put into receptor discovery and molecular characterization. The information accumulated by such work will undoubtedly indicate many new ways in which plant growth and development can be manipulated, but knowledge-led design of new ligands or of altered sensitivities is still some way off.

Abscisic Acid↗

Receptors and signalling components of plant hormones.

Recent advances in understanding plant hormonal signalling has resulted in the identification of a variety of signalling components including receptor kinases with homology to the bacterial two component system as well as serine/threonine kinases and protein phosphatases. In addition, the existence of MAP kinase pathways in plants indicates a similar role of these signalling cascades in the relay of exogenous signals into the nucleus as has been disclosed in animal cells. The emerging signalling pathways of the plant hormone abscisic acid and ethylene are presented.

Abscisic Acid↗

Plant hormones and homeoboxes: bridging the gap?

Plant hormones are signalling molecules that control growth and development. Growth of the aerial parts of higher plants requires the continuous activity of the shoot apical meristem, a small mound of cells at the apex of a plant. KNOTTED1-like HOMEOBOX (KNOX) genes are involved in regulating meristem activity, however, little is known about how this regulation is mediated. Recent evidence suggests that KNOX transcription factors may control meristem development by regulating the balance of activities of multiple hormones.

Cell Differentiation↗

An excellent source of vegetative buds for use in plant hormone studies on apical dominance.

When studying the role of plant hormones in the control of growth at apical meristems, it is often difficult to obtain needed amounts of physiologically uniform buds. A source and method are described for obtaining sufficient quantities of large, uniform buds and for the treatment of the buds with indoleacetic acid and kinetin. Buds from the root system of Euphorbia esula L. were grown in Petri plates, with agar suspending the short root sections from which they emanate. Plant hormones are applied by their incorporation in the agar. The effect of various concentrations of indoleacetic acid and kinetin on bud growth was examined.

Journal Article↗

Ubiquitin-mediated proteolysis in plant hormone signal transduction.

Being sessile organisms, plants usually have little control over their immediate growth environment. Responses to environmental and developmental factors need to be rapid and finely coordinated to trigger the necessary morphological and metabolic changes that ensure plant survival and growth. Many of these adaptive responses are mediated by plant hormones. Recent work has shown that ubiquitin-mediated proteolysis plays an important regulatory role in hormone signaling.

Endopeptidases↗

Enhancement of tomato allergenicity after treatment with plant hormones.

BACKGROUND: Practical applications to enhance the productivity of agriculture by using plants with improved resistance to pathogens are expected to increase in the near future. Although tomato has been widely investigated for breeding purposes, there have been no studies on tomato allergenicity after plant hormones treatments. METHODS: Prick by prick tests were carried out with different tomato samples (fruits grown under biological conditions without addition of chemical products, and treated with ethylene and salicylic acid) in eight patients with ages between 12 and 27 years who suffered from anaphylaxis episodes after eating raw tomatoes. An immunoblot experiment with the different tomato extracts was performed using sera from these eight patients and controls. RESULTS: The wheals obtained in prick tests were significantly higher with the extracts of tomato treated with ethylene and SAA (chi(2) = 31.3, p < 0.0001) and the patients who presented higher wheal diameters in skin tests were those who had more severe episodes of anaphylaxis. Neither the protein stain nor the IgE immunodetection patterns clearly varied between the untreated and the hormone-treated samples. CONCLUSIONS: In the case of anaphylaxis induced by tomato, the treatment with plant hormones induced a higher cutaneous response than with non-treated tomato, but the "in vitro" response was similar.

Adolescent↗

Plant hormone perception and action: a role for G-protein signal transduction?

Plants perceive and respond to a profusion of environmental and endogenous signals that influence their growth and development. The G-protein signalling pathway is a mechanism for transducing extracellular signals that is highly conserved in a range of eukaryotes and prokaryotes. Evidence for the existence of G-protein signalling pathways in higher plants is reviewed, and their potential involvement in plant hormone signal transduction evaluated. A range of biochemical and molecular studies have identified potential components of G-protein signalling in plants, most notably a homologue of the G-protein coupled receptor superfamily (GCR1) and the G alpha and G beta subunits of heterotrimeric G-proteins. G-protein agonists and antagonists are known to influence a variety of signalling events in plants and have been used to implicate heterotrimeric G-proteins in gibberellin and possibly auxin signalling. Antisense suppression of GCR1 in Arabidopsis leads to a phenotype which supports a role for this receptor in cytokinin signalling. These observations suggest that higher plants have at least some of the components of G-protein signalling pathways and that these might be involved in the action of certain plant hormones.

Arabidopsis↗

Evidence for an increase in microviscosity of plasma membranes from soybean hypocotyls induced by the plant hormone, indole-3-acetic Acid.

The plant hormone indole-3-acetic acid (IAA or auxin) added at a concentration for half-maximal promotion of cell elongation (1 mum) caused an increase of 25% in the fluorescence polarization of the membrane-bound probe N-phenyl-1-naphthylamine, when added to fractions enriched in plasma membranes from soybean hypocotyls (Glycine max L. var. Wayne), with no measurable change in fluorescence lifetime. The amplitude of the polarization increase was maximal in the temperature range 12 to 22 C. The findings provide evidence for a cell-free response of isolated plasma membranes to the hormone and imply that the response involves an increase in the microviscosity of hydrocarbon regions of the membrane.

Journal Article↗

Classification of auxin plant hormones by interaction property similarity indices.

Although auxins were the first type of plant hormone to be identified, little is known about the molecular mechanism of this important class of plant hormones. We present a classification of a set of about 50 compounds with measured auxin activities, according to their interaction properties. Four classes of compounds were defined: strongly active, weakly active with weak antiauxin behaviour, inactive and inhibitory. All compounds were modeled in two low-energy conformations, 'P' and 'T', so as to obtain the best match to the 'planar' and 'tilted' conformations, respectively, of indole 3-acetic acid. Each set of conformers was superimposed separately using several different alignment schemes. Molecular interaction energy fields were computed for each molecule with five different chemical probes and then compared by computing similarity indices. Similarity analysis showed that the classes are on average distinguishable, with better differentiation achieved for the T conformers than the P conformers. This indicates that the T conformation might be the active one. Further, a screening was developed which could distinguish compounds with auxin activity from inactive compounds and most antiauxins using the T conformers. The classifications rationalize ambiguities in activity data found in the literature and should be of value in predicting the activities of new plant growth substances and herbicides.

Computer Simulation↗