Diffusion of volatile organics and water in the epicuticular waxes of petunia petal epidermal cells.


Journal

The Plant journal : for cell and molecular biology
ISSN: 1365-313X
Titre abrégé: Plant J
Pays: England
ID NLM: 9207397

Informations de publication

Date de publication:
05 2022
Historique:
revised: 07 01 2022
received: 08 10 2021
accepted: 15 01 2022
pubmed: 3 2 2022
medline: 4 5 2022
entrez: 2 2 2022
Statut: ppublish

Résumé

Plant cuticles are a mixture of crystalline and amorphous waxes that restrict the exchange of molecules between the plant and the atmosphere. The multicomponent nature of cuticular waxes complicates the study of the relationship between the physical and transport properties. Here, a model cuticle based on the epicuticular waxes of Petunia hybrida flower petals was formulated to test the effect of wax composition on diffusion of water and volatile organic compounds (VOCs). The model cuticle was composed of an n-tetracosane (C

Identifiants

pubmed: 35106853
doi: 10.1111/tpj.15693
doi:

Substances chimiques

Volatile Organic Compounds 0
Waxes 0
Water 059QF0KO0R

Types de publication

Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Langues

eng

Sous-ensembles de citation

IM

Pagination

658-672

Informations de copyright

© 2022 Society for Experimental Biology and John Wiley & Sons Ltd.

Références

Adebesin, F., Widhalm, J.R., Boachon, B., Lefevre, F., Pierman, B., Lynch, J.H. et al. (2017) Emission of volatile organic compounds from petunia flowers is facilitated by an ABC transporter. Science, 356, 1386-1388.
ASTM International. (2019) D5357-19 standard test method for determination of relative crystallinity of zeolite sodium A by X-ray diffraction.
Barthlott, W., Neinhaus, C., Cutler, D., Ditsch, F., Meusel, I., Theisen, I. et al. (1998) Classification and terminology of plant epicuticular waxes. Botanical Journal, 126, 237-260.
Boatright, J., Negre, F., Chen, X.L., Kish, C.M., Wood, B., Peel, G. et al. (2004) Understanding in vivo benzenoid metabolism in petunia petal tissue. Plant Physiology, 135, 1993-2011.
Burghardt, M. & Riederer, M. (2006) Cuticular transpiration. In: Riederer, M. & Müller, C. (Eds.) Biology of the plant cuticle. Oxford: Blackwell, pp. 292-311.
Buschhaus, C. & Jetter, R. (2011) Composition differences between epicuticular and intracuticular wax substructures: how do plants seal their epidermal surfaces? Journal of Experimental Botany, 62, 841-853.
Carreto, L., Almeida, A.R., Fernandes, A.C. & Vaz, W.L.C. (2002) Thermotropic mesomorphism of a model system for the plant epicuticular wax layer. Biophysical Journal, 82, 530-540.
Chamel, A. & Maréchal, Y. (1992) Characterization of isolated plant cuticles using Fourier Transform infrared (FTIR) spectroscopy. Comptes Rendus de l'Académie des Sciences, 315, 347-354.
Charati, S.G. & Stern, S.A. (1998) Diffusion of gases in silicone polymers: molecular dynamics simulations. Macromoloecules, 31, 5529-5535.
Chichakli, M. & Jessen, F.W. (1967) Crystal morphology in hydrocarbon systems. Industrial and Engineering Chemistry, 59, 86-98.
Dicke, M. & Loreto, F. (2010) Induced plant volatiles: from genes to climate change. Trends in Plant Science, 15, 115-117.
Dorset, D.L. (1995) The crystal structure of waxes. Acta Crystallographica, B51, 1021-1028.
Dorset, D.L. (2000) Crystallography of real waxes: branched chain packing in microcrystalline petroleum wax studied by electron diffraction. Energy & Fuels, 14, 685-691.
Dudareva, N., Cseke, L., Blanc, V.M. & Pichersky, E. (1996) Evolution of floral scent in Clarkia: novel patterns of S-linalool synthase gene expression in the C. breweri flower. Plant Cell, 8, 1137-1148.
Dudareva, N., Klempien, A., Muhlemann, J.K. & Kaplan, I. (2013) Biosynthesis, function and metabolic engineering of plant volatile organic compounds. New Phytologist, 198, 16-32.
Effmert, U., Buss, D., Rohrbeck, D. & Piechulla, B. (2006) Localization of the synthesis and emission of scent compounds within the flower. In: Dudareva, N. & Picherscky, E. (Eds.) Biology of floral scent. Boca Raton, FL: CRC Press, pp. 105-124.
Eigenbrode, S.D. & Jetter, R. (2002) Attachment to plant surface waxes by an insect predator. Integrative and Comparative Biology, 42, 1091-1099.
Ensikat, H.J., Boese, M., Mader, W., Barthlott, W. & Koch, K. (2006) Crystallinity of plant epicuticular waxes: electron and X-ray diffraction studies. Chemistry and Physics of Lipids, 144, 45-59.
Ensikat, H.J., Neinhuis, C. & Barthlott, W. (2000) Direct access to plant epicuticular wax crystals by a new mechanical isolation method. International Journal of Plant Sciences, 161, 143-148.
España, L., Heredia-Guerrero, J., Segado, J.J., Heredia, A. & Domínguez, E. (2014) Biomechanical properties of the tomato (Solanum lycopersicum) fruit cuticle during development are modulated by changes in the relative amounts of its components. New Phytologist, 202, 790-802.
Fagerström, A., Kocherbitov, V., Ruzgas, T., Westbye, P., Bergström, K., & Engblom, J. (2013) Effects of surfactants and thermodynamic activity of model active ingredient on transport over plant leaf cuticle. Colloids and Surfaces B: Biointerfaces, 103, 572-579.
Fagerström, A., Kocherbitov, V., Westbye, P., Bergström, K., Arnebrant, T., & Engblom, J. (2014) Surfactant softening of plant leaf cuticle model wax - A Differential Scanning Calorimetry (DSC) and Quartz Crystal Microbalance with Dissipation (QCM-D) study. Journal of Colloid and Interface Science, 426, 22-30.
Goo, G.-H., Sung, G., Lee, S.-H. & Chang, T. (2002) Diffusion behavior of n-alkanes by molecular dynamics simulations. Bulletin - Korean Chemical Society, 23, 1595-1603.
Goodwin, S.M. & Jenks, M. (2005) Plant cuticle function as a barrier to water loss. In: Jenks, M. & Hasegawa, P.M. (Eds.) Plant abiotic stress. Oxford: Blackwell Publishing, pp. 14-36.
Grisafi, S. (2009) Gas diffusion in anisotropic nonhomogeneous polymers. Macromolecular Theory and Simulations, 18, 42-49.
Heredia-Guerrero, J.A., Benítez, J.J., Domínguez, E., Bayer, I.S., Cingolani, R., Athanassiou, A. et al. (2014) Infrared and Raman spectroscopic features of plant cuticles: a review. Frontiers in Plant Science, 5, 305.
Holloway, PJ (1982). Structure and histochemistry of plant cuticular membrane: an overview. In: Cutler, D. F., Alvin, K. L., Price, C. E. (Eds.) The plant cuticle, Linnean Society Symposium Series Vol. 10. London: Academic Press, pp. 1-32.
Ingólfsson, H.I., Melo, M.N., van Eerden, F.J., Arnarez, C., Lopez, C.A., Wassenaar, T.A. et al. (2014) Lipid organization of the plasma membrane. Journal of the American Society, 136, 14554-14559.
Ingram, G.C. & Nawrath, C. (2017) The roles of the cuticle in plant development: organ adhesions and beyond. Journal of Experimental Botany, 68, 5307-5321.
Jeffree, C. E. (2006). The fine structure of the plant cuticle. In Biology of the plant cuticle, annual plant reviews Vol. 23 Riederer, M., Müller, C., (Eds.) Oxford: Blackwell Publishing, pp. 11-125.
Jetter, R., Kunst, L. & Samuels, A.L. (2006) Composition of plant cuticular waxes. In: Riederer, M. & Müller, C. (Eds.) Biology of the plant cuticle. Oxford: Blackwell Publishing, pp. 145-181.
Jorgensen, W.L., Maxwell, D.S. & Tirado-Rives, J. (1996) Development and testing of the OPLS all-atom force field on conformational energetics and properties of organic liquids. Journal of the American Society, 118, 11225-11236.
Kerstiens, G. (1996a) Signalling across the divide: a wider perspective of cuticular structure-function relationships. Trends in Plant Science, 1, 125-129.
Kerstiens, G. (1996b) Cuticular water permeability and its physiological significance. Journal of Experimental Botany, 47, 1813-1832.
Kirkwood, R.C. (1999) Recent developments in our understanding of the plant cuticle as a barrier to the foliar uptake of pesticides. Pesticide Science, 55, 69-77.
Kolosova, N., Gorenstein, N., Kish, C.M. & Dudareva, N. (2001) Regulation of circadian methyl benzoate emission in diurnally and nocturnally emitting plants. Plant Cell, 13, 2333-2347.
Krauss, P., Markstädter, C. & Riederer, M. (1997) Attenuation of UV radiation by plant cuticles from woody species. Plant, Cell & Environment, 20, 1079-1085.
Kreger, D. (1948) An X-ray study of waxy coating from plants. Recueil des travaux botaniques néerlandais, 42, 606-736.
Kunst, L. & Samuels, L. (2009) Plant cuticles shine: advances in wax biosynthesis and export. Current Opinion in Plant Biology, 12, 721-727.
le Roux, J.H. (1969) Fischer-tropsch waxes. I. An infra-red method for the determination of crystallinity. Journal of Applied Chemistry, 19, 39-42.
Liao, P., Ray, S., Boachon, B., Lynch, J.H., Deshpande, A., McAdam, S. et al. (2020) Cuticle thickness affects dynamics of volatile emission from petunia flowers. Nature Chemical Biology, 17, 138-145. https://doi.org/10.1038/s41589-020-00670-w
Lindner, B., Petridis, L., Schulz, R. & Smith, J.C. (2013) Solvent-driven preferential association of lignin with regions of crystalline cellulose in molecular dynamics simulation. Biomacromolecules, 14, 3390-3398.
Makrodimitri, Z.A., Unruh, D.J.M. & Economou, I.G. (2012) Molecular simulation and macroscopic modeling of the diffusion of hydrogen, carbon monoxide and water in heavy n-alkane mixtures. The Journal of Physical Chemistry B, 115, 1429-1439.
Martin, L.B. & Rose, J.K. (2014) There's more than one way to skin a fruit: formation and functions of fruit cuticles. Journal of Experimental Botany, 65, 4639-4651.
Matas, A. & Heredia, A. (1999) Molecular dynamics modellization and simulation of water diffusion through plant cutin. Zeitschrift für Naturforschung, 54c, 896-902.
Merk, S., Blume, A. & Riederer, M. (1998) Phase behaviour and crystallinity of plant cuticular waxes studied by Fourier transform infrared spectroscopy. Planta, 204, 44-53.
Niinemets, U. & Reichstein, M. (2003) Controls on the emission of plant volatiles through stomata: differential sensitivity of emission rates to stomatal closure explained. Journal of Geophysical Research: Atmospheres, 108, 4208.
Pichersky, E. & Gershenzon, J. (2002) The formation and function of plant volatiles: perfumes for pollinator attraction and defense. Current Opinion in Plant Biology, 5, 237-243.
Pinto, D.M., Blande, J.D., Souza, S.R., Nerg, A.M. & Holopainen, J.K. (2010) Plant volatile organic compounds (VOCs) in ozone (O3) polluted atmospheres: the ecological effects. Journal of Chemical Ecology, 36, 22-34.
Plimpton, S. (1995) Fast parallel algorithms for short-range molecular dynamics. Journal of Computational Physics, 117, 1-19.
Pollard, M., Beisson, F., Li, Y., Ohlrogge, J.B. (2008) Building lipid barriers: biosynthesis of cutin and suberin. Trends in Plant Science, 13, 236-46
Pollard, T.D. (2007) Regulation of actin filament assembly by Arp2/3 complex and formins. Annual Review of Biophysics and Biomolecular Structure, 36, 451-477.
Popp, C., Burghardt, M., Friedmann, A. & Riederer, M. (2005) Characterization of hydrophilic and lipophilic pathways of Hedera Helix L. cuticular membranes: permeation of water and uncharged organic compounds. Journal of Experimental Botany, 56, 2797-2806.
Reina-Pinto, J.J. & Yephremov, A. (2009) Surface lipids and plant defenses. Plant Physiology and Biochemistry, 47, 540-549.
Reynhardt, E.C. & Riederer, M. (1991) Structure and molecular dynamics of the cuticular wax from leaves of Citrus aurantium L. Journal of Physics D: Applied Physics, 24, 478-486.
Riederer, M. & Schneider, G. (1990) The effect of the environment on the permeability and composition of Citrus leaf cuticles: II. Composition of soluble cuticular lipids and correlation with transport properties. Planta, 180, 154-165.
Riederer, M. & Schreiber, L. (2001) Protecting against water loss: analysis of the barrier properties of plant cuticles. Journal of Experimental Botany, 52, 2023-2032.
Roberts, E.A., Southwick, M.D. & Palmiter, D.H. (1948) A microchemical examination of McIntosh apple leaves showing relationship of cell wall constituents to penetration of spray solutions. Plant Physiology, 23, 557-559.
Schönherr, J. (1976) Water permeability of isolated cuticular membranes: the effect of pH and cations on diffusion, hydrodynamic permeability and size of polar pores in the cutin matrix. Planta, 128, 113-126.
Schönherr, J. & Baur, P. (1994) Modelling penetration of plant cuticles by crop protecting agents (CPA) and effects of adjuvants on rates of penetration. Pesticide Science, 42, 185-208.
Schönherr, J. & Riederer, M. (1989) Foliar penetration and accumulation of organic chemicals in plant cuticles. Reviews of Environmental Contamination and Toxicology, 108, 1-70.
Schreiber, L. (2005) Polar paths of diffusion across plant cuticles: new evidence for an old hypothesis. Annals of Botany, 95, 1069-1073.
Schreiber, L. & Riederer, M. (1996) Determination of diffusion coefficients of octadecanoic acid in isolated cuticular waxes and their relationship to cuticular water permeabilities. Plant, Cell & Environment, 19, 1075-1082.
Schreiber, L., Schorn, K. & Heimburg, T. (1997) 2H NMR study of cuticular wax isolated from Hordeum vulgare L. leaves: identification of amorphous and crystalline wax phases. European Biophysics Journal, 26, 371-380.
Sieber, P., Schorderet, M., Ryser, U., Buchala, A., Kolattukudy, P. et al. (2000) Transgenic Arabidopsis plants expressing a fungal cutinase shows alterations in the structure and properties of the cuticle and postgenital organ fusions. Plant Cell, 12, 721-738.
Takeuchi, H. (1990) Molecular dynamics simulations of diffusion of small molecules in polymers: effect of chain length. The Journal of Chemical Physics, 93, 4490.
Verdonk, J.C., Ric de Vos, C.H., Verhoeven, H.A., Haring, M.A., van Tunen, A.J., & Schuurink, R.C. (2003) Regulation of floral scent production in petunia revealed by targeted metabolomics. Phytochemistry, 62, 997-1008.
Waters, E.R. (2003) Molecular adaptation and the origin of land plants. Molecular Phylogenetics and Evolution, 29, 456-463.
Widhalm, J.R., Jaini, R., Morgan, J.A. & Dudareva, N. (2015) Rethinking how volatiles are released from plant cells. Trends in Plant Science, 20, 545-550.
Yeats, T.H. & Rose, J.K.C. (2013) The formation and function of plant cuticles. Plant Physiology, 163, 5-20.

Auteurs

Shaunak Ray (S)

Davidson School of Chemical Engineering, Purdue University, West Lafayette, IN, 47907-2100, USA.

Brett M Savoie (BM)

Davidson School of Chemical Engineering, Purdue University, West Lafayette, IN, 47907-2100, USA.

Natalia Dudareva (N)

Department of Biochemistry, Purdue University, West Lafayette, IN, 47907-2063, USA.
Purdue Center for Plant Biology, Purdue University, West Lafayette, IN, 47907, USA.
Department of Horticulture and Landscape Architecture, Purdue University, West Lafayette, IN, 47907-2010, USA.

John A Morgan (JA)

Davidson School of Chemical Engineering, Purdue University, West Lafayette, IN, 47907-2100, USA.
Department of Biochemistry, Purdue University, West Lafayette, IN, 47907-2063, USA.
Purdue Center for Plant Biology, Purdue University, West Lafayette, IN, 47907, USA.

Articles similaires

Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Animals Dietary Fiber Dextran Sulfate Mice Disease Models, Animal
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Fragaria Light Plant Leaves Osmosis Stress, Physiological

Classifications MeSH