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Review Article

Host genes involved in the interaction between Aspergillus flavus and maize

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Pages 118-128 | Received 10 Aug 2008, Accepted 15 Sep 2008, Published online: 28 Jul 2009

References

  • Bass HW, Webster C, OBrian GR, Roberts JKM, Boston RS. (1992). A maize ribosome-inactivating protein is controlled by the transcriptional activator Opaque-2. Plant Cell. 4: 225–234.
  • Betrán FJ, Isakeit T, Odvody G. (2002). Aflatoxin accumulation of white and yellow maize inbreds in diallel crosses. Crop Sci. 42: 1894–1901.
  • Bhatnagar D, Cleveland TE, Payne GA. (2000). In: Robinson RK, ed. Encyclopedia of Food Microbiology. London: Academic Press, pp. 72–79.
  • Bhatnagar D, Rajasekaran K, Payne G, Brown R, Yu JJ, Cleveland T. (2008). The “omics” Tools: genomics, proteomics, metabolomics for solving the aflatoxin contamination problem. World Mycotoxin J. 1 (1): 3–12.
  • Brooks TD, Williams WP, Windham GL, Willcox MC, Abbas HK. (2005). Quantitative trait loci contributing resistance to aflatoxin accumulation in maize inbred Mp313E. Crop Sci. 45: 171–174.
  • Brown R, Bhatnagar D, Cleveland TE, Cary JW. (1998). Recent advances in preharvest of mycotoxin contamination In: Shinha KK, Bhatnagar D, eds. Mycotoxins in Agriculture and Food Safety. New York, NY: Marcel Dekker, Inc., pp. 351–375.
  • Brown MP, Brown-Jenco CS, Payne GA. (1999). Genetic and molecular analysis of aflatoxin biosynthesis. Fungal Genetics Biol. 26 (2): 81–98.
  • Brown RL, Chen ZY, Cleveland TE, Cotty PJ, Cary JW. (2001). Variation in in vitro α-amylase and protease activity is related to the virulence of Aspergillus flavus isolates. J Food Prot. 64: 401–404.
  • Brown RL, Chen ZY, Cleveland TE, Russin JS. (1999). Advances in the development of host resistance in corn to aflatoxin contamination by Aspergillus flavus. Phytopathology. 89: 113–117.
  • Brown RL, Chen Z-Y, Menkir A, Cleveland TE. (2003). Using biotechnology to enhance host resistance to aflatoxin contamination of corn. Afr J Biotechnol. 2(12): 557–562.
  • Brown RL, Cleveland TE, Cotty PJ, Mellon JE. (1992). Spread of Aspergillus flavus in cotton bolls, decay of intercarpellary membranes, and production of fungal pectinases. Phytopathology. 82: 462–467.
  • Brown RL, Chen Z, Menkir A, Cleveland TE. (2006). Proteomics to Identify Resistance Factors in Corn. Mycotoxin Research. 22(1):22–26.
  • Brown RL, Cotty PJ, Cleveland TE, Widstrom N. (1993). Living maize embryo influences accumulation of aflatoxin in maize kernels. J Food Prot. 56: 967–971.
  • Busboom KN, White DG. (2004). Inheritance of resistance to aflatoxin production and Aspergillus ear rot of corn from the cross of inbreds B73 and Oh516. Phytopathology. 94: 1107–1115.
  • Campbell KW, Hamblin AM, White DG. (1997). Inheritance of resistance to aflatoxin production in a cross between corn inbreds B73 and LB31. Phytopathology. 87: 1144–1147.
  • Campbell KW, White DG. (1995). Evaluation of corn genotypes for resistance to Aspergillus ear rot, kernel infection,and aflatoxin production. Plant Dis. 79: 1039–1045.
  • Chen Z-Y, Brown RL, Cleveland TE, Damann KF, Russin JS. (2001). Comparison of constitutive and inducible maize kernel proteins of genotypes resistant or susceptible to aflatoxin production. J Food Prot. 64 (11): 1785–1792.
  • Chen Z-Y, Brown RL, Damann KE, Cleveland TE. (1999a). Characterization of an alkaline protease excreted by Aspergillus flavus and its function in fungal infection of corn kernels. Phytopathology. 89: S15.
  • Chen Z-Y, Brown RL, Damann KE, Cleveland TE. (2002). Identification of unique or elevated levels of kernel proteins in aflatoxin resistant maize genotypes through proteome analysis. Phytopathology. 92: 1084–1094.
  • Chen ZY, Brown RL, Damann KE, Cleveland TE. (2004a). Identification of a maize kernel stress-related protein and its effect on aflatoxin accumulation. Phytopathology. 94: 938–945.
  • Chen Z-Y, Brown RL, Damann KE, Cleveland TE. (2007). Identification of maize kernel endosperm proteins associated with resistance to aflatoxin contamination by Aspergillus flavus. Phytopathology. 97: 1094–1103.
  • Chen Z-Y, Brown RL, Lax AR, Guo BZ, Cleveland TE, Russin J. S. (1998). Resistance to Aspergillus flavus in corn kernels is associated with a 14-kDa protein. Phytopathology. 88: 276–281.
  • Chen Z-Y, Brown RL, Rajasekaran K, Damann KE, Cleveland TE. (2004b). Evidence for an association in corn between stress tolerance and resistance to Aspergillus flavus infection and aflatoxin contamination. African J Biotechnol. 3 (12): 693–699.
  • Chen Z-Y, Brown RL, Rajasekaran K, Damann KE, Cleveland TE. (2006). Identification of a maize kernel pathogenesis-related protein and evidence for its involvement in resistance to Aspergillus flavus infection and aflatoxin production. Phytopathology. 96: 87–95.
  • Chen Z-Y, Brown RL, Russin JS, Lax AR, Cleveland TE. (1999b). A corn trypsin inhibitor with antifungal activity inhibits Aspergillus flavus ά-amylase. Phytopathology. 89: 902–907.
  • Cleveland TE, Cotty PJ. (1991). Invasiveness of Aspergillus flavus isolates in wounded cotton bolls is associated with production of a specific fungal polygalacturonase. Phytopathology. 81: 155–158.
  • Cleveland TE, Dowd PF, Desjardins AE, Bhatnagar D, Cotty PJ. (2003). United States Department of Agriculture—Agricultural Research Service research on pre-harvest prevention of mycotoxins and mycotoxigenic fungi in U.S. crops. Pest Manag Sci. 59: 629–642.
  • Cleveland TE, Yu J, Bhatnagar D, Chen Z-Y, Brown RL, Chang P-K, Cary JW. (2004). Elucidation of the molecular basis of the host plant-Aspergillus flavus interaction, a basis for devising strategies to reduce aflatoxin contamination in crops. In: Shier WT, Tu AT, Yu C, Abbas H.K, eds. Journal of Toxicology - Toxin Reviews. 23 (2, 3): 345–380.
  • Cotty PJ, Bayman P, Egel DS, Elias KS. (1994). Agriculture, aflatoxins and Aspergillus. In: Powell KA, Renwick A, Peberdy JF, eds. The Genus Aspergillus. New York, NY: Plenum, pp. 1–27.
  • Cotty PJ, Cleveland TE, Brown RL, Mellon JE. (1991). Variation in polygalacturonase production among Aspergillus flavus isolates. Appl Environ Microbiol. 56: 3885–3887.
  • Council for Agricultural Science and Technology. (1989). Mycotoxins: Economic and Health Risks. Task Force Report No. 116. Ames, IA: Council for Agricultural Science and Technology, pp. 1–91.
  • De Vries RP, Visser J. (2001). Aspergillus enzymes involved in degradation of plant cell wall polysaccharides. Microbiol Mol Biol Rev. 65: 497–522.
  • Diener UL, Cole RJ, Sanders TH, Payne GA, Lee LS, Klich MA. (1987). Epidemiology of aflatoxin formation by Aspergillus flavus. Ann Rev Phytopath. 25: 249–270.
  • Domon B, Aebersold R. (2006). Mass spectrometry and protein analysis. Science 312 (5771): 212–217.
  • Dowd PF, Johnson ET. (2005). Association of a specific cationic peroxidase isozyme with maize stress and disease resistance responses, genetic identification, and identification of a cDNA coding for the isozyme. J Agric Food Chem. 53: 4464–4470.
  • Durrant WE, Dong X. (2004). Systemic acquired resistance. Annu Rev Phytopathol. 42: 185–209.
  • Fernie AR. (2007). The future of metabolic phytochemistry: larger numbers of metabolites, higher resolution, greater understanding. Phytochemistry. 68: 2861–2880.
  • Gao X, Shim WB, Göbel C, Kunze S, Feussner I, Meeley R, Balint-Kurti P, Kolomiets M. (2007). Disruption of a maize 9-lipoxygenase results in increased resistance to fungal pathogens and reduced levels of contamination with mycotoxin fumonisin. Mol Plant Microbe Interact. 20 (8): 922–933.
  • Gardner HW. (1991). Recent investigations into the lipoxygenase pathway of plants. Biochim Biophys Acta. 1084: 221–239.
  • Gardner HW. (1995). Biological roles and biochemistry of the lipoxygenase pathway. Hort Science. 30: 197–205
  • Gardner HD, Williams WP, Windham GL. (2006). Effects of xenia on Aspergillus flavus infection and aflatoxin accumulation in maize inbreds. Crop Sci. 46: 2151–2154.
  • Gardner HD, Williams WP, Windham GL. (2007). Diallel analysis of aflatoxin accumulation in maize. Field Crops Res.102: 60–63.
  • Geiser DM, Pitt JI, Taylor, JW. (1998). Cryptic speciation and recombination in the aflatoxin-producing fungus Aspergillus flavus. Proc Natl Acad Sci U S A. 95: 388–393.
  • Gembeh SV, Brown RL, Grimm C, Cleveland TE. (2001). Identification of chemical components of corn kernel pericarp wax associated with resistance to Aspergillus flavus infection and aflatoxin production. J Agric Food Chem. 49: 4635–4641.
  • Grant RF, Jackson BS, Kiniry KR, Arkin GF. (1989). Water deficit timing effects on yield components in maize. Agron J. 81: 61–65.
  • Guo BZ, Russin JS, Cleveland TE, Brown RL, Damann KE. (1996). Evidence for cutinase production by Aspergillus flavus and its possible role in infection of corn kernels. Phytopathology. 86: 824–829.
  • Hamblin AM, White DG. (2000). Inheritance of resistance to Aspergillus ear rot and aflatoxin production of corn from Tex6. Phytopathology. 90: 292–296.
  • Hemming FW. (1995). Expression and secretion of glycoproteins by hyphal fungi. Biochem. Soc. Trans. 23:180–185.
  • Horn BW, Greene RL, Sobolev, VS, Dorner JW, Powell JH, Layton RC. (1996). Association of morphology and mycotoxin production with vegetative compatibility groups in Aspergillus flavus, A. parasiticus, and A. tamarii. Mycologia. 88 (4): 574–587.
  • Ji C, Norton RA, Wicklow DT, Dowd PF. (2000). Isoform patterns of chitinase and β-1,3-glucanase in maturing corn kernels (Zea mays L.) associated with Aspergillus flavus silk stage infection. J Agric Food Chem. 48: 507–511.
  • Jones RK, Payne GA, Leonard KJ. (1980). Factors influencing infection by Aspergillus flavus in silk-inoculated corn. Plant Dis. 64: 859–863.
  • Jwa NS, Agrawal GK, Tamogami S, Yonekura M, Han O, Iwahashi H, Rakwal R. (2006). Role of defense/stress-related marker genes, proteins and secondary metabolites in defining rice self-defense mechanisms. Plant Physiol Biochem. 44 (5–6): 261–273.
  • Keller NP, Butchko RAE, Sarr E, Phillips TD. (1994). A visual pattern of mycotoxin production in maize kernels by Aspergillus spp. Phytopathology. 84: 483–488.
  • Kelley RY, Boykin DL, Bridges SM, Brooks TD, Williams WP. (2006). Identification and characterization of differentially expressed genes in two inbred maize lines using microarray technology. Proc. Ann. Multicrop Aflatoxin Elimination Workshop, Ft. Worth, TX, October 16–18, 2006, p. 44.
  • Kolattukudy PE. (1980). Biopolyester membranes of plants: cutin and suberin. Science. 208: 990.
  • Kolattukudy PE. (1985). Enzymatic penetration of the plant cuticle by fungal pathogens. Annu Rev Phytopathol. 23: 223.
  • Leger RJS, Screen SE, Shams-Pirzadeh B. (2000). Lack of host specialization in Aspergillus flavus. Appl Environ Microbiol. 66 (1): 320–324.
  • Lozovaya VV, Waranyuwat A, Widholm JM. (1998). ß-l,3-glucanase and resistance to Aspergillus flavus infection in maize. Crop Sci. 38 (5): 1255–1260.
  • Luo M, Lee RD, Guo, B-Z. (2006). Transcriptional profiles of Tex6 maize kernels in response to water deficit during late developmental stages [abstract]. In: Proceedings of Plant and Animal Genome Conference XIV Conference, January 14–18, 2006, San Diego, CA.
  • Luo M, Liu J, Lee RD, Guo B-Z. (2008). Characterization of gene expression profiles in developing kernels of maize (Zea mays L.) inbred Tex6. Plant Breeding. 127: 569–578.
  • Magbanua ZV, De Moraes CM, Brooks TD, Williams WP, Luthe DS. (2007). Is catalase activity one of the factors associated with maize resistance to Aspergillus flavus? Mol Plant Microbe Interact. 20 (6): 697–706.
  • Mambelli S, Setter TL. (1998). Inhibition of maize endosperm cell division and endoreduplication by exogenously applied abscisic acid. Physiol Plant. 104: 266–272
  • Marsh SF, Payne GA. (1984). Preharvest infection of corn silks and kernels by Aspergillus flavus. Phytopathology. 74:1284–1289.
  • Maupin LM, Clements MJ, White DG. (2003). Evaluation of the MI82 corn line as a source of resistance to aflatoxin in grain and use of BGYF as a selection tool. Plant Dis. 87: 1059–1066.
  • McMillian WW, Widstrom NW, Wilson DM. (1993). Registration of GT-MAS:gk maize germplasm. Crop Sci. 33: 882.
  • Medina ML, Kiernan UA, Francisco WA. (2004). Proteomic analysis of rutin-induced secreted proteins from Aspergillus flavus. Fungal Genet Biol. 41 (3): 327–335.
  • Mellon JE, Cotty PJ, Dowd MK. (2007). Aspergillus flavus hydrolases: their roles in pathogenesis and substrate utilization. Appl Microbiol Biotechnol. 77 (3): 497–504.
  • Mellon JE, Dowd MK, Cotty PJ. (2005). Substrate utilization by Aspergillus flavus in inoculated whole corn kernels and isolated tissues. J Agric Food Chem. 53: 2351–2357.
  • Menkir A, Brown RL, Bandyopadhyay R, Chen Z-Y, Cleveland TE. (2006). A U.S.A.-Africa collaborative strategy for identifying, characterizing, and developing maize germplasm with resistance to aflatoxin contamination. Mycopathologia. 162: 225–232.
  • Menkir A, Brown RL, Bandyopadhyay R, Cleveland TE. (2008). Registration of six tropical maize germplasm lines with resistance to aflatoxin contamination. J Plant Registrations. 2: 169–173.
  • Menkir A, Brown RL, Bandyopadhyay R, Cleveland TE. (2008). Registration of six tropical maize germplasm lines with resistance to aflatoxin contamination. Journal of Plant Registrations. 2:1246–250.
  • Mittler R. (2006). Abiotic stress, the field environment and stress combination. Trends Plant Sci. 11 (1): 15–19.
  • Moore KG, Price MS, Boston RS, Weissinger AK, Payne GA. (2004). A chitinase from Tex6 maize kernels inhibits growth of Aspergillus flavus. Phytopathology. 94: 82–87.
  • Munkvold G. (2003). Cultural and genetic approaches managing mycotoxins in maize. Annu Rev Phytopathol. 41: 99–116.
  • Nielsen K, Payne GA, Boston RS. (2001). Maize ribosome-inactivating protein inhibits normal development of Aspergillus nidulans and Aspergillus flavus. Mol Plant Microbe Interact. 14: 164–172.
  • Norton RA, Dowd PF. (1996). Effect of steryl cinnamic acid derivatives from corn bran on Aspergillus flavus, corn earworm larvae, and dried fruit beetle larvae and adults. J Agric Food Chem. 44: 2412–2416.
  • Oldiges M, Lütz S, Pflug S, Schroer K, Stein N, Wiendahl C. (2007). Metabolomics: current state and evolving methodologies and tools. Appl Microbiol Biotechnol. 76 (3): 495–511.
  • Paul C, Naidoo G, Forbes A, Mikkilineni V, White D, Rocheford T. (2003). Quantitative trait loci for low aflatoxin production in two related maize populations. Theor Appl Genet. 107 (2): 263–270.
  • Payne GA. (1992). Aflatoxin in maize. Crit Rev Plant Sci. 10 (5): 423–440.
  • Payne GA, Brown MP. (1998). Genetics and physiology of aflatoxin biosynthesis. Ann Rev Phytopath. 36: 329–362.
  • Payne GA, Nierman WC, Wortman JR, Pritchard BL, Brown D, Dean RA, Bhatnagar D, Cleveland TE, Machida M, Yu J. (2006). Whole genome comparison of Aspergillus flavus and A. oryzae. Med Mycol. 44: S9–S11.
  • Rector BG, Snook ME, Widstrom NW. (2002). Effect of husk characters on resistance to corn earworm (Lepidoptera: Noctuidae) in high-maysin maize populations. J Econ Entomol. 95: 1303–1307.
  • Roberts W, Selitrennikoff CP. (1990). Zeamatin, an antifungal protein from maize with membrane-permeabilizing activity. J Gen Microbiol. 136: 1771–1778.
  • Russin JS, Guo BZ, Tubajika KM, Brown RL, Cleveland TE, Widstrom NW. (1997). Comparison of kernel wax from corn genotypes resistant or susceptible to Aspergillus flavus. Phytopathology. 87: 529–533.
  • Sales MP, Gerhardt IR, Grossi-de-Sa´ MF, Xavier-Filho J. (2000). Do legume storage proteins play a role in defending seeds against Bruchids? Plant Physiol. 124: 515–522.
  • Scheidegger KA, Payne GA. (2003). Unlocking the secrets behind secondary metabolism: A review of Aspergillus flavus from pathogenicity to functional genomics. J Toxicology – Toxin Rev. 22 (2 and 3): 423–459.
  • Scott, GE, Zummo N. (1990). Registration of Mp313E parental line of maize. Crop Sci. 30: 1378.
  • Scott GE, Zummo N. (1992). Registration of Mp420 germplasm line of maize. Crop Sci. 32: 1296.
  • Serna A, Maitz M, O’Connell Santandrea G, Thevissen K, Tienens K, Hueros G, Faleri C, Cai G, Lottspeich F, Thompson RD. (2001). Maize endosperm secretes a novel antifungal protein into adjacent maternal tissue. Plant J. 25 (6): 687–698.
  • Setter TL, Flannigan BA, Melkonian, J. (2001). Loss of kernel set due to water deficit and shade in maize: carbohydrate supplies, abscisic acid, and cytokinins. Crop Sci. 41: 1530–1540.
  • Smart MG, Wicklow DT, Caldwell RW. (1990). Pathogenesis in Aspergillus ear rot of maize: light microscopy of fungal spread from wounds. Phytopathology. 80: 1287–1294.
  • Taubenhaus JJ. (1920). A study of the black and the yellow molds of ear corn. Tex. Agric. Exp. Stn. Bull. 270.
  • Tubajika KM, Damann KE. (2001). Sources of resistance to aflatoxin production in maize. J Agric Food Chem. 49: 2652–2656.
  • Vercauteren FG, Arckens L, Quirion R. (2007). Applications and current challenges of proteomic approaches, focusing on two-dimensional electrophoresis. Amino Acids. 33 (3): 405–414.
  • Watson SA. (1987). Structure and composition. In: Watson SA, Ramstat PE, eds. Corn Chemistry and Technology. St Paul, MN: American Association of Cereal Chemists, pp. 53–82.
  • Widstrom NW. (1979). The role of insects and other plant pests in aflatoxin contamination of corn, cotton, and peanuts: a review. J Environ. 8: 5–11.
  • Widstrom NW. (1996). The aflatoxin problem with corn grain. Adv. Agronomy 56: 219–280.
  • Wilkinson JR, Kelley RY, Mylroie EJ, Windham G, Williams WP. (2007). Identification of genes associated with resistance for generation of gene specific markers in maize. Proc Ann. Multicrop Aflatoxin Elimination Workshop, Atlanta, Georgia, October 22–24, 2007, p. 91.
  • Williams WP. (2006). Breeding for resistance to aflatoxin accumulation in maize. Mycotoxin Res. 22: 27–32.
  • Williams WP, Windham, GL. (2001). Registration of dent corn germplasm line Mp715. Crop Sci. 41: 1374–1375.
  • Williams WP, Windham GL. (2006). Registration of maize germplasm line Mp717. Crop Sci. 46: 1407.
  • Williams WP, Windham GL, Buckley PM. (2008). Diallel analysis of aflatoxin accumulation in maize. Crop Sci. 48: 134–138.
  • Wilson RA, Gardner HW, Keller NP. (2001). Cultivar-dependent expression of a maize lipoxygenase responsive to seed infesting fungi. Mol Plant Microbe Interact. 14: 980–987.
  • Windham GL, Williams WP. (2002). Evaluation of corn inbreds and advanced breeding lines for resistance to aflatoxin contamination in the field. Plant Dis. 86: 232–234.
  • Wink M. (2003). Evolution of secondary metabolites from an ecological and molecular phylogenetic perspective. Phytochemistry. 64 (1): 3–19.
  • Woloshuk CP, Cavaletto JR, Cleveland TE. (1997). Inducers of aflatoxin biosynthesis from colonized maize kernels are generated by an amylase activity from Aspergillus flavus. Phytopathology. 87: 164–169.
  • Yu J, Cleveland TE, Nierman WC, Bennett JW. (2005). Aspergillus flavus genomics: gateway to human and animal health, food safety, and crop resistance to diseases. Rev Iberoam Micol. 22: 194–202.
  • Yu J, Mohaved SM, Bhatnagar D, Cleveland TE. (2003). Substrate-induced lipase gene expression and aflatoxin production in Aspergillus parasiticus and Aspergillus flavus. J Appl Microbiol. 95: 1334–1342.
  • Yu J, Whitelaw CA, Nierman WC, Bhatnagar D, Cleveland TE. (2004). Aspergillus flavus expressed sequence tags for identification of genes with putative roles in aflatoxin contamination of crops. FEMS Lett. 237: 333–340.
  • Yu L-X, Setter TL. (2003). Comparative transcriptional profiling of placenta and endosperm in developing maize kernels in response to water deficit. Plant Physiol. 131 (2): 568–582.
  • Zhang Y, Kang MS, Magari R. (1997). Genetics of resistance to kernel infection by Aspergillus flavus in maize. Plant Breeding. 116: 146–152.
  • Zhu JK. (2002). Salt and drought stress signal transduction in plants. Annu Rev Plant Biol. 53: 247–273.

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