journal article Dec 01, 1985

The incorporation and characterization of powdery mildew resistance from Aegilops longissima in common wheat (T. aestivum L.)

View at Publisher Save 10.1007/bf00251198
Topics

No keywords indexed for this article. Browse by subject →

References
29
[1]
Aslam M, Schwarzbach E (1980) An inoculation technique for quantitative studies of brown rust resistance in barley. Phytopathol Z 99:87–91 10.1111/j.1439-0434.1980.tb03764.x
[2]
Bennett FGA (1984) Resistance to powdery mildew in wheat; a review of its use in agriculture and breeding programmes. Plant Pathol 33:279–300 10.1111/j.1365-3059.1984.tb01324.x
[3]
Bergman JW (1972) Chromosome locations of genes controlling esterase and malate dehydrogenase isozymes in Triticum. PhD Dissertation, North Dakota State University, USA
[4]
Ceoloni C (1983) Triticum longissimum chromosome G ditelosomic addition lines: production, characterization and utilization. In: Proc 6th Int Wheat Genet Symp. Kyoto, Japan, pp 1025–1031
[5]
Ceoloni C, Galili G (1984) Chromosome arm location and mode of expression of a phosphodiesterase gene from diploid wheat Triticum longissimum. Cereal Res Commun 10:151–157
[6]
Driscoll CJ (1968) Alien transfer by irradiation and meiotic control. In: Finlay KW, Shepard KW (eds) Proc 3rd Int Wheat Genet Symp, Aust Acad Sci. Plenum Press, New York, pp 196–203
[7]
Hart GE (1975) Glutamate oxaloacetate transaminase isozymes of Triticum: evidence for multiple systems of triplicate structural genes. In: Markert CL (ed) Isozymes, vol III. Academic Press, New York, pp 637–657 10.1016/b978-0-12-472703-8.50044-5
[8]
Hart GE, Tuleen NA (1983) Characterizing and selecting alien genetic material in derivatives of wheat-alien species hybrids by analyses of isozymes variation. In: Proc 6th Int Wheat Genet Symp. Kyoto, Japan, pp 377–385
[9]
Horsfall JG, Barratt RW (1945) An improved grading system for measuring plant disease. Phytopathology 35:655
[10]
Johnson R (1983) Genetic background of durable resistance. In: Lamberti F, Waller JM, Van der Graaf NA (eds) Durable resistance in crops. Plenum Press, New York, pp 5–26 10.1007/978-1-4615-9305-8_2
[11]
Johnson R (1984) A critical analysis of durable resistance. Annu Rev Phytopathol 22:309–330 10.1146/annurev.py.22.090184.001521
[12]
Knott DR (1983) Studies on stem and leaf rust resistance in wheat. In: Induced mutations for disease resistance in crop plants II. IAEA, Vienna, pp 95–99
[13]
Kranz J (1983) Epidemiological parameters of plant resistance. In: Lamberti F, Waller JM, Van der Graaf NA (eds) Durable resistance in crops. Plenum Press, New York, pp 141–161 10.1007/978-1-4615-9305-8_13
[14]
Leonard KJ, Mundt CC (1984) Methods for estimating epidemiological effects of quantitative resistance to plant diseases. Theor Appl Genet 67:219–230 10.1007/bf00317041
[15]
Martin TJ, Ellingboe AH (1976) Differences between compatible parasite/host genotypes involving the Pm4 locus of wheat and the corresponding genes in Erysiphe graminis f. sp. tritici. Phytopathology 66:1435–1438 10.1094/phyto-66-1435
[16]
Nover I (1972) Untersuchungen mit einer für den Resistenzträger „Lyallpur 3645” virulenten Rasse von Erysiphe graminis DC. f. sp. hordei Marchal. Arch Pflanzenschutz 8:439–445 10.1080/03235407209431821
[17]
Parlevliet JE (1979) Components of resistance that reduce the rate of epidemic development. Annu Rev Phytopathol 17:203–222 10.1146/annurev.py.17.090179.001223
[18]
Parlevliet JE (1983) Race-specific resistance and cultivarspecific virulence in the barley — leaf rust pathosystem and their consequences for the breeding of leaf rust resistant barley. Euphytica 32:367–375 10.1007/bf00021445
[19]
Pietro ME, Hart GE (1982) Genetic control of triosephosphate isomerase in hexaploid wheat. In: 4th Int Congr Isozymes, Abstr, p 22
[20]
Riley R, Chapman V (1964) Cytological determination of the homoeology of chromosomes of Triticum aestivum. Nature 203:156–158 10.1038/203156a0
[21]
Röbbelen G (1978) Veränderte Strategien der Resistenzzüchtung aus neuen Erkenntnissen über botanische Pathosysteme. Angew Bot 52:97–105
[22]
Rouse DJ, Nelson RR, MacKenzie DR, Arnitage CR (1980) Components of rate-reducing resistance in seedlings of four wheat cultivars and parasitic fitness in six isolates of Erysiphe graminis f. sp. tritici. Phytopathology 70:1097–1100 10.1094/phyto-70-1097
[23]
Royer MH, Nelson RR, MacKenzie DR, Diehle DA (1984) Partial resistance of near-isogenic wheat lines compatible with Erysiphe graminis f. sp. tritici. Phytopathology 74:1001–1006 10.1094/phyto-74-1001
[24]
Sears ER (1977) An induced mutant with homoeologous pairing in common wheat. Can J Genet Cytol 19:585–593 10.1139/g77-063
[25]
Shaner G (1973) Reduced infectability and inoculum production as factors of slow mildewing in Knox wheat. Phytopathology 63:1307–1311 10.1094/phyto-63-1307
[26]
Steel RGD, Torrie JH (1960) Principles and procedures of statistics. McGraw-Hill Book Company, New York Toronto London
[27]
Weber E (1980) Grundriß der biologischen Statistik. Fischer, Stuttgart New York
[28]
Wolf G, Rimpau J, Lelley T (1977) Localization of structural and regulatory genes for phosphodiesterase in wheat (Triticum aestivum). Genetics 86:597–605 10.1093/genetics/86.3.597
[29]
Wolfe MS (1981) Integrated use of fungicides and host resistance for stable disease control. Philos Trans R Soc London, Ser B 295:175–184 10.1098/rstb.1981.0131
Metrics
10
Citations
29
References
Details
Published
Dec 01, 1985
Vol/Issue
71(3)
Pages
513-517
License
View
Cite This Article
F. J. Zeller, M. Heun (1985). The incorporation and characterization of powdery mildew resistance from Aegilops longissima in common wheat (T. aestivum L.). Theoretical and Applied Genetics, 71(3), 513-517. https://doi.org/10.1007/bf00251198