Tomato Fruit Cell Wall
- 1 November 1989
- journal article
- research article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 91 (3), 816-822
- https://doi.org/10.1104/pp.91.3.816
Abstract
Cell wall isolation procedures were evaluated to determine their effect on the total pectin content and the degree of methylesterification of tomato (Lycopersicon esculentum L.) fruit cell walls. Water homogenates liberate substantial amounts of buffer soluble uronic acid, 5.2 milligrams uronic acid/100 milligrams wall. Solubilization appears to be a consequence of autohydrolysis mediated by polygalacturonase II, isoenzymes a and B, since the uronic acid release from the wall residue can be suppressed by homogenization in the presence of 50% ethanol followed by heating. The extent of methylesterification in heat-inactivated cell walls, 94 mole %, was significantly greater than with water homogenates, 56 mole %. The results suggest that autohydrolysis, mediated by cell wall-associated enzymes, accounts for the solubilization of tomato fruit pectin in vitro. Endogenous enzymes also account for a decrease in the methylesterification during the cell wall preparation. The heat-inactivated cell wall preparation was superior to the other methods studied since it reduces .beta.-elimination during heating and inactivates constitutive enzymes that may modify pectin structure. This heat-inactivated cell wall preparation was used in subsequent enzymatic analysis of the pectin structure. Purified tomato fruit polygalacturonase and partially purified pectinmethylesterase were used to assess changes in constitutive substrates during tomato fruit ripening. Polygalacturonase treatment of heat-inactivated cell walls from mature green and breaker stages released 14% of the uronic acid. The extent of the release of polyuronides by polygalacturonase was fruit development stage dependent. At the turning stage, 21% of the pectin fraction was released, a value which increased to a maximum of 28% of the uronides at the red ripe stage. Pretreatment of the walls with purified tomato pectinesterase rendered walls from all ripening stages equally susceptible to polygalacturonase. Quantitatively, the release of uronides by polygalacturonase from all pectinesterase treated cell walls was equivalent to polygalacturonase treatment of walls at the ripe stage. Uronide polymers released by polygalacturonase contain galacturonic acid, rhamnose, galactose, arabinose, xylose, and glucose. As a function of development, an increase in the release of galacturonic acid and rhamnose was observed (40 and 6% of these polymers at the mature green stage to 54 and 15% at the red ripe stage, respectively). The amount of galactose and arabinose released by exogenous polygalacturonase decreased during development (41 and 11% from walls of mature green fruit to 11 and 6% at the red ripe stage, respectively). Minor amounts of glucose and xylose released from the wall by exogenous polygalacturonase (4-7%) remained constant throughout fruit development.Keywords
This publication has 18 references indexed in Scilit:
- In Vitro Characterization of Tomato Fruit SofteningPlant Physiology, 1984
- Biochemical Basis for Partitioning of Photosynthetically Fixed Carbon between Starch and Sucrose in Soybean (Glycine max Merr.) LeavesPlant Physiology, 1982
- Degradation of Isolated Tomato Cell Walls by Purified Polygalacturonase in VitroPlant Physiology, 1982
- Loss of Tomato Cell Wall Galactan May Involve Reduced Rate of SynthesisPlant Physiology, 1980
- Degradation of Cell Wall Polysaccharides during Tomato Fruit RipeningPlant Physiology, 1979
- Glycosidases in Cell Wall-degrading Extracts of Ripening Tomato FruitsPlant Physiology, 1975
- Detection of polygalacturonase and pectin lyase isoenzymes in polyacrylamide gelsJournal of Chromatography A, 1974
- The Structure of Plant Cell WallsPlant Physiology, 1973
- Determination of methanol and its application to measurement of pectin ester content and pectin methyl esterase activityAnalytical Biochemistry, 1971
- Splitting of pectin chain molecules in neutral solutionsArchives of Biochemistry and Biophysics, 1960