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        <dc:title>Genetic analysis of adaptation differences between highland and lowland tropical maize using molecular markers </dc:title>
        <dc:creator>Jiang, C</dc:creator>
        <dc:creator>Edmeades, G O</dc:creator>
        <dc:creator>Armstead, I</dc:creator>
        <dc:creator>Lafitte, H R</dc:creator>
        <dc:creator>Hayward, M D</dc:creator>
        <dc:creator>Hoisington, D A</dc:creator>
        <dc:subject>Genetics and Genomics</dc:subject>
        <dc:subject>Maize</dc:subject>
        <dc:description>Molecular-marker loci were used to investigate&#13;
the adaptation differences between highland and&#13;
lowland tropical maize. An F2 population from the cross&#13;
of two inbred lines independently derived from highland&#13;
and lowland maize germplasm was developed, and extracted&#13;
F3:4 lines were phenotype in replicated field trials&#13;
at four thermally diverse tropical testing sites, ranging&#13;
from lowland to extreme highland (mean growing season&#13;
temperature range 13.2–24.6°C). Traits closely related&#13;
with adaptation, such as biomass and grain yield, yield&#13;
components, days from sowing to male and female flowering,&#13;
total leaf number, plant height and number of primary&#13;
tassel branches (TBN), were analyzed. A large line&#13;
´ environment interaction was observed for most traits.&#13;
The genetic basis of this interaction was reflected by significant,&#13;
but systematic, changes from lowland to highland&#13;
sites in the correlation between the trait value and&#13;
genomic composition (designated by the proportion of&#13;
marker alleles with the same origin). Joint analysis of&#13;
quantitative trait loci (QTLs) over sites detected 5–8&#13;
QTLs for each trait (except disease scores, with data only&#13;
from one site). With the exception of one QTL for&#13;
TBN, none of these accounted for more than 15% of the&#13;
total phenotypic variation. In total, detected QTLs accounted&#13;
for 24–61% of the variation at each site on average.&#13;
For yield, yield components and disease scores, alleles&#13;
generally favored the site of origin. Highland-derived&#13;
alleles had little effect at lowland sites, while lowland-&#13;
derived alleles showed relatively broader adaptation.&#13;
Gradual changes in the estimated QTL effects with&#13;
increasing mean site temperature were observed, and&#13;
paralleled the observed patterns of adaptation in high land and lowland germplasm. Several clusters of QTLs&#13;
for different traits reflected the relative importance in the&#13;
adaptation differences between the two germplasm types,&#13;
and pleiotropy is suggested as the main cause for the&#13;
clustering. Breeding for broad thermal adaptation should&#13;
be possible by pooling genes showing adaptation to specific&#13;
thermal regimes, though perhaps at the expense of&#13;
reduced progress for adaptation to a specific site. Molecular&#13;
marker-assisted selection would be an ideal tool for&#13;
this task, since it could greatly reduce the linkage drag&#13;
caused by the unintentional transfer of undesirable traits</dc:description>
        <dc:publisher>Springer Verlag</dc:publisher>
        <dc:date>1990</dc:date>
        <dc:type>Article</dc:type>
        <dc:type>PeerReviewed</dc:type>
        <dc:format>application/pdf</dc:format>
        <dc:language>en</dc:language>
        <dc:identifier>http://oar.icrisat.org/5747/1/TheorApplGenet_99_1106%E2%80%931119_1999.pdf</dc:identifier>
        <dc:identifier>  Jiang, C and Edmeades, G O and Armstead, I and Lafitte, H R and Hayward, M D and Hoisington, D A  (1990) Genetic analysis of adaptation differences between highland and lowland tropical maize using molecular markers.  TAG Theoretical and Applied Genetics, 99 (7-8).  pp. 1106-1119.  ISSN 1432-2242     </dc:identifier>
        <dc:relation>http://dx.doi.org/10.1007/s001220051315 </dc:relation></oai_dc:dc>
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