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排序方式: 共有105条查询结果,搜索用时 15 毫秒
21.
Steven E. Ullrich Janet A. Clancy Isabel A. del Blanco Hyejin Lee Vadim A. Jitkov Feng Han Andris Kleinhofs Kunihiko Matsui 《Molecular breeding : new strategies in plant improvement》2008,21(2):249-259
Preharvest sprouting (PHS) can be a problem in barley (Hordeum vulgare L.) especially malting barley, since rapid, uniform, and complete germination are critical. Information has been gained by
studying the genetics of dormancy (measured as germination percentage, GP). The objective of this study was to determine if
the quantitative trait loci (QTLs) discovered in previous research on dormancy are related to PHS. PHS was measured as sprout
score (SSc) based on visual sprouting in mist chamber-treated spikes and as alpha-amylase activity (AA) in kernels taken from
mist chamber-treated spikes that showed little or no visible sprouting. GP was also measured. All traits were measured at
0 and 14 days after physiological maturity. Evaluation of the spring six-row cross, Steptoe (dormant)/Morex (non-dormant)
doubled haploid mapping population grown in greenhouse and field environments revealed QTL regions for SSc, AA, and GP on
five, four, and six of the seven barley chromosomes, respectively. In total, seven and eight regions on five and six chromosomes
had effects ranging from 4 to 31% and 3 to 39% on PHS and dormancy, respectively. One chromosome 3H and three chromosome 5H
QTLs had the greatest effects. All PHS QTLs coincide with known dormancy QTLs, but some QTLs appear to be more important for
PHS than for dormancy. Key QTLs identified should benefit breeding of barley for a suitable balance between PHS and dormancy. 相似文献
22.
Tom Drader Kara Johnson Robert Brueggeman Dave Kudrna Andris Kleinhofs 《TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik》2009,118(4):811-820
Approaches utilizing microlinearity between related species allow for the identification of syntenous regions and orthologous
genes. Within the barley Chromosome 7H(1) is a region of high recombination flanked by molecular markers cMWG703 and MWG836.
We present the constructed physical contigs linked to molecular markers across this region using bacterial artificial chromosomes
(BAC) from the cultivar Morex. Barley expressed sequence tags (EST), identified by homology to rice chromosome 6 between the
rice molecular markers C425A and S1434, corresponded to the barley syntenous region of Chromosome 7H(1) Bins 2–5 between molecular
markers cMWG703-MWG836. Two hundred and thirteen ESTs were genetically mapped yielding 267 loci of which 101 were within the
target high recombination region while 166 loci mapped elsewhere. The 101 loci were joined by 43 other genetic markers resulting
in a highly saturated genetic map. In order to develop a physical map of the region, ESTs and all other molecular markers
were used to identify Morex BAC clones. Seventy-four BAC contigs were formed containing 2–102 clones each with an average
of 19 and a median of 13 BAC clones per contig. Comparison of the BAC contigs, generated here, with the Barley Physical Mapping
Database contigs, resulted in additional overlaps and a reduction of the contig number to 56. Within cMWG703-MWG836 are 24
agriculturally important traits including the seedling spot blotch resistance locus, Rcs5. Genetic and physical analysis of this region and comparison to rice indicated an inversion distal of the Rcs5 locus. Three BAC clone contigs spanning the Rcs5 locus were identified.
Electronic supplementary material The online version of this article (doi:) contains supplementary material, which is available to authorized users. 相似文献
23.
L. A. Marquez-Cedillo P. M. Hayes B. L. Jones A. Kleinhofs W. G. Legge B. G. Rossnagel K. Sato S. E. Ullrich D. M. Wesenberg North American Barley Genome Mapping Project 《TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik》2000,101(1-2):173-184
Characterization of the determinants of economically important phenotypes showing complex inheritance should lead to the more
effective use of genetic resources. This study was conducted to determine the number, genome location and effects of QTLs
determining malting quality in the two North American barley quality standards. Using a doubled-haploid population of 140
lines from the cross of Harrington×Morex, malting quality phenotype data sets from eight environments, and a 107-marker linkage
map, QTL analyses were performed using simple interval mapping and simplified composite interval mapping procedures. Seventeen
QTLs were associated with seven grain and malting quality traits (percentage of plump kernels, test weight, grain protein
percentage, soluble/total protein ratio, α-amylase activity, diastatic power and malt-extract percentage). QTLs for multiple
traits were coincident. The loci controlling inflorescence type [vrs1 on chromosome 2(2H) and int-c on chromosome 4(4H)] were coincident with QTLs affecting all traits except malt-extract percentage. The largest effect QTLs,
for the percentage of plump kernels, test weight protein percentage, S/T ratio and diastatic power, were coincident with the
vrs1 locus. QTL analyses were conducted separately for each sub-population (six-rowed and two-rowed). Eleven new QTLs were detected
in the subpopulations. There were significant interactions between the vrs1 and int-c loci for grain-protein percentage and S/T protein ratio. Results suggest that this mating of two different germplasm groups
caused a disruption of the balance of traits. Information on the number, position and effects of QTLs determining components
of malting quality may be useful for maintaining specific allele configurations that determine target quality profiles.
Received: 28 May 1999 / Accepted: 9 November 1999 相似文献
24.
Genetic Map of Diploid Wheat, Triticum Monococcum L., and Its Comparison with Maps of Hordeum Vulgare L 总被引:6,自引:0,他引:6 下载免费PDF全文
J. Dubcovsky M. C. Luo G. Y. Zhong R. Bransteitter A. Desai A. Kilian A. Kleinhofs J. Dvorak 《Genetics》1996,143(2):983-999
A genetic map of diploid wheat, Triticum monococcum L., involving 335 markers, including RFLP DNA markers, isozymes, seed storage proteins, rRNA, and morphological loci, is reported. T. monococcum and barley linkage groups are remarkably conserved. They differ by a reciprocal translocation involving the long arms of chromosomes 4 and 5, and paracentric inversions in the long arm of chromosomes 1 and 4; the latter is in a segment of chromosome arm 4L translocated to 5L in T. monococcum. The order of the markers in the inverted segments in the T. monococcum genome is the same as in the B and D genomes of T. aestivum L. The T. monococcum map differs from the barley maps in the distribution of recombination within chromosomes. The major 5S rRNA loci were mapped on the short arms of T. monococcum chromosomes 1 and 5 and the long arms of barley chromosomes 2 and 3. Since these chromosome arms are colinear, the major 5S rRNA loci must be subjected to positional changes in the evolving Triticeae genome that do not perturb chromosome colinearity. The positional changes of the major 5S rRNA loci in Triticeae genomes are analogous to those of the 18S-5.8S-26S rRNA loci. 相似文献
25.
The NADH-specific and NAD(P)H-bispecific nitrate reductase genes from barley have been cloned and sequenced. To determine if the Nar7 locus encodes the NAD(P)H-bispecific nitrate reductase structural gene, a cross was made between a wild-type cultivar, Morex (Nar7 Nar7), and Az70 (nar7w nar7w), a mutant from the cultivar Steptoe that is deficient in NAD(P)H-bispecific nitrate reductase activity. A probe specific to the NAD(P)H-bispecific nitrate reductase structural gene detected restriction fragment length polymorphism between the parents. This probe was used to classify selected F2 progeny for restriction fragment length genotype. All the NAD(P)H nitrate reductase deficient F2 progeny (24/101) possessed the Az70 restriction fragment genotype. The absence of recombination between the NAD(P)H-bispecific nitrate reductase deficient genotype and the NAD(P)H-bispecific nitrate reductase restriction fragment length genotype indicates that the two traits are closely associated in inheritance and that Nar7 is probably the NAD(P)H-bispecific nitrate reductase structural gene. 相似文献
26.
Towards map-based cloning of the barley stem rust resistance genes Rpg1 and rpg4 using rice as an intergenomic cloning vehicle 总被引:3,自引:0,他引:3
The barley stem rust resistance genes Rpg1 and rpg4 were mapped in barley on chromosomes 1P and 7M, respectively and the syntenous rice chromosomes identified as 6P and 3P by mapping common probes in barley and rice. Rice yeast artificial chromosome (YAC), bacterial artificial chromosome (BAC) and cosmid clones were used to isolate probes mapping to the barley Rpg1 region. The rice BAC isolated with the pM13 probe was a particularly excellent source of probes. A high-resolution map of the Rpg1 region was established with 1400 gametes yielding a map density of 3.6 markers per 0.1 cM. A detailed physical map was established for the rice BAC fragment containing the Rpg1-flanking markers pM13 and B24. This fragment covers a barley genetic distance of 0.6 cM and a rice DNA physical distance of ca. 70 kb. The distribution of barley cross-overs in relation to the rice DNA physical distances was extremely uneven. The barley genetic distance between the pM13 marker and Rpg1 was 0.1 cM per ca. 55 kb, while on the proximal side it was 0.5 cm per ca. 15 kb. Three probes from the distal end of the pM13 BAC mapped 3.0 cm proximal of Rpg1 and out of synteny with rice. These experiments confirm the validity of using large insert rice clones as probe sources to saturate small barley (and other large genome cereals) genome regions with markers. They also establish a note of caution that even in regions of high microsynteny, there may be small DNA fragments that have transposed and are no longer in syntenous positions. 相似文献
27.
R. L. Warner K. R. Narayanan A. Kleinhofs 《TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik》1987,74(6):714-717
Summary NADH-specific and NAD(P)H bispecific nitrate reductases are present in barley (Hordeum vulgare L.). Wild-type leaves have only the NADH-specific enzyme while mutants with defects in the NADH nitrate reductase structural gene (nar1) have the NAD(P)H bispecific enzyme. A mutant deficient in the NAD(P)H nitrate reductase was isolated in a line (nar1a) deficient in the NADH nitrate reductase structural gene. The double mutant (nar1a;nar7w) lacks NAD(P)H nitrate reductase activity and has xanthine dehydrogenase and nitrite reductase activities similar to nar1a. NAD(P)H nitrate reductase activity in this mutant is controlled by a single codominant gene designated nar7. The nar7 locus appears to be the NAD(P)H nitrate reductase structural gene and is not closely linked to nar1. From segregating progeny of a cross between the wild type and nar1a;nar7w, a line was obtained which has the same NADH nitrate reductase activity as the wild type in both the roots and leaves but lacks NADPH nitrate reductase activity in the roots. This line is assumed to have the genotype Nar1Nar1nar7nar7. Roots of wild type seedlings have both nitrate reductases as shown by differential inactivation of the NADH and NAD(P)H nitrate reductases by a monospecific NADH-nitrate reductase antiserum. Thus, nar7 controls the NAD(P)H nitrate reductase in roots and in leaves of barley.Scientific Paper No. 7617, College of Agriculture Research Center and Home Economics, Washington State University, Pullman, WA, USA. Project Nos. 0233 and 0745 相似文献
28.
Somers D. A. Narayanan K. R. Kleinhofs A. Cooper-Bland S. Cocking E. C. 《Molecular genetics and genomics : MGG》1986,204(2):296-301
Molecular Genetics and Genomics - A protoplast fusion experiment was designed in which the selectable marker, nitrate reductase (NR), also served as a biochemical marker to provide direct evidence... 相似文献
29.
Summary Ten nitrate reductase-deficient Hordeum vulgare mutants were characterized for NADH and FMNH2 nitrate reductase (NR), cytochrome C reductase (CR) and nitrite reductase (NiR) activities. The mutants sort into four major groups. Group I represented by mutants Az 12, Az 23, Az 29 and Az 30 have low Nr and Cr activities. Group II represented by mutants Az 13, Az 31, Az 33 and Az 34 have low NR activities but intermediate CR activities. Group III represented by mutant Az 28 has low NR activity, but above normal CR activity. Group IV represented by Az 32 has low NADH-NR, low CR, but above normal FMNH2-NR activity. All ten mutants have elevated NiR activities. None of the ten mutants were constitutive for nitrite reductase activity. Only Az 34 showed a definite high temperature sensitivity when the NADH nitrate reductase activity was compared in the 12 to 26° C range. The mutants Az 12, Az 13, Az 23, Az 28, Az 29, Az 30, Az 31, Az 32 and Az 33 are allelic and were assigned the locus designation nar1. Mutant Az 34 represents a different genetic locus designated nar2. The nar1 gene is codominant and the nar2 gene is recessive.Scientific Paper No. 5463. College of Agriculture Research Center, Washington State University, Pullman, Project Nos. 0233 and 0430. Supported in part by National Science Foundation Grants PCM 78-07649 and PCM 78-16025 相似文献
30.