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marker-assisted selection in wheat

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Chapter 14 – Marker-<strong>assisted</strong> <strong>selection</strong> <strong>in</strong> Eucalyptus 281Thamarus, K.A., Groom, K., Murrell, J., Byrne, M. & Moran, G. 2002. A genetic l<strong>in</strong>kage map forEucalyptus globulus with candidate loci for wood, fibre and floral traits. Theor. Appl. Genet. 104:379–387.Thamarus, K.A., Groom, K., Bradley, A., Raymond, C.A., Schimleck, L.R., Williams, E.R. &Moran, G.F. 2004. Identification of quantitative trait loci for wood and fibre properties <strong>in</strong> two fullsibpedigrees of Eucalyptus globulus. Theor. Appl. Genet. 109: 856–864.Thumma, R.F., Nolan, M.F., Evans, R. & Moran, G.F. 2005. Polymorphisms <strong>in</strong> c<strong>in</strong>namoyl CoAreductase (CCR) are associated with variation <strong>in</strong> microfibril angle <strong>in</strong> Eucalyptus spp. Genetics 171:1257–1265.Turnbull, J.W. 1999. Eucalypt plantations. New Forests 17: 37–52.Vaillancourt, R.E., Potts, B.M., Watson, M., Volker, P.W., Hodge, G.R., Reid, J.B. & West, A.K.1995a. Prediction of heterosis us<strong>in</strong>g RAPD generated distances between Eucalyptus globulus trees.In Proc. CRCTHF-IUFRO Conf. Eucalypt Plantations: Improv<strong>in</strong>g Fibre Yield and Quality, pp.455–456. 19–24 February 1995, Hobart, Australia(available at www.forestry.crc.org.au/iufro95.htm).Vaillancourt, R.E., Potts, B.M., Manson, A., Eldridge, T. & Reid, J.B. 1995b Us<strong>in</strong>g RAPD’sto detect QTLs <strong>in</strong> an <strong>in</strong>terspecific F 2 hybrid of Eucalyptus. In Proc. CRCTHF-IUFRO Conf.Eucalypt Plantations: Improv<strong>in</strong>g Fibre Yield and Quality, pp. 430–433. 19–24 February 1995,Hobart, Australia (available at www.forestry.crc.org.au/iufro95.htm).Verhaegen, D. & Plomion, C. 1996. Genetic mapp<strong>in</strong>g <strong>in</strong> Eucalyptus urophylla and E grandis. RAPD<strong>marker</strong>s. Genome 39: 1051–1061.Verhaegen, D., Plomion, C., Gion, J.M., Poitel, M., Costa, P. & Kremer, A. 1997. Quantitative traitdissection analysis <strong>in</strong> Eucalyptus us<strong>in</strong>g RAPD <strong>marker</strong>s. 1. Detection of QTL <strong>in</strong> <strong>in</strong>terspecific hybridprogeny, stability of QTL expression across different ages. Theor. Appl.Genet. 95: 597–608.Waugh, G. 2004. Grow<strong>in</strong>g Eucalyptus globulus for high-quality sawn products. In M. Tomé, ed.Eucalyptus <strong>in</strong> a chang<strong>in</strong>g world, pp. 79–84. Aveiro, Portugal, Instituto Investigação de Floresta ePapel (RAIZ).West, M.A., van Leeuwen, H., Kozik, A., Kliebenste<strong>in</strong>, D.J., Doerge, R.W., St Clair, D.A. &Michelmore, R.W. 2006. High-density haplotyp<strong>in</strong>g with microarray-based expression and s<strong>in</strong>glefeature polymorphism <strong>marker</strong>s <strong>in</strong> Arabidopsis. Genome Res. 16: 787–795.Young, N.D. 1999. A cautiously optimistic view for <strong>marker</strong>-<strong>assisted</strong> <strong>selection</strong>. Mol. Breed. 5:505–510.Zelener, N., Poltri, S.N., Bartoloni, N., Lopez, C.R. & Hopp, H.E. 2005. Selection strategy for aseedl<strong>in</strong>g seed orchard design based on trait <strong>selection</strong> <strong>in</strong>dex and genomic analysis by molecular<strong>marker</strong>s: a case study for Eucalyptus dunnii. Tree Physiol. 25: 1457–1467.

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