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Functional Plant Biology Functional Plant Biology Society
Plant function and evolutionary biology
RESEARCH ARTICLE

Comparative mapping of a QTL controlling black point formation in barley

Timothy J. March A C , Jason A. Able A , Kerrie Willsmore B , Carolyn J. Schultz A and Amanda J. Able A D
+ Author Affiliations
- Author Affiliations

A School of Agriculture, Food and Wine, The University of Adelaide, Waite Campus, PMB1, Glen Osmond, SA 5064, Australia.

B South Australian Research and Development Institute, PO Box 397, Urrbrae, SA 5064, Australia.

C Present address: Martin-Luther-Universität Halle-Wittenberg, Institut für Agrar- und Ernãhrungswissenschaften, 06099 Halle (Saale), Germany.

D Corresponding author. Email: amanda.able@adelaide.edu.au

Functional Plant Biology 35(5) 427-437 https://doi.org/10.1071/FP08089
Submitted: 19 March 2008  Accepted: 22 May 2008   Published: 11 July 2008

Abstract

The dark discoloration of the embryo end of barley grain (known as black point) is a physiological disorder and the discovery of a quantitative trait locus (QTL) on 2H confirms this trait is controlled genetically. The mechanisms underlying black point tolerance can now be dissected through identification of candidate genes. Comparisons between the QTL identified on chromosomes 2H of barley and 2B of wheat suggest that they are in similar positions near the centromere. In silico analysis, using rice, identified genes residing on two comparative chromosomes (4 and 7) of the rice genome. Analysis of the 12.6 Mb region revealed 1928 unique annotations classified into 11 functional categories. Expressed sequence tags (ESTs) with high sequence similarity to enzymes proposed to be involved in black point formation were used to develop restriction fragment length polymorphisms (RFLPs). To ensure an even coverage of markers across the QTL, RFLP markers were also developed from other ESTs. Mapping of these markers has reduced the QTL region from 28 to 18 cM. This study has identified candidate genes for the control of black point formation and paves the way for future research to develop black point resistant barley cultivars.

Additional keywords: barley black point, grain development, Hordeum vulgare, synteny.


Acknowledgements

The authors thank Margie Pallotta for supplying the barley-wheat addition line membranes. This research was supported by the Molecular Plant Breeding Cooperative Research Centre (MPB CRC) and the University of Adelaide.


References


Barr AR, Jefferies SP, Broughton S, Chalmers KJ, Kretschmer JM , et al. (2003) Mapping and QTL analysis of the barley population Alexis × Sloop. Australian Journal of Agricultural Research 54, 1117–1123.
Crossref | GoogleScholarGoogle Scholar | open url image1

Bennett MD, Smith JB (1976) Nuclear DNA amounts in angiosperms. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 274, 227–274.
Crossref | GoogleScholarGoogle Scholar | open url image1

Bevan M, Bancroft I, Bent E, Love K, Goodman H , et al. (1998) Analysis of 1.9 Mb of continuous sequence from chromosome 4 of Arabidopsis thaliana. Nature 391, 485–488.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Bittner S (2006) When quinones meet amino acids: chemical, physical and biological consequences. Amino Acids 30, 205–224.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Canci PC, Nduulu LM, Dill-Macky R, Muehlbauer GJ, Rasmusson DC, Smith KP (2003) Genetic relationship between kernel discoloration and grain protein concentration in barley. Crop Science 43, 1671–1679. open url image1

Chaman ME, Copaja SV, Argandona VH (2003) Relationships between salicylic acid content, phenylalaninie ammonia-lyase (PAL) activity, and resistance of barley to aphid infestation. Journal of Agricultural and Food Chemistry 51, 2227–2231.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Conner RL, Davidson JGN (1988) Resistance in wheat to black point caused by Alternaria alternata and Cochliobolus sativus. Canadian Journal of Plant Science 68, 351–359. open url image1

Coventry SJ, Collins HM, Barr AR, Jefferies SP, Chalmers KJ, Logue SJ, Langridge P (2003) Use of putative QTLs and structural genes in marker assisted selection for diastatic power in malting barley (Hordeum vulgare L.). Australian Journal of Agricultural Research 54, 1241–1250.
Crossref | GoogleScholarGoogle Scholar | open url image1

de la Pena RC, Smith KP, Capettini F, Muehlbauer GJ, Gallo-Meagher M, Dill-Macky R, Somers DA, Rasmusson DC (1999) Quantitative trait loci associated with resistance to Fusarium head blight and kernel discoloration in barley. Theoretical and Applied Genetics 99, 561–569.
Crossref | GoogleScholarGoogle Scholar | open url image1

Gaudet DA, Laroche A, Frick M, Huel R, Puchalski B (2003) Plant development affects the cold-induced expression of plant defence-related transcripts in winter wheat. Physiological and Molecular Plant Pathology 62, 175–184.
Crossref | GoogleScholarGoogle Scholar | open url image1

Goff SA, Ricke D, Lan TH, Presting G, Wang RL , et al. (2002) A draft sequence of the rice genome (Oryza sativa L. ssp. japonica). Science 296, 92–100.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Hadaway TK , March TJ , Able AJ (2003) The involvement of peroxidases in the formation of black point in barley. In ‘Proceedings of the 11th Australian Barley Technical Symposium’. pp. 185–188. (Australian Barley Technical Symposium: Adelaide)

Harborne JB (1979) Variation and functional significance of phenolic conjugation in plants. In ‘Biochemistry of plant phenolics’. (Eds T Swain, JB Harborne, CF Van Sumere). pp. 457–474. (Plenum Press: New York)

La Rota M, Sorrells M (2004) Comparative DNA sequence analysis of mapped wheat ESTs reveals the complexity of genome relationships between rice and wheat. Functional and Integrative Genomics 4, 34–46.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Lehmensiek A, Campbell AW, Williamson PM, Michalowitz M, Sutherland MW, Daggard GE (2004) QTLs for black-point resistance in wheat and the identification of potential markers for use in breeding programmes. Plant Breeding 123, 410–416.
Crossref | GoogleScholarGoogle Scholar | open url image1

Li C, Ni P, Francki M, Hunter A, Zhang Y , et al. (2004) Genes controlling seed dormancy and pre-harvest sprouting in a rice-wheat-barley comparison. Functional and Integrative Genomics 4, 84–93.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Li CD, Langridge P, Zhang XQ, Eckstein PE, Rossnagel BG, Lance RCM, Lefol EB, Lu MY, Harvey BL, Scoles GJ (2002) Mapping of barley (Hordeum vulgare L.) beta-amylase alleles in which an amino acid substitution determines beta-amylase isoenzyme type and the level of free beta-amylase. Journal of Cereal Science 35, 39–50.
Crossref | GoogleScholarGoogle Scholar | open url image1

Li CD, Lance RCM, Collins HM, Tarr A, Roumeliotis S , et al. (2003) Quantitative trait loci controlling kernel discoloration in barley (Hordeum vulgare L.). Australian Journal of Agricultural Research 54, 1251–1259.
Crossref | GoogleScholarGoogle Scholar | open url image1

Lynn DG, Chang M (1990) Phenolic signals in cohabitation – implications for plant development. Annual Review of Plant Physiology and Plant Molecular Biology 41, 497–526.
Crossref | GoogleScholarGoogle Scholar | open url image1

Manly K, Cudmore R, Meer J (2001) Map Manager QTX, cross-platform software for genetic mapping. Mammalian Genome 12, 930–932.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

March TJ, Able JA, Schultz CJ, Able AJ (2007) A novel late embryogenesis abundant protein and peroxidase associated with black point in barley grains. Proteomics 7, 3800–3808.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Moffat AS (2000) Genetics – transposons help sculpt a dynamic genome. Science 289, 1455–1457.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Perovic D, Stein N, Zhang H, Drescher A, Prasad M, Kota R, Kopahnke D, Graner A (2004) An integrated approach for comparative mapping in rice and barley with special reference to the Rph16 resistance locus. Functional and Integrative Genomics 4, 74–83.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Rasmussen CB, Dunford HB, Welinder KG (1995) Rate enhancement of compound-I formation of barley peroxidase by ferulic acid, caffeic acid, and coniferyl alcohol. Biochemistry 34, 4022–4029.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Regnier T, Macheix J (1996) Changes in wall bound phenolic acids, phenylalanine and tyrosine ammonia-lyases, and peroxidases in developing durum wheat grains (Triticum turgidum L. var. durum). Journal of Agricultural and Food Chemistry 44, 1727–1730.
Crossref | GoogleScholarGoogle Scholar | open url image1

Rohde W, Dorr S, Salamini F, Becker D (1991) Structure of a chalcone synthase gene from Hordeum vulgare. Plant Molecular Biology 16, 1103–1106.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Shewry PR, Parmar S, Buxton B, Gale MD, Liu CJ, Hejgaard J, Kreis M (1988) Multiple molecular forms of beta-amylase in seeds and vegetative tissues of barley. Planta 176, 127–134.
Crossref | GoogleScholarGoogle Scholar | open url image1

Smith DB, Flavell RB (1975) Characterization of the wheat genome by renaturation kinetics. Chromosoma 50, 223–242.
Crossref | GoogleScholarGoogle Scholar | open url image1

Sparla F, Tedeschi G, Pupillo P, Trost P (1999) Cloning and heterologous expression of NAD(P)H:quinone reductase of Arabidopsis thaliana, a functional homologue of animal DT-diaphorase. FEBS Letters 463, 382–386.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Spitsberg VL, Coscia CJ (1982) Quinone reductases of higher plants. European Journal of Biochemistry 127, 67–70.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Sutton T, Whitford R, Baumann U, Dong C, Able JA, Langridge P (2003) The Ph2 pairing homoeologous locus of wheat Triticum aestivum: identification of candidate meiotic genes using a comparative genetics approach. The Plant Journal 36, 443–456.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Wenzl P, Li HB, Carling J, Zhou MX, Raman H , et al. (2006) A high-density consensus map of barley linking DArT markers to SSR, RFLP and STS loci and agricultural traits. BMC Genomics 7, 206.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Whitaker JR , Chang YL (1996) ‘Enzymatic browning and its prevention.’ (American Chemical Society: Washington DC)

Williamson PM (1997) Black point of wheat: in vitro production of symptoms, enzymes involved, and association with Alternaria alternata. Australian Journal of Agricultural Research 48, 13–19.
Crossref | GoogleScholarGoogle Scholar | open url image1

Willsmore KL, Eckermann P, Varshney RK, Graner A, Langridge P, Pallotta M, Cheong J, Williams KJ (2006) New eSSR and gSSR markers added to Australian barley maps. Australian Journal of Agricultural Research 57, 953–959.
Crossref | GoogleScholarGoogle Scholar | open url image1

Wolfe KH, Gouy ML, Yang YW, Sharp PM, Li WH (1989) Date of the monocot dicot divergence estimated from chloroplast DNA sequence data. Proceedings of the National Academy of Sciences USA 86, 6201–6205.
Crossref | GoogleScholarGoogle Scholar | open url image1