Search PubMed⌕ Search

Biomedical subjects

V Walbot

Publications and source records attributed to V Walbot.

125 records · Page 7Linked to original sources

Cytoplasmic acidosis as a determinant of flooding intolerance in plants.

We present evidence that cytoplasmic acidosis is a cause of meristematic death in hypoxic root tips of maize and pea seedlings. Usually, leakage of acid from the vacuole is responsible for cytoplasmic acidosis. Leakage of acid, which occurs earlier during hypoxia in pea root tips than in maize root tips, appears to account for the lower tolerance of peas for hypoxia. Cytoplasmic acidosis is accelerated in maize root tips that are either (i) deficient in alcohol dehydrogenase, so that lactic acid production continues throughout hypoxia, or (ii) exposed to external CO2 during hypoxia, or (iii) perfused slowly so that escape of CO2 produced during ethanolic fermentation is retarded. All three conditions decrease the length of time maize root tips can tolerate hypoxia; more rapid cytoplasmic acidosis is associated with more rapid death under hypoxia. Possible mechanisms by which cytoplasmic acidosis leads to death are suggested; the mechanism does not involve inhibition of glycolysis by low pH.

Anaerobiosis↗

Nuclear gene iojap conditions a programmed change to ribosome-less plastids in Zea mays.

The recessive nuclear gene iojap of Zea mays conditions a permanent, heritable deficiency in the ability of the plastid to differentiate. iojap-affected plastids contain a normal genome as evidenced by comparison of the restriction endonuclease digestion patterns of affected and normal plastids. iojap-affected plastids contain neither detectable ribosomes nor high molecular weight RNA; the affected plastids do not incorporate exogenous amino acids into protein. The lesion in plastid ribosome content occurs early in organ ontogeny because iojap-mediated albino stripes can occupy entire clones within affected leaves.

Journal Article↗

Heavy metal impurities impair the spectrophotometric assay of ribulose bisphosphate carboxylase activity.

An inverse relationship between the concentration of ribose 5-phosphate and apparent ribulose bisphosphate carboxylase activity was observed. The Lilley-Walker assay spectrophotometric assay, in which the 3-phosphoglyceric acid-dependent oxidation of reduced pyridine nucleotide is measured, is shown to be highly sensitive to inhibition by heavy metals. Analysis of the purity of reagents showed that ribose 5-phosphate is often contaminated with lead in sufficient quantity to impair the assay. This noncompetitive inhibition by ribose 5-phosphate is independent of the competitive inhibition of this substrate as an ATP sink as described by Slabas and Walker. A method for checking reagent purity and removing heavy metal contaminants is described.

Journal Article↗

Use of Silica Sol Step Gradients to Prepare Bundle Sheath and Mesophyll Chloroplasts from Panicum maximum.

The first method for the direct separation of mesophyll and bundle sheath chloroplasts from whole tissue homogenates of a C(4) plant is described. Centrifugation of mixed chloroplast preparations from Panicum maximum through low viscosity silica sol gradients effectively separates large, starch-containing chloroplasts from smaller plastids. The large chloroplasts are judged to be bundle sheath chloroplasts on the basis of microscopic appearance, the presence of starch grains, the protein complement displayed on sodium dodecyl sulfate acrylamide gels, and the exclusive localization of ribulose bisphosphate carboxylase activity in these plastids. As a measure of intactness both the large (bundle sheath) and small (mesophyll) chloroplasts contain glyceralde-hyde-3-phosphate NADP-dependent dehydrogenase activity that is greatly enhanced by plastid lysis and both chloroplast preparations are impermeable to deoxyribonuclease. Chloroplast enzyme activities are inhibited by silica sol due to the Mg(2+) chelating activity of this reagent. However, well washed chloroplasts separated on silica gradients had enzyme activities similar to reported values in which silica sol gradients were not used.

Journal Article↗

Effects of abscisic Acid on growth, RNA metabolism, and respiration in germinating bean axes.

The effect of abscisic acid on growth, respiration, the ATP pool, and rate and amount of RNA synthesis in aseptically cultured axes of Phaseolus vulgaris during the first 24 hours of germination has been measured in experiments where the duration of abscisic acid application and its concentration have been varied. At concentrations from 10(-7) to 10(-4)m, abscisic acid inhibits synthesis of RNA with maximal inhibition (80%) at 10(-5)m. RNA synthesis is inhibited by abscisic acid at all times examined (12, 18, and 24 hours), but the extent of inhibition is maximal at 18 hours. In 18-hour axes RNA synthesis is inhibited 42%, ATP pool size is reduced 3%, and O(2) consumption is decreased by 6% after 75 minutes of abscisic acid treatment. Inhibition of RNA synthesis is complete by 2 hours of treatment with abscisic acid, and recovery to near control levels occurs by the 3rd hour after removal from abscisic acid.

Journal Article↗

Benzyladenine reversal of abscisic Acid inhibition of growth and RNA synthesis in germinating bean axes.

The effect of benzyladenine on growth, ATP pool size and specific radioactivity, and the rate and amount of RNA synthesis in aseptically cultured axes of Phaseolus vulgaris during the first 24 hours of germination were measured in experiments where the duration of benzyladenine application and its concentration were varied. Maximum promotion of growth (25%) occurs at 10(-5)m benzyladenine. Maximum promotion of RNA synthesis (44%) occurs at 10(-5)m benzyladenine. Benzyladenine has little effect on the size or specific radioactivity of the ATP pool. Benzyladenine can completely counteract abscisic acid inhibition of growth and RNA synthesis, and these reversals are measurable in 2 hours. GA(1) and GA(3) do not promote growth or counteract abscisic acid inhibition of growth in germinating bean axes in these experiments.

Journal Article↗

Stable transformation of maize after gene transfer by electroporation.

The graminaceous monocots, including the economically important cereals, seem to be refractory to infection by Agrobacterium tumefaciens, a natural gene transfer system that has been successfully exploited for transferring foreign genes into higher plants. Therefore, direct transfer techniques that are potentially applicable to all plant species have been developed using a few dicot and monocot species as model systems. One of these techniques, electroporation, uses electrical pulses of high field strength to permeabilize cell membranes reversibly so as to facilitate the transfer of DNA into cells. Electroporation-mediated gene transfer has resulted in stably transformed animal cells and transient gene expression in monocot and dicot plant cells. Here we report that electroporation-mediated DNA transfer of a chimaeric gene encoding neomycin phosphotransferase results in stably transformed maize cells that are resistant to kanamycin.

DNA↗