Статья: Современные методы геномного анализа в исследованиях генетики количе-ственных признаков у растений

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O'B r i e n S.J. Genetic maps. Locus maps of complex genomes. Cold Spring Harbor Laboratory. N.Y., 1993.
H a y e s P.M., J o n e s B.L. Malting quality from a QTL perspective. In: 8th International Barley Genetics Symposium. Adelaide, South Australia, 2000, 8: 99-105.
K l e i n h o f s A., K i l i a n A., S a g h a i M. e.a. A molecular, isozyme and morphological map of the barley (Hordeum vulgare) genome. Theor. Appl. Genet., 1993, 86: 705-712.
Д р а г а в ц е в В.А., Л и т у н П.П., Ш к е л ь Н.М. и др. Модель эколого-генетического контроля количественных признаков растений. Докл. АН СССР, 1984, 274(3): 720-773.
P a t e r s o n A.H., D a m o n S., H e w i t t J.D. e.a. Mendelian factors underlying quantitative traits in tomato: comparison across species, generations, and environments. Genetics, 1991, 127(1): 181-197.
T a n k s l e y S.D. Mapping polygenes. Ann. Rev. Genet., 1993, 27: 205-233.
S a x K. The association of size differences with seed coat pattern and pigmentation in Phaseolus vulgaris L. Genetics, 1923, 8: 552-560.
T h o d a y J.M. Location of polygenes. Nature, 1961, 191: 368-370.
H u n t e r R.L., M a r k e r t C.L. Histochemical demonstration of enzymes separated by zone electrophoresis in starch gels. Science, 1957, 125: 1294-1295.
К о н а р е в В.Г. Белки растений как генетические маркеры. М., 1983.
L e w o n t i n R.C., H u b b y J.L. A molecular approach to the study of genetic heterozygosity in natural populations. Amount of variation and degree of heterozygosity in natural populations of Drosophila pseudoobscura. Genetics, 1966, 54: 595-609.
Z h u c h e n k o A.A., S a m o v o l A.P., K o r o l A.B. e.a. Linkage between loci of quantitative characters and marker loci. 2. Influence of three tomato chromosomes on variability of five quantitative characters in backcross progenies. Genetika, 1979, 15: 672-683.
T a n k s l e y S.D., R i c k C.M. Isozymic gene linkage map of the tomat: applications in genetics and breeding. Theor. Appl. Genet., 1980, 57: 161-170.
T a n k s l e y S.D., M e d i n a - F i l h o H., R i c k C.M. Use of naturally-occurring enzyme variation to detect and map genes controlling quantitative traits in an interspecific backcross of tomato. Heredity, 1982, 49: 11-25.
B u r r B., B u r r F.A. Recombinant inbreds for molecular mapping in maize: theoretical and practical considerations. Trends Genetics, 1991, 7: 55-60.
H a y e s P.M., L i u B.H., K n a p p S.J. e.a. Quantitative trait locus effects and environmental interaction in a sample of North American barley germplasm. Theor. Appl. Genet., 1993, 87: 392-401.
M o r t o n N.E. Sequential test for the detection of linkage. Am. J. Hum. Genetics, 1955, 7: 277-318.
L i u B.H. Statistical genomics: linkage, mapping, and QTL analysis. London, N.Y., Washington, 1998.
Y a n o M., S a s a k i T. Genetic and molecular dissection of quantitative traits in rice. Plant Molecular Biology, 1997, 35: 145-153.
K e a r s e y M.J., F a r q u h a r A.G. QTL analysis in plants: where are we now? Heredity, 1998, 80: 137-142.
S t u b e r C. Breeding multigenic traits /Eds. R.L. Phillips, I.K. Vasil. DNA-based markers in plants. Dordrecht, The Netherlands, 2001: 115-137.
E d w a r d s M., J o h n s o n L. RFLPs for rapid recurrent selection. Proc. of Symposium on Analysis of Molecular Marker Data. Am. Soc. Hort. Sci. and Crop Sci. Soc. Am. Corvallis, OR, 1994: 33-40.
P a t e r s o n A.H. Molecular dissection of quantitative traits: progress and prospects. Genome Res., 1995, 5: 321-333.
F r a r y A., N e s b i t t T., G r a n d i l l o S. e.a. Fw2.2: a quantitative trait locus key to the evolution of tomato fruit size. Science, 2000, 289: 85-88.
A l p e r t K.B., T a n k s l e y S.D. High-resolution mapping and isolation of a yeast artificial chromosome contig containing fw2.2: a major fruit weight quantitative trait locus in tomato. Proc. Natl. Acad. Sci. USA, 1996, 93: 15503-15507.
M o r g a n t e M., S a l a m i n i F. From plant genomics to breeding practice. Current Opinion in Biotechnology, 2003, 14: 214-219.
F r i d m a n E., P l e b a n T., Z a m i r D. A recombination hotspot delimits a wild-species quantitative trait locus for tomato sugar content to 484 bp within an invertase gene. Proc. Natl. Acad. Sci. USA, 2000, 97(9): 4718-4723.

L i u J., V a n E c k J., C o n g B. e.a. A new class of regulatory genes underlying the cause of pear-shaped tomato fruit. Proc. Natl. Acad. Sci. USA, 2002, 99(20): 13302-13306.

Y a n o M., K a t a y o s e Y., A s h i k a r i M. e.a. Hd1, a major photoperiod sensitivity quantitative trait locus in rice, is closely related to the Arabidopsis flowering time gene CONSTANS. Plant Cell, 2000, 12(12): 2473-2484.

T a k a h a s h i Y., S h o m u r a A., S a s a k i T. e.a. Hd6, a rice quantitative trait locus involved in photoperiod sensitivity, encodes the alpha subunit of protein kinase CK2. Proc. Natl. Acad. Sci. USA, 2001, 98(14): 7922-7927.

K o j i m a S., T a k a h a s h i Y., K o b a y a s h i Y. e.a. Hd3a, a rice ortholog of the Arabidopsis FT gene, promotes transition to flowering downstream of Hd1 under short-day conditions. Plant Cell Physiol., 2002, 43(10): 1096-1105.

D o e b l e y J., S t e c A., H u b b a r d L. The evolution of apical dominance in maize. Nature, 1997, 386(6624): 485-488.

E l - D i n E l - A s s a l S., A l o n s o - B l a n c o C., P e e t e r s A.J. e.a. A QTL for flowering time in Arabidopsis reveals a novel allele of CRY2. Nat. Genet., 2001, 29(4): 435-440.