Published October 31, 2020
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A phenylpropanoid diglyceride associates with the leaf rust resistance Lr34res gene in wheat
Creators
- 1. National Research Council of Canada, Aquatic and Crop Resources Development Research Center, 110 Gymnasium Place, Saskatoon, SK, S7N 0W9, Canada
- 2. Department of Plant Science, University of Manitoba, 66 Dafoe Rd. Winnipeg, MB, R3T 2N2, Canada
Description
Rajagopalan, Nandhakishore, Lu, Yuping, Burton, Ian W., Monteil-Rivera, Fanny, Halasz, Annamaria, Reimer, Elsa, Tweidt, Rebecca, Brûl, Anita, e-Babel, Kutcher, Hadley R., You, Frank M., Cloutier, Sylvie, Cuperlovic-Culf, Miroslava, Hiebert, Colin W., McCallum, Brent D., Loewen, Michele C. (2020): A phenylpropanoid diglyceride associates with the leaf rust resistance Lr34res gene in wheat. Phytochemistry (112456) 178: 1-12, DOI: 10.1016/j.phytochem.2020.112456, URL: http://dx.doi.org/10.1016/j.phytochem.2020.112456
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- urn:lsid:plazi.org:pub:FF84B406FFBDFF95E472FFE6F740972B
References
- Audenaert, K., De Meyer, G.B., Hofte, M.M., 2002. Abscisic acid determines basal susceptibility of tomato to Botrytis cinerea and suppresses salicylic acid-dependent signaling mechanisms. Plant Physiol. 128, 491-501.
- Breusegem, F., Hofte, M., 2007. Resistance to Botrytis cinerea in sitiens, an abscisic acid-deficient tomato mutant, involves timely production of hydrogen peroxide and cell wall modifications in the epidermis. Plant Physiol. 144, 1863-1877.
- Boller, T., Felix, G., 2009. A renaissance of elicitors: perception of microbe-associated molecular patterns and danger signals by pattern-recognition receptors. Annu. Rev. Plant Biol. 60, 379-406.
- Bolton, M.D., Kolmer, J.A., Xu, W.W., Garvin, D.F., 2008. Lr34-mediated leaf rust resistance in wheat: transcript profiling reveals a high energetic demand supported by transient recruitment of multiple metabolic pathways. Mol. Plant Microbe Interact. 21, 1515-1527.
- Brar, G.S., Kutcher, H.R., 2016. Race characterization of Puccinia striiformis f. sp. tritici, the cause of wheat stripe rust, in Saskatchewan and Southern Alberta, Canada and virulence comparison with races from the United States. Plant Dis. 100, 1744-1753.
- Brar, G.S., Ali, S., Qutob, D., Ambrose, S., Lou, K., Maclachlan, R., Pozniak, C.J., Fu, Y.- B., Sharpe, A.G., Kutcher, H.R., 2018. Genome re-sequencing and simple sequence repeat markers reveal the existence of divergent lineages in the Canadian Puccinia striiformis f. sp. tritici population with extensive DNA methylation. Environ. Microbiol. 20, 1498-1515.
- Buhrow, L.M., Cram, D., Tulpan, D., Foroud, N.A., Loewen, M.C., 2016. Exogenous abscisic acid and gibberellic acid elicit opposing effects on Fusarium graminearum infection in wheat. Phytopathology 106, 986-996.
- Cai, H., Al-Fayez, M., Tunstall, R.G., Platton, S., Greaves, P., Steward, W.P., Gescher, A. J., 2005. The rice bran constituent tricin potently inhibits cyclooxygenase enzymes and interferes with intestinal carcinogenesis in ApcMin mice. Mol. Canc. Therapeut. 4, 1287-1292.
- Chauhan, H., Boni, R., Bucher, R., Kuhn, B., Buchmann, G., Sucher, J., Selter, L.L., Hensel, G., Kumlehn, J., Bigler, L., Glauser, G., Wicker, T., Krattinger, S.G., Keller, B., 2015. The wheat resistance gene Lr34 results in the constitutive induction of multiple defense pathways in transgenic barley. Plant J. 84, 202-215.
- Cooper, R., Gottlieb, H.E., Lavie, D., 1978. New phenolic diglycerides from Aegilops ovata. Phytochemistry (Oxf.) 17, 1673-1675.
- Couto, D., Zipfel, C., 2016. Regulation of pattern recognition receptor signalling in plants. Nat. Rev. Immunol. 16, 537-552.
- Cuperlovic-Culf, M., Rajagopalan, N., Tulpan, D., Loewen, M.C., 2016. Metabolomics and cheminformatics analysis of antifungal function of plant metabolites. Metabolites 6, E31.
- Dakouri, A., McCallum, B.D., Walchnowski, A.Z., Cloutier, S., 2010. Fine-mapping of the leaf rust Lr34 locus in Triticum aestivum (L.) and characterization of large germplasm collections support the ABC transporter as essential for gene function. Theor. Appl. Genet. 121, 373-384.
- Dakouri, A., McCallum, B.D., Cloutier, S., 2014. Haplotype diversity and evolutionary history of the Lr34 locus of a world wheat germplasm collection. Mol. Breed. 33, 639-655. https://doi.org/10.1007/s11032-013-9981-2.
- Dalal, M., Sahu, S., Tiwaru, S., Rao, A.R., Gaikwad, K., 2018. Transcriptome analysis reveals interplay between hormones, ROS metabolism and cell wall biosynthesis for drought-induced root growth in wheat. Plant Physiol. Biochem. 130, 482-492.
- De Vleesschauwer, D., Yang, Y.N., Cruz, C.V., Hofte, M., 2010. Abscisic acid-induced resistance against the brown spot pathogen Cochliobolus miyabeanus in rice involves MAP kinase-mediated repression of ethylene signaling. Plant Physiol. 152, 2036-2052.
- Delaporte, R.H., Guzen, K.P., Laverde Jr., A., dos Santos, A.R., Sarragiotto, M.H., 2006. Phenylpropanoid glycerols from Tillandsia streptocarpa baker (bromeliaceae). Biochem. Systemat. Ecol. 34, 599-602.
- Deng, X., Gao, G., Zheng, S., Li, F., 2008. Qualitative and quantitative analysis of flavonoids in the leaves of Isatis indigatica Fort. by ultra-performance liquid chromatography with PDA and electrospray ionization tandem mass spectrometry detection. J. Pharmaceut. Biomed. Anal. 48, 562-567.
- Deppe, J.P., Rabbat, R., H ortensteiner € , S., Keller, B., Martinoia, E., Lop� ez-Marqu� es, R.L., 2018. The wheat ABC transporter Lr34 modifies the lipid environment at the plasma membrane. J. Biol. Chem. 293, 18667-18679.
- Dhokane, D., Karre, S., Kushalappa, A.C., McCartney, C., 2016. Integrated metabolotranscriptomics reveals Fusarium head blight candidate resistance genes in wheat QTL-Fhb2. PloS One 11, e0155851.
- Dyck, P.L., Samborski, D.J., Anderson, R.G., 1966. Inheritance of adult-plant leaf rust resistance derived from the common wheat varieties Exchange and Frontana. Can. J. Genet. Cytol. 8, 665-671.
- Dyck, P.L., 1993. Inheritance of leaf rust and stem rust resistance in 'Roblin' wheat. Genome 36, 289-293.
- Estiarte, M., Penuelas, J., Kimball, B.A., Hendrix, D.L., Pinter Jr., P.J., Wall, G.W., LaMorte, R.L., Hunsacker, D.J., 1999. Free-air CO2 enrichment of wheat: leaf flavonoid concentration throughout the growth cycle. Physiol. Plantarum 105, 423-433.
- Garg, R., Tyagi, A.K., Jain, M., 2012. Microarray analysis reveals overlapping and specific transcriptional responses to different plant hormones in rice. Plant Signal. Behav. 7, 951-956.
- Goda, H., 2008. The AtGenExpress hormone and chemical treatment data set: experimental design, data evaluation, model data analysis and data access. Plant J. 55, 526-542.
- Golin, J., Ambudkar, S.V., May, L., 2007. The yeast Pdr5p multidrug transporter: how does it recognize so many substrates? Biochem. Biophys. Res. Commun 356, 1-5.
- Gordon, C.S., Rajagopalan, N., Risseeuw, E.P., Surpin, M., Ball, F.J., Barber, C.J., Buhrow, L.M., Clark, S.M., Page, J.E., Todd, C.D., Abrams, S.R., Loewen, M.C., 2016. Characterization of Triticum aestivum abscisic acid receptors and a possible role for these in mediating Fusarium head blight susceptibility in wheat. PloS One 11, e0164996.
- Graf, R.J., Beres, B.L., Laroche, A., Gaudet, D.A., Eudes, F., Pandeya, R.S., Badea, A., Randhawa, H.S., 2013a. Emerson hard red winter wheat. Can. J. Plant Sci. 93, 741-748.
- Graf, R.J., Beres, B.L., Randhawa, H.S., Gaudet, D.A., Badea, A., Laroche, A., Eudes, F., Pandeya, R.S., 2013b. AAC Gateway hard red winter wheat. Can. J. Plant Sci. 93, 541-548.
- Harder, L.H., Christensen, L.P., 2000. A new flavone O-glycoside and other constituents from wheat leaves (Triticum aestivum L.). Z. Naturforsch. C Biosci. 55, 337-340.
- Hulbert, S.H., Bai, J., Fellers, J.P., Pacheco, M.G., Bowden, R.L., 2007. Gene expression patterns in near isogenic lines for wheat rust resistance gene Lr34/Yr18. Phytopathology 97, 1083-1093.
- Isidorov, V.A., Szczepaniak, L., Bakier, S., 2014. Rapid GC/MS determination of botanical precursors of Eurasian propolis. Food Chem. 142, 101-106.
- Ioset, J.R., Urbaniak, B., Ndjoko-Ioset, K., Wirth, J., Martin, F., Gruissem, W., Hostettmann, K., Sautter, C., 2007. Flavonoid profiling among wild type and related GM wheat varieties. Plant Mol. Biol. 65, 645-654.
- Jones, J.D.G., Dangl, J.L., 2006. The plant immune system. Nature 444, 323-329.
- Kakei, Y., Mochida, K., Sakurai, T., Yoshida, T., Shinozaki, K., Shimada, Y., 2015. Transcriptome analysis of hormone-induced gene expression in Brachypodium distachyon. Sci. Rep. 5, 14476.
- Kage, U., Yogendra, K.N., Kushalappa, A.C., 2017a. TaWRKY70 transcription factor in wheat QTL-2DL regulates downstream metabolite biosynthetic genes to resist Fusarium graminearum infection spread within spike. Sci. Rep. 7, 42596.
- Kage, U., Karre, S., Kushalappa, A.C., McCartney, C., 2017b. Identification and characterization of a fusarium head blight resistance gene TaACT in wheat QTL-2DL. Plant Biotechnol. J. 15, 447-457.
- Karre, S., Kumar, A., Dhokane, D., Kushalappa, A.C., 2017. Metabolo-transcriptome profiling of barley reveals induction of chitin elicitor receptor kinase gene (HvCERK1) conferring resistance against Fusarium graminearum. Plant Mol. Biol. 93, 247-267.
- Karre, S., Kumar, A., Yogendra, K., Kage, U., Kushalappa, A., Charron, J.B., 2019. HvWRKY23 regulates flavonoid glycoside and hydroxycinnamic acid amide biosynthetic genes in barley to combat Fusarium head blight. Plant Mol. Biol. 100, 591-605.
- Ko, F.N., Chu, C.C., Lin, C.N., Chang, C.C., Teng, C.-M., 1998. Isoorientin-6 00-O-glucoside, a water-soluble antioxidant isolated from Gentiana arisanensis. Biochim. Biophys. Acta. 81-90, 1389.
- Kourelis, J., van der Hoorn, R.A.L., 2018. Defended to the nines: 25 years of resistance gene cloning identifies nine mechanisms for R protein function. Plant Cell 30, 285-299.
- Krattinger, S.G., Lagudah, E.S., Spielmeyer, W., Singh, R.P., Huerta-Espino, J., McFadden, H., Bossolini, E., Selter, L.L., Keller, B., 2009. A putative ABC transporter confers durable resistance to multiple fungal pathogens in wheat. Science 323, 1360-1363.
- Krattinger, S.G., Kang, J., Br€ aunlich, S., Boni, R., Chauhan, H., Selter, L.L., Robinson, M. D., Schmid, M.W., Wiederhold, E., Hensel, G., Kumlehn, J., Sucher, J., Martinoia, E., Keller, B., 2019. Abscisic acid is a substrate of the ABC transporter encoded by the durable wheat disease resistance gene Lr34. New Phytol. 223, 853-866.
- Kumazawa, T., Minatogawa, T., Matsuba, S., Sato, S., Onodera, J., 2000. An effective synthesis of isoorientin: the regioselective synthesis of a 6-C-glucosylflavone. Carbohydr. Res. 329, 507-513.
- Kushalappa, A.C., Yogendra, K.N., Karre, S., 2016. Plant innate immune response: qualitative and quantitative resistance. Crit. Rev. Plant Sci. 35, 38-55.
- Lagudah, E.S., McFadden, H., Singh, R.P., Huerta-Espino, J., Bariana, H.S., Spielmeyer, W., 2006. Molecular genetic characterisation of the Lr34/Yr18 slow rusting resistance gene region in wheat. Theor. Appl. Genet. 114, 21-30.
- Lancashire, P.D., Bleiholder, H., Langeluddecke, P., Stauss, R., van den Boom, T., Weber, E., Witzen-Berger, A., 1991. A uniform decimal code for growth stages of crops and weeds. Ann. Appl. Biol. 119, 561-601.
- Lillemo, M., Joshi, A.K., Prasad, R., Chand, R., Singh, R.P., 2013. QTL for spot blotch resistance in bread wheat line Saar co-locate to the biotrophic disease resistance loci Lr34 and Lr46. Theor. Appl. Genet. 126, 711-719.
- Lowe, H., Bryant, J. 2014. Anti-tumor and Anti-inflammatory Dicinnamoyl-Glycerol Esters and Their Analogues. Patent No. US 8,907,117 B2.
- Ma, C., Xiao, S.-Y., Li, Z.-G., Wang, W., Du, L.-J., 2007. Characterization of active phenolic components in the ethanolic extract of Ananas comosus L. leaves using highperformance liquid chromatography with diode array detection and tandem mass spectroscopy. J. Chromatogr., A 1165, 39-44.
- McCallum, B.D., Fetch, T., Chong, J., 2007. Cereal rust control in Canada. Aust. J. Agric. Res. 58, 639-647.
- McCallum, B.D., Seto-Goh, P., Reimer, E., Foster, A., Xue, A., 2019. Physiological specialization of Puccinia triticina, the causal agent of wheat leaf rust, in Canada in 2013. J. Indian Dent. Assoc. https://doi.org/10.1080/07060661.2019.1653376.
- Moghadamtousi, S.Z., Kadir, H.A., Hassandarvish, P., Tajik, H., Abubakar, S., Zandi, K., 2014. A review on antibacterial, antiviral, and antifungal activity of curcumin. BioMed Res. Int. 2014, 186864.
- Moore, J.W., Herrera-Foessel, S., Lan, C., Schnippenkoetter, W., Ayliffe, M., Huerta-Espino, J., Lillemo, M., Viccars, L., Milne, R., Periyannan, S., Kong, X., Spielmeyer, W., Talbot, M., Bariana, H., Patrick, J.W., Dodds, P., Singh, R., Lagudah, E., 2015. A recently evolved hexose transporter variant confers resistance to multiple pathogens in wheat. Nat. Genet. 47, 1494-1498.
- Olenichenko, N.A., Ossipov, V.I., Zagoskina, N.V., 2006. Effect of cold hardening on the phenolic complex of winter wheat leaves. Russ. J. Plant Physiol. 53, 495-500.
- Peterson, R.F., Campbell, A.B., Hannah, A.E., 1948. A diagramatic scale for estimating rust intensity of leaves and stem of cereals. Can. J. Res. 26, 496-500.
- Procter, R.H., Hohn, T.M., McCormick, S.P., 1995. Reduced virulence of Gibberella zeae caused by disruption of a trichothecene toxin biosynthesis gene. Mol. Plant Microbe Interact. 8, 593-601.
- Qi, P.F., Balcerzak, M., Rocheleau, H., Leung, W., Wei, Y.-M., Zheng, Y.-L., Ouellet, T., 2015. Jasmonic acid and abscisic acid play important roles in host-pathogen interaction between Fusarium graminearum and wheat during the early stages of fusarium head blight. Physiol. Mol. Plant Pathol. 93, 39-48.
- Rajagopalan, N., Halasz, A., Lu, Y., Liu, E., Monteil-Rivera, F., Loewen, M.C., 2016. Probing allocrite preferences of two naturally occurring variants of the wheat LR34 ABC transporter. Biochem. Cell. Biol. 94 (5), 459-470.
- Ramarathnam, N., Osawa, T., Namiki, M., Kawakishi, S., 1989. Chemical studies on novel rice hull antioxidants. 2. Identification of isovitexin, a C-glycosyl flavonoid. J. Agric. Food Chem. 37, 316-319.
- Ranjan, A., Westrick, N.M., Jain, S., Piotrowski, J.S., Ranjan, M., Kessens, R., Stiegman, L., Grau, C.R., Conley, S.P., Smith, D.L., Kabbage, M., 2019. Resistance against Sclerotinia sclerotiorum in soybean involves a reprogramming of the phenylpropanoid pathway and up-regulation of antifungal activity targeting ergosterol biosynthesis. Plant Biotechnol. J. 17, 1567-1581.
- Spielmeyer, W., McIntosh, R.A., Kolmer, J., Lagudah, E.S., 2005. Powdery mildew resistance and Lr34/Yr18 genes for durable resistance to leaf and stripe rust cosegregate at a locus on the short arm of chromosome 7D of wheat. Theor. Appl. Genet. 111, 731-735.
- Takino, J., Kozaki, T., Sato, Y., Liu, C., Ozaki, T., Minami, A., Oikawa, H., 2018. Unveiling biosynthesis of the phytohormone abscisic Acid in fungi: unprecedented mechanism of core scaffold formation catalyzed by an unusual sesquiterpene synthase. J. Am. Chem. Soc. 140, 2392-12395.
- Tohge, T., Perez de Souza, L., Fernie, A.R., 2018. On the natural diversity of phenylacylated-flavonoid and their in planta function under conditions of stress. Phytochemistry Rev. 17, 279-290.
- Ton, J., Flors, V., Mauch-Mani, B., 2009. The multifaceted role of ABA in disease resistance. Trends Plant Sci. 14, 310e317.
- Tsuchiyama, M., Sakamoto, T., Tanimori, S., Murata, S., Kawasaki, S., 2007. Enzymatic synthesis of hydroxycinnamic acid glycerol esters using type A feruloyl esterase from Aspergillus niger. Biosci. Biotechnol. Biochem. 71, 2606-2609.
- van der Burgh, A.M., Joosten, M.H.A.J., 2019. Plant immunity: thinking outside and inside the box. Trends Plant Sci. 24, 587-60.
- Ward, E.W., Cahill, D.M., Bhattacharyya, M.K., 1989. Abscisic acid suppression of phenylalanine ammonialyase activity and mRNA, and resistance of soybeans to Phytophthora megasperma f.sp. glycinea. Plant Physiol. 91, 23-27.
- Xiong, Y., Deng, K.-Z., Guo, Y.-Q., Gao, W.-Y., Xhang, T.-J., 2009. New chemical constituents from the rhizomes of Sparganium stoloniferum. Arch Pharm. Res. (Seoul) 32, 717-720.
- Zaynab, M., Fatima, M., Abbas, S., Sharif, Y., Umair, M., Zafar, M.H., Bahadar, K., 2018. Role of secondary metabolites in plant defense against pathogens. Microb. Pathog. 124, 198-202.