Identification of molecular markers linked to resistance quantitative trait loci (QTL) to common bacterial blight in dry bean
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North-West University (South Africa)
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Abstract
Common bacterial blight (CBB) is a major disease limiting dry bean production in
South Africa. All locally grown commercial cultivars are susceptible to the disease
and improvement of the cultivars, by introducing stable resistance, is important. Two
resistance sources, GN Nebr.#1 sel 27 and XAN 159 each contribute 2 independent
quantitative trait loci (QTL) with major effects on CBB resistance. Sequence
characterized amplified region (SCAR) markers linked to these four QTL are
available for DNA marker-assisted breed ing (Miklas et al., 2000). Wilk 2 has shown
better resistance in greenhouse trials when tested against the other available
resistant cultivars. The aim of this study was to determine if there is an additional
resistance QTL present in Wilk 2 and to develop flanking markers if possible. The
AFLP technique was employed as a molecular tool to identify markers linked to CBB
resistance. Twenty primer pair combinations of the EcoRI/Msel-AFLP approach were
screened. Seventy-nine putative markers were identified, tested on the segregating
population and mapped using MAPMAKER-EXP along with the four available
SCARs. One linkage group was obtained with two major and one minor QTL
identified. The highest linkages to the resistance trait obtained through
STATGRAPHICS were 81 .17% and 76.16%. The available SCARs showed a lower
linkage than expected (BC 420 58.44% to SAP 6 5.84%). Six markers were selected
for further development of new SCARs. Polymorphic SCAR markers explained
between 15.03 to 71.16% of the phenotypic variation for CBB resistance. The SCAR
markers developed can be used for MAS, with SN 3-400 (E-AAC/M-CTC 2) being
able to distinguish between the homozygotic and heterozygotic progeny, SN 2A-600
(E-AAC/M-CAT 3) and SN 3-300 (E-AAC/M-CTC 2) for selecting for the homozygous
resistant plants, which could be highly efficient in a segregating population. The
SCAR SN 1-1 (E-AAC/M-CAT 2) was unique to Wilk 2 and can be used in breeding
programmes for pyramiding of CBB resistance genes.
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MSc (Botany), North-West University, Potchefstroom Campus
