Localization of polysaccharides in isolated and intact cuticles of eucalypt, poplar and pear leaves by enzyme-gold labelling
dc.contributor.author | Guzmán, Paula | |
dc.contributor.author | Fernández, Victoria | |
dc.contributor.author | García, María Luisa | |
dc.contributor.author | Khayet Souhaimi, Mohamed | |
dc.contributor.author | Fernández, Agustín | |
dc.contributor.author | Gil, Luis | |
dc.date.accessioned | 2023-06-19T13:24:21Z | |
dc.date.available | 2023-06-19T13:24:21Z | |
dc.date.issued | 2014-03 | |
dc.description | © 2014 Elsevier Masson SAS. We wish to thank Ramiro Martínez from Novozymes for providing free enzyme samples. PG is supported by a pre-doctoral grant from the Technical University of Madrid. VF is supported by a Ramón y Cajal contract (MINECO, Spain), co-financed by the European Social Fund. This study was supported by the Spanish Ministry of Economy and Competitiveness (MINECO, Spain; Project AGL2012-35580). | |
dc.description.abstract | The presence and characteristics of cuticle polysaccharides have been demonstrated by staining and spectroscopic methods, but their location in the cuticle remains unclear. Furthermore, according to the prevailing model, polysaccharides are believed to be restricted to the cuticular layer and absent in the cuticle proper. With the aim of gaining insight into cuticular ultra-structure focussing on polysaccharides, cellulose and pectins have been identified and located in the transversal sections of isolated and intact adaxial leaf cuticles of Eucalyptus globulus, Populus x canescens and Pyrus communis by means of enzyme gold-labelling (Au-cellulase, EC 3.2.1.4, and -pectinase, EC 3.2.1.15) and transmission electron microscopy (TEM). The structure of the interface between the cuticle and the cell wall underneath was observed to influence the process of enzymatic isolation of leaf cuticles. Cellulose and pectins were detected for the first time in enzymatically isolated cuticles, sometimes appearing closely underneath the epicuticular wax layer. The location and presence of polysaccharides in intact and isolated leaf cuticles may have multiple implications, such as when estimating the bi-directional transport of substances between plant organs and the surrounding environment, or when interpreting organ ontogeny. The results are discussed within a plant ontological and ecophysiological context. | |
dc.description.department | Depto. de Estructura de la Materia, Física Térmica y Electrónica | |
dc.description.faculty | Fac. de Ciencias Físicas | |
dc.description.refereed | TRUE | |
dc.description.sponsorship | Technical University of Madrid | |
dc.description.sponsorship | MINECO, Spain | |
dc.description.sponsorship | European Social Fund | |
dc.description.sponsorship | Spanish Ministry of Economy and Competitiveness (MINECO, Spain) | |
dc.description.status | pub | |
dc.eprint.id | https://eprints.ucm.es/id/eprint/25792 | |
dc.identifier.doi | 10.1016/j.plaphy.2013.12.023 | |
dc.identifier.issn | 0981-9428 | |
dc.identifier.officialurl | http://dx.doi.org/10.1016/j.plaphy.2013.12.023 | |
dc.identifier.relatedurl | http://www.sciencedirect.com/ | |
dc.identifier.uri | https://hdl.handle.net/20.500.14352/33566 | |
dc.journal.title | Plant physiology and biochemistry | |
dc.language.iso | eng | |
dc.page.final | 6 | |
dc.page.initial | 1 | |
dc.publisher | Elsevier France-Editions Scientifiques Médicales Elsevier | |
dc.relation.projectID | AGL2012-35580 | |
dc.rights.accessRights | open access | |
dc.subject.cdu | 536 | |
dc.subject.keyword | Plant cuticles | |
dc.subject.keyword | Cell-walls | |
dc.subject.keyword | Ultrastructure | |
dc.subject.keyword | Cellulose | |
dc.subject.keyword | Biomechanics | |
dc.subject.keyword | Model | |
dc.subject.ucm | Termodinámica | |
dc.subject.unesco | 2213 Termodinámica | |
dc.title | Localization of polysaccharides in isolated and intact cuticles of eucalypt, poplar and pear leaves by enzyme-gold labelling | |
dc.type | journal article | |
dc.volume.number | 76 | |
dcterms.references | Berg, R.H., Erdos, G.W., Gritzali, M., Brown, R.D., 1988. Enzyme-gold affinity labelling of cellulose. J. Electron Microsc. Tech. 8, 371-379. Bernal, M., Llorens, L., Julkunen-Tiitto, R., Badosa, J., Verdaguer, D., 2013. Altitudinal and seasonal changes of phenolic compounds in Buxus sempervirens leaves and cuticles. Plant Physiol. Biochem. 70, 471-482. Burton, R.A., Gidley, M.J., Fincher, G.B., 2010. Heterogeneity in the chemistry, structure and function of plant cell walls. Nat. Chem. Biol. 6, 724-732. Carpenter, R.J., Jordan, G.J., Leigh, A., Brodribb, T.J., 2007. Giant cuticular pores in Eidothea zoexylocarya (Proteaceae) leaves. Am. J. Bot. 94, 1282-1288. Cho, S.W., Lee, S., Shin, W., 2001. The X-ray structure of Aspergillus aculeatus polygalacturonase and a modeled structure of the polygalacturonase-octagalacturonate complex. J. Molec. Biol. 311, 863-878. Cosgrove, D.J., 2005. Growth of the plant cell wall. Nat. Rev. Molec. Cell. Biol. 6, 850-861. de Roe, C., Courtoy, P.J., Baudhuin, P., 1987. A model of protein-colloidal gold interactions. J. Histochem. Cytochem. 35, 1191-1198. Domínguez, E., Heredia, A., 1999. Water hydration in cutinized cell walls: a physicochemical analysis. Biochim. Biophys. Acta 1426, 168-176. Domínguez, E., Heredia Guerrero, J.A., Heredia, A., 2011. The biophysical design of plant cuticles: an overview. New. Phytol. 189, 938-949. Essa, H., Magner, E., Cooney, J., Hodnett, B.K., 2007. Influence of pH and ionic strength on the adsorption, leaching and activity of myoglobin immobilized onto ordered mesoporous silicates. J. Molec. Catal. B: Enzym. 49, 61-68. Ferguson, C., Teeri, T.T., Siika-aho, M., Read, S.M., Bacic, A., 1998. Location of cellulose and callose in pollen tubes and grains of Nicotiana tabacum. Planta 206, 452-460. Ghosh, S.K., Pal, T., 2007. Interparticle coupling effect on the surface plasmon resonance of gold nanoparticles: from theory to applications. Chem. Rev. 107, 4797-4862. Gouret, E., Rohr, R., Chamel, A., 1993. Ultrastructure and chemical composition of some isolated plant cuticles in relation to their permeability to the herbicide diuron. New. Phytol. 124, 423-431. Jeffree, C.E., 2006. The fine structure of the plant cuticle. In: Riederer, M., Müller, C. (Eds.), Annual Plant Reviews, Biology of the plant cuticle, vol. 23. Blackwell Publishing, Oxford, pp. 11-125. Johnson, E.J., Dorot, O., Liu, J., Chefetz, B., Xing, B., 2007. Spectroscopic characterization of aliphatic moieties in four plant cuticles. Commun. Soil. Sci. Plant Anal. 38, 2461-2478. Khayet, M., Fernández, V., 2012. Estimation of the solubility parameters of model plant surfaces and agrochemicals: a valuable tool for understanding plant surface interactions. Theor. Biol. Med. Mod. 9, 45. Leppard, G.G., Colvin, J.R., 1972. Electron-opaque fibrils and granules in and between the cell walls of higher plants. J. Cell. Biol. 53, 695-703. López Casado, G., Matas, A.J., Domínguez, E., Cuartero, J., Heredia, A., 2007. Biomechanics of isolated tomato (Solanum lycopersicum L.) fruit cuticles: the role of the cutin matrix and polysaccharides. J. Exp. Bot. 58, 3875-3883. Mansfield, S.D., Mooney, C., Saddler, J.N., 1999. Substrate and enzyme characteristics that limit cellulose hydrolysis. Biotechnol. Progr. 15, 804-816. Marga, F., Gallo, A., Hasenstein, K.H., 2003. Cell wall components affect mechanical properties: studies with thistle flowers. Plant Physiol. Biochem. 41, 792-797. Matas, A.J., Cobb, E.D., Bartsch, J.A., Paolillo, D.J., Niklas, K.J., 2004. Biomechanics and anatomy of Lycopersicon esculentum fruit peels and enzyme-treated samples. Am. J. Bot. 91, 352-360. Mohnen, D., 2008. Pectin structure and biosynthesis. Curr. Op. Plant Biol. 11, 266-277. Norris, R.F., Bukovac, M.J., 1968. Structure of the pear leaf cuticle with special reference to cuticular penetration. Am. J. Bot. 55, 975-983. Orgell, W.H., 1955. The isolation of plant cuticle with pectic enzymes. Plant Physiol. 30, 78-80. Reina Pinto, J.J., Yephremov, A., 2009. Surface lipids and plant defences. Plant Physiol. Biochem. 47, 540-549. Robards, A.W., Wilson, A.J. (Eds.), 1993. Procedures in Electron Microscopy. Wiley, Chichester. Rosgaard, L., 2007. Enzymatic Hydrolysis of Pretreated Barley and Wheat Straw. PhD thesis. Technical University of Denmark, Denmark. Schreiber, L., Schönherr, J., 2009. Water and Solute Permeability of Plant Cuticles: Measurement and Data Analysis. Springer, Heidelberg. Tanriseven, A., Aslan, Y., 2005. Immobilization of Pectinex Ultra SP-L to produce fructooligosaccharides. Enzy. Microb. Techn. 36, 550-554. Tenberge, K.B., 1992. Ultrastructure and development of the outer epidermal wall of spruce (Picea abies) needles. Canad. J. Bot. 70, 1467-1487. Vincken, J.P., Schols, H.A., Oomen, R.J.F.J., McCann, M.C., Ulvskov, P., Voragen, A.G.J., Visser, R.G.F., 2003. If homogalacturonan were a side chain of rhamnogalacturonan I. Implications for cell wall architecture. Plant Physiol. 132, 1781-1789. von Mohl, H., 1847. Untersuchungen der Frage: bildet die Cellulose die Grundlage sammtlicher Vegetabilischen Membranen. Bot. Ztg. 5, 497-505. Wattendorff, J., Holloway, P.J., 1982. Studies on the ultrastructure and histochemistry of plant cuticles: isolated cuticular membrane preparations of Agave americana L. and the effects of various extraction procedures. Ann. Bot. 49, 769-804. Xu, Z., Miao, Y., Chen, J.Y., Jiang, X., Lin, L., Ouyang, P., 2011. Co-immobilization mechanism of cellulase and xylanase on a reversibly soluble polymer. Appl. Biochem. Biotech. 163, 153-161. Zwieniecki, M.A., Melcher, P.J., Holbrook, N.M., 2001. Hydrogel control of xylem hydraulic resistance in plants. Science 291, 1059-1062 | |
dspace.entity.type | Publication | |
relation.isAuthorOfPublication | 8e32e718-0959-4e6c-9e04-891d3d43d640 | |
relation.isAuthorOfPublication.latestForDiscovery | 8e32e718-0959-4e6c-9e04-891d3d43d640 |
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