1932

Abstract

Cereal rusts, caused by obligate and biotrophic fungi in the genus , are important diseases that threaten world food security. With the recent discovery of alternate hosts for the stripe rust fungus (), all cereal rust fungi are now known to be heteroecious, requiring two distinct plant species serving as primary or alternate hosts to complete their sexual life cycle. The roles of the alternate hosts in disease epidemiology and pathogen variation vary greatly from species to species and from region to region because of different climatic and cropping conditions. We focus this review on rust fungi of small grains, mainly stripe rust, stem rust, leaf rust, and crown rust of wheat, barley, oat, rye, and triticale, with emphases on the contributions of alternate hosts to the development and management of rust diseases.

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2016-08-04
2024-03-28
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Literature Cited

  1. Alexopoulos CJ, Mims CW. 1.  1979. Introductory Mycology New York: John Wiley & Sons, 3rd ed..
  2. Ali S, Gladieux P, Rahman H, Saqib MS, Fiaz M. 2.  et al. 2014. Inferring the contribution of sexual reproduction, migration and off-season survival to the temporal maintenance of microbial populations: a case study on the wheat fungal pathogen Puccinia striiformis f. sp. tritici Mol. Ecol. 23:603–17 [Google Scholar]
  3. Ali S, Leconte M, Walker A-S, Enjalbert J, de Vallavieille-Pope C. 3.  2010. Reduction in the sex ability of worldwide clonal populations of Puccinia striiformis f. sp. tritici Fungal Genet. Biol. 47:828–38 [Google Scholar]
  4. Al-Kherb SM, Roelfs AP, Groth VJ. 4.  1987. Diversity for virulence in a sexually reproducing population of Puccinia coronata. Can. J. Bot. 65:994–98 [Google Scholar]
  5. Allen JD. 5.  1961. Wheat rusts in New Zealand. N. Z. Wheat Rev. 8:27–31 [Google Scholar]
  6. Allen PJ. 6.  1976. Control of spore germination and infection structure formation in the fungi. Encycl. Plant Physiol. New Ser. 4:51–85 [Google Scholar]
  7. Anikster Y. 7.  1982. Alternate hosts of Puccinia hordei. Phytopathology 72:733–35 [Google Scholar]
  8. Anikster Y. 8.  1983. Binucleate basidiospores: a general rule in rust fungi. Trans. Br. Mycol. Soc. 81:624–26 [Google Scholar]
  9. Anikster Y. 9.  1986. Teliospore germination in some rust fungi. Phytopathology 76:1026–30 [Google Scholar]
  10. Anikster Y, Bushnell WR, Eilam T, Manisterski J, Roelfs AP. 10.  1997. Puccinia recondita causing leaf rust on cultivated wheats, wild wheats, and rye. Can. J. Bot. 75:2082–96 [Google Scholar]
  11. Arthur JC. 11.  1925. The grass rusts of South America; based on the Holway collections. Proc. Am. Philos. Soc. 64:131–223 [Google Scholar]
  12. Arthur JC. 12.  1934. Manual of the Rusts in the United States and Canada New York: Hafner, 1962 ed..
  13. Azbukina Z. 13.  1980. Economic importance of aecial hosts of rust fungi of cereals in the Soviet Far East. Proc. Eur. Mediterr. Cereal Rusts Conf., 5th, Bari and Rome, Italy, 28 May–4 June, 1980, Instituto di Patologia Vegetale, Bari, Italy199–201 [Google Scholar]
  14. Barnes CW, Szabo LJ. 14.  2007. Detection and identification of four common rust pathogens of cereals and grasses using real-time polymerase chain reaction. Phytopathology 97:717–27 [Google Scholar]
  15. Bartoš P, Stuchlíková E, Hanušová R. 15.  1996. Adaptation of wheat rusts to the wheat cultivars in former Czechoslovakia. Euphytica 92:95–103 [Google Scholar]
  16. Beresford RM. 16.  1982. Stripe rust (Puccinia striiformis), a new disease of wheat in New Zealand. Cereal Rusts Bull. 10:35–41 [Google Scholar]
  17. Berlin A, Djurle A, Samils B, Yuen J. 17.  2012. Genetic variation in Puccinia graminis collected from oats, rye, and barberry. Phytopathology 102:1006–12 [Google Scholar]
  18. Berlin A, Rahmatov M, Muminjanov H, Yuen J. 18.  2015. Sexual population contributes to genotypic variation in the population of Puccinia graminis in Tajikistan. Eur. J. Plant Pathol. 141:159–68 [Google Scholar]
  19. Berlin A, Samils B, Djurle A, Wirsen H, Szabo L, Yuen J. 19.  2013. Disease development and genotypic diversity of Puccinia graminis f. sp. avenae in Swedish oat fields. Plant Pathol. 62:32–40 [Google Scholar]
  20. Biali M, Dinoor A. 20.  1972. Genetics of virulence in Puccinia coronata. Proc. Eur. Mediterr. Cereal Rusts Conf., 3rd, Phraha, Czechoslovakia, 17–22 July, Research Institute of Crop Protection, Praha, Czechoslovakia103–8 [Google Scholar]
  21. Brizgalova VA. 21.  1935. Brown rust of wheat under conditions of the Irkutsk-Nizhniyeudinsk zone of the East Siberian District. Trudy po Zashch. Rast. V. Sib. No. 2:99–174 [Google Scholar]
  22. Brizgalova VA. 22.  1937. On a new intermediate host of brown rust of wheat, Puccinia triticina Erikss. Sbornik Trudov Zashch. Rast. Vostochn. Sibiri 5:75–87 [Google Scholar]
  23. Brown AM, Johnson T. 23.  1949. Studies on variation in pathogenicity in leaf rust of wheat, Puccinia triticina Erikss. Can. J. Res. C 27:191–202 [Google Scholar]
  24. Buchwald K. 24.  1951. Wald-und Forstgesellschaften der Revierförsterei Diensthoop, Forstamt Syke b. Bremen. Zentralstelle für Vegetationskartierung, Stolzenau, Germany 72 [Google Scholar]
  25. Bushnell WR, Roelfs AP. 25.  1984. The Cereal Rusts Vol. I, Origins, Specificity, Structure, and Physiology. Orlando, FL: Academic [Google Scholar]
  26. Carson ML. 26.  2008. Virulence frequencies in oat crown rust in the United States from 2001 through 2009. Plant Dis. 92:381–84 [Google Scholar]
  27. Carson ML. 27.  2011. Virulence in oat crown rust (Puccinia coronata f. sp. avenae) in the United States from 2006 through 2009. Plant Dis. 95:1528–34 [Google Scholar]
  28. Casulli F. 28.  1988. Overwintering of wheat leaf rust in southern Italy. Proc. Eur. Mediterr. Cereal Rusts Conf., Vienna, Austria, 7th, Vienna, Austria, 5–9 Sept, 1988. Federal Institute of Plant Protection, Vienna, Austria166–8 [Google Scholar]
  29. Chen CQ, Zheng WM, Buchenauer H, Huang LL, Lu NH, Kang ZS. 29.  2009. Isolation of microsatellite loci from expressed sequence tag library of Puccinia striiformis f. sp. tritici. Mol. Ecol. Resour. 9:236–38 [Google Scholar]
  30. Chen XM. 30.  2005. Epidemiology and control of stripe rust [Puccinia striiformis f. sp. tritici] on wheat. Can. J. Plant Pathol. 27:314–37 [Google Scholar]
  31. Chen XM. 31.  2014. Integration of cultivar resistance and fungicide application for control of wheat stripe rust. Can. J. Plant Pathol. 36:311–26 [Google Scholar]
  32. Chen XM. 32.  2013. High-temperature adult-plant resistance, key for sustainable control of stripe rust. Am. J. Plant Sci. 4:608–27 [Google Scholar]
  33. Chen XM, Wang MN, Wan AM, Cheng P, Cheng JJ. 33.  2012. Sexual or asexual reproduction, which one is more important for stripe rust?. Disease Risk and Food Security, Proc. Int. Cereal Rusts Powdery Mildews Conf., 13th, Beijing Aug. 28–Sept. 1 36–37 Beijing: China Agric. Sci. Technol. Press [Google Scholar]
  34. Cheng P, Chen XM. 34.  2014. Virulence and molecular analyses support asexual reproduction of Puccinia striiformis f. sp. tritici in the U.S. Pacific Northwest. Phytopathology 104:1208–20 [Google Scholar]
  35. Cheng P, Chen XM, Xu LS, See DR. 35.  2012. Development and characterization of expressed sequence tag–derived microsatellite markers for the wheat stripe rust fungus Puccinia striiformis f. sp. tritici. Mol. Ecol. Resour. 12:779–81 [Google Scholar]
  36. Chester KS. 36.  1946. The Nature and Prevention of Cereal Rusts as Exemplified in the Leaf Rust of Wheat. Waltham, MA: Chronica Botanica Co.
  37. Craigie JH. 37.  1927. Discovery of the function of the pycnia of the rust fungi. Nature 120:765–67 [Google Scholar]
  38. Craigie JH. 38.  1928. On the occurrence of pycnia and aecia in certain rust fungi. Phytopathology 18:1005–15 [Google Scholar]
  39. Cummins GB. 39.  1971. The Rust Fungi of Cereals, Grasses and Bamboos New York: Spinger-Verlag [Google Scholar]
  40. d’Oliveira B. 40.  1960. Host range of the aecial stage of Puccinia hordei Otth. Melhoramento 13:161–88 [Google Scholar]
  41. d’Oliveira B, Samborski DJ. 41.  1966. Aecial stage of Puccinia recondita on Ranunculaceae and Boraginaceae in Portugal. Proc. Cereal Rust Conf. 1st, Cambridge, UK, 29 June–2 July, 1964, ed. RCF Macer, MS Wolfe, Plant Breed. Inst., Cambridge, UK133–150 [Google Scholar]
  42. de Bary A. 42.  1866. Neue Untersuchungen über die Uredineen, insbesondere die Entwicklung der Puccinia graminis und den Zusammenhang derselben mit Aecidium Berberidis. Monatsber. K. Preuss. Akad. Wiss. Berlin
  43. de Bary A. 43.  1867. Neue Untersuchungen iiber Uredineen. Monatsber. K. Preuss. Akad. Wiss. Berlin15–50
  44. Dietz SM. 44.  1923. The role of the genus Rhamnus in the dissemination of crown rust. U.S. Dep. Agric. Bull. 1162:1–18 [Google Scholar]
  45. Dietz SM. 45.  1926. The alternate hosts of crown rust Puccinia coronata Corda. J. Agric. Res. 33:953–70 [Google Scholar]
  46. Eriksson J, Henning E. 46.  1894. Die Hauptresultate einer neuen Untersuchung über die Getreideroste. Z. Pflanzenkr. 4:197–203 [Google Scholar]
  47. Ezzahiri B, Diouri S, Roelfs AP. 47.  1992. Anchusa italica as an alternate host for wheat leaf rust in Morocco. Plant Dis. 76:1185 [Google Scholar]
  48. Ezzahiri B, Diouri S, Roelfs AP. 48.  1994. Pathogenicity of Puccinia recondita f. sp. tritici in Morocco during 1985, 1988, 1990 and 1992. Plant Dis. 78:407–10 [Google Scholar]
  49. 49. FAOSTAT 2015. Food and agricultural commodities production: commodities by regions. Rome: FAOSTAT. http://faostat3.fao.org/browse/rankings/commodities_by_regions/E
  50. Flor HH. 50.  1971. Current status of the gene-for-gene concept. Annu. Rev. Phytopathol. 9:275–96 [Google Scholar]
  51. Gaumann E. 51.  1959. Die Rostpilze Mitteleuropas mit besonder Beriicksichtigung der Schweiz. Beitr. Kryptogamenflora Schweiz. 12:1–1407 [Google Scholar]
  52. Green GJ. 52.  1965. Inheritance of virulence in oat stem rust on the varieties Sevnothree, Richland and White Russian. Can. J. Genet. Cytol. 7:641–50 [Google Scholar]
  53. Green GJ, McKenzie RIH. 53.  1967. Mendelian and extrachromosomal inheritance of virulence in Puccinia graminis f. sp. avenae. Can. J. Gene Cytol. 9:785–93 [Google Scholar]
  54. Groth VJ, Roelfs AP. 54.  1982. Effect of sexual and asexual reproduction on race abundance in cereal rust populations. Phytopathology 72:1503–7 [Google Scholar]
  55. Hagag MEA, Samborski DJ, Dyck PL. 55.  1973. Genetics of pathogenicity in three races of leaf rust on four wheat varieties. Can. J. Genet. Cytol. 15:73–82 [Google Scholar]
  56. Hening E. 56.  1912. Rhamnus catharitica bör icke odlas. Svenskt. Land. No. 5.
  57. Jackson HA, Mains EB. 57.  1921. Aecial stage of the orange leaf rust of wheat. J. Agric. Res. 22:152–72 [Google Scholar]
  58. Jin Y. 58.  2011. Role of Berberis spp. as alternate hosts in generating new races of Puccinia graminis and P. striiformis. Euphytica 179:105–8 [Google Scholar]
  59. Jin Y, Rouse M, Groth J. 59.  2014. Population diversity of Puccinia graminis is sustained through sexual cycle on alternate hosts. J. Integr. Agric. 13:262–64 [Google Scholar]
  60. Jin Y, Steffenson BJ. 60.  1999. Puccinia coronata var. hordei var. nov.: morphology and pathogenicity. Mycologia 91:877–84 [Google Scholar]
  61. Jin Y, Steffenson BJ, Oberthur LE, Baenziger PS. 61.  1992. Puccinia coronata on barley. Plant Dis. 76:1283 [Google Scholar]
  62. Jin Y, Szabo LJ, Carson M. 62.  2010. Century-old mystery of Puccinia striiformis life history solved with the identification of Berberis as an alternate host. Phytopathology 100:432–35 [Google Scholar]
  63. Johnson T, Netwon M. 63.  1940. Mendelian inheritance of certain pathogenic characters of Puccinia graminis tritici. Can. J. Res. C 18:599–611 [Google Scholar]
  64. Kang ZS, Zhao J, Wang ZY, Huang LL. 64.  2015. Research progress on the role of sexual hosts for wheat epidemiology in China. Abstr. Int. Cereal Rusts Powdery Mildews Conf., Helsingør, Denmark, 14th, July 5–8, 2015, Aarhus University, Helsingør, Denmark29 [Google Scholar]
  65. Kirk PM, Cannon PF, Minter DW, Stalpers JA. 65.  2008. Dictionary of the Fungi Wallingford, UK: CABI, 10th ed..
  66. Klebahn H. 66.  1892. Kulturversuche mit heterocischen Uredineen. Z. Pflanzenkr. Gallenkd. 2:332–43 [Google Scholar]
  67. Klenová-Jiráková H, Leišová-Svobodová L, Hanzalová A, Kučera L. 67.  2010. Diversity of oat crown rust (Puccinia coronata f. sp. avenae) isolates detected by virulence and AFLP analyses. Plant Prot. Sci. 46:98–106 [Google Scholar]
  68. Kolmer J, Chen XM, Jin Y. 68.  2009. Diseases which challenge global wheat production: the wheat rusts. Wheat: Science and Trade BF Carver 89–124 Ames, IA: Wiley-Blackwell [Google Scholar]
  69. Kolmer JA, Ordonez ME. 69.  2007. Genetic differentiation of Puccinia triticina populations in central Asia and the Caucasus. Phytopathology 97:1141–49 [Google Scholar]
  70. Leonard KJ. 70.  2007. Persistent virulence associations in sexual populations of Puccinia coronata. Plant Pathol. 56:35–45 [Google Scholar]
  71. Leonard KJ, Anikster Y, Manisterski J. 71.  2004. Patterns of virulence in natural populations of Puccinia coronata on wild oat in Israel and in agricultural populations on cultivated oat in the United States. Phytopathology 94:505–14 [Google Scholar]
  72. Leppik EE. 72.  1961. Some viewpoints on the phylogeny of rust fungi. IV. Stem rust genealogy. Mycologia378–405
  73. Levine MN, Hildreth RC. 73.  1957. A natural occurrence of the aecial stage of Puccinia rubigo-vera var. tritici in the United States. Phytopathology 47:110–11 [Google Scholar]
  74. Li ZQ, Zeng SM. 74.  2002. Wheat Rusts in China Beijing: China Agric. Press
  75. Lim M, Wolderufael G, Hailu E, Wanyera R, Newcomb M. 75.  et al. 2015. Berberis holstii is functional as an alternate host of Puccinia graminis in Ethiopia. Ithaca, NY: BGRI http://www.globalrust.org/content/berberis-holstii-functional-alternate-host-puccinia-graminis-ethiopia [Google Scholar]
  76. Line RF. 76.  2002. Stripe rust of wheat and barley in North America: a retrospective historical review. Annu. Rev. Phytopathol. 40:75–118 [Google Scholar]
  77. Luig NH, Watson IA. 77.  1972. The role of wild and cultivated grasses in the hybridization of formae speciales of Puccinia graminis. Aus. J. Biol. Sci. 25:335–42 [Google Scholar]
  78. Luo HY, Wang XJ, Zhan GM, Wei GR, Zhou XL. 78.  et al. 2015. Genome-wide analysis of simple sequence repeats and efficient development of polymorphic SSR markers based on whole genome re-sequencing of multiple isolates of the wheat stripe rust fungus. PLOS ONE 10:e0130362 [Google Scholar]
  79. Ma JB, Chen XM, Wang MN, Kang ZS. 79.  2009. Constructing physical and genomic maps for Puccinia striiformis f. sp. tritici, the wheat stripe rust pathogen, by comparing its EST sequences to the genomic sequence of P. graminis f. sp. tritici, the wheat stem rust pathogen. Comp. Funct. Genom. 2009:302620 [Google Scholar]
  80. Mains EB. 80.  1932. Host specialization in the leaf rust of grasses. Mich. Acad. Sci. 17:289–393 [Google Scholar]
  81. Martens JW. 81.  1985. Oat stem rust. See Ref. 100 103–129
  82. Martens JW, McKenzie RIH, Green GJ. 82.  1970. Gene-for-gene relationships in the Avena: Puccinia graminis host-parasite system in Canada. Can. J. Bot. 48:969–75 [Google Scholar]
  83. McKay R. 83.  1957. Cereal Diseases in Ireland Dublin: Guinness
  84. Mehta KC. 84.  1933. Rusts of wheat and barley in India. Indian J. Agric. Sci. 3:939–62 [Google Scholar]
  85. Mehta KC. 85.  1940. Further studies on cereal rusts in India. Part 1. Indian Counc. Agric. Res. Sci. Monogr. 14:1–224 [Google Scholar]
  86. Mehta KC. 86.  1941. The wheat rust problem of India. Curr. Sci. 10:357–61 [Google Scholar]
  87. Mehta KC. 87.  1952. Further studies on cereal rusts in India. Part 2. Indian Counc. Agric. Res. Sci. Monogr. 18:1–368 [Google Scholar]
  88. Melander LW, Craigie JH. 88.  1927. Nature of resistance of Berberis spp. to Puccinia graminis. Phytopathology 17:95–114 [Google Scholar]
  89. Melhus IE, Dietz SM, Willey F. 89.  1922. Alternate hosts and biologic specialization of crown rust in America Res. Bull. 72, Agric. Exp. Stn. Iowa State Coll. Agric. Mech., Ames, IA
  90. Nagarajan S, Singh DV. 90.  1990. Long-distance dispersion of rust pathogens. Annu. Rev. Phytopathol. 28:139–53 [Google Scholar]
  91. Newton M, Johnson T. 91.  1932. Studies in cereal diseases VIII: specialization and hybridization of wheat stem rust Puccinia graminis tritici, in Canada. Can. Dep. Agric. Bull. 160., Ottawa, Ont.
  92. Newton M, Johnson T. 92.  1944. Physiologic specialization of oat stem rust in Canada. Can. J. Res. 22:201–16 [Google Scholar]
  93. Newton M, Johnson T. 93.  1946. Physiologic races of Puccinia graminis tritici in Canada, 1919 to 1944. Can. J. Res. 24:26–38 [Google Scholar]
  94. Newton M, Johnson T, Brown AM. 94.  1930. A study of the inheritance of spore colour and pathogenicity in crosses between physiologic forms of Puccinia graminis tritici. Sci. Agric. 10:775–98 [Google Scholar]
  95. Park R, Fetch T, Hodson D, Jin Y, Nazari K. 95.  et al. 2011. International surveillance of wheat rust pathogens, progress and challenges. Euphytica 179:109–17 [Google Scholar]
  96. Rapilly F. 96.  1979. Yellow rust epidemiology. Annu. Rev. Phytopathol. 17:59–73 [Google Scholar]
  97. Rodriguez-Algaba J, Walter S, Sørensen CK, Hovmøller MS, Justesen AF. 97.  2014. Sexual structures and recombination of the wheat rust fungus Puccinia striiformis on Berberis vulgaris. Fungal Genet. Biol. 70:77–85 [Google Scholar]
  98. Roelfs AP. 98.  1982. Effects of barberry eradication on stem rust in the United States. Plant Dis. 66:177–81 [Google Scholar]
  99. Roelfs AP. 99.  1985. Wheat and rye stem rust. See Ref. 100 3–37
  100. Roelfs AP, Bushnell WR. 100.  1985. The Cereal Rusts Vol. II: Diseases, Distribution, Epidemiology, and Control. Orlando, FL: Academic [Google Scholar]
  101. Roelfs AP, Groth VJ. 101.  1980. A comparison of virulence phenotypes in wheat stem rust populations reproducing sexually and asexually. Phytopathology 70:855–62 [Google Scholar]
  102. Roelfs AP, Singh RP, Saari EE. 102.  1992. Rust Disease of Wheat: Concepts and Methods of Disease Management Mexico, DF: CIMMYT
  103. Rouse MN, Stoxen S, Chen X, Szabo LJ, Jin Y. 103.  2009. Diverse stem rust races found in a single field in Washington, USA. Phytopathology 99:S111 (Abstr.) [Google Scholar]
  104. Samborski DJ. 104.  1985. Wheat leaf rust. See Ref. 100 39–59
  105. Samborski DJ, Dyck PL. 105.  1968. Inheritance of virulence in wheat leaf rust on the standard differential wheat varieties. Can. J. Genet. Cytol. 10:24–32 [Google Scholar]
  106. Samborski DJ, Dyck PL. 106.  1976. Inheritance of virulence in Puccinia recondita on six backcross lines of wheat with single genes for resistance to leaf rust. Can. J. Bot. 54:1666–71 [Google Scholar]
  107. Savile DBO. 107.  1984. Taxonomy of the cereal rust fungi. See Ref. 25 79–114
  108. Schafer JF, Roelfs AP, Bushnell WR. 108.  1984. Contributions of early scientists to knowledge of cereal rusts. See Ref. 25 3–38
  109. Schumann G, D’Arcy C. 109.  2010. Essential Plant Pathology St. Paul: APS Press
  110. Scott KJ, Maclean DJ. 110.  1969. Culture of rust fungi. Annu. Rev. Phytopathol. 7:123–46 [Google Scholar]
  111. Sharma-Poudyal D, Chen XM. 111.  2011. Models for predicting potential yield loss of wheat caused by stripe rust in the US Pacific Northwest. Phytopathology 101:544–54 [Google Scholar]
  112. Sharma-Poudyal D, Chen XM, Rupp RA. 112.  2014. Potential oversummering and overwintering regions for the wheat stripe rust pathogen in the contiguous United States. Int. J. Biometeorol. 58:987–97 [Google Scholar]
  113. Sharma-Poudyal D, Chen XM, Wan AM, Zhan GM, Kang ZS. 113.  et al. 2013. Virulence characterization of international collections of the wheat stripe rust pathogen, Puccinia striiformis f. sp. tritici. Plant Dis. 97:379–86 [Google Scholar]
  114. Sibilia C. 114.  1960. La forma ecidica della ruggine bruna delle foglie di grano Puccinia recondite. Rob. ex. Desm. in Italia. Boll. Stn. Patol. Veg. 18:1–8 [Google Scholar]
  115. Simons MD. 115.  1970. Crown Rust of Oats and Grasses Monographs 5 St. Paul: APS Press
  116. Simons MD. 116.  1985. Crown rust. See Ref. 100 131–72
  117. Stakman EC. 117.  1923. The wheat rust problem in the United States. Proc. Pan-Pac. Sci. Congr., 1st, Honolulu, Hawaii, 2–20 August, 1920, Honolulu Star-Bulletin 1:88–96 [Google Scholar]
  118. Stakman EC, Harrar JG. 118.  1957. Principles of Plant Pathology. New York: Ronald Press
  119. Stakman EC, Levine MN, Cotter RU, Hines L. 119.  1934. Relation of barberry to the origin and persistence of physiologic forms of Puccinia graminis. J. Agric. Res. 48:953–69 [Google Scholar]
  120. Statler GD. 120.  2000. Inheritance of virulence of Puccinia triticina culture X47, the F1 of the cross 71–112×70–1. Can. J. Plant Pathol. 22:276–79 [Google Scholar]
  121. Statler GD, Jin Y. 121.  1991. Inheritance of virulence of Puccinia recondita culture X43. Can. J. Plant Pathol. 13:33–37 [Google Scholar]
  122. Straib W. 122.  1937. Untersuchungen über das Vorkommen physiologischer Rassen des Gelbrostes (Puccinia glumarum) in den Jahren 1935–1936 und über die Agressivitt einiger neur Formen auf Getreide und Grasern. Arb. Biol. Reichsanst. LandForstwirtsch. Berlin-Dahlem 22:91–119 [Google Scholar]
  123. Stubbs RW. 123.  1985. Stripe rust. See Ref. 100 61–101
  124. Tian Y, Zhan GM, Chen XM, Tungruentragoon A, Lu X. 124.  et al. 2016. Virulence and simple sequence repeat marker segregation in a Puccinia striiformis f. sp. tritici population produced by selfing a Chinese isolate on Berberis shensiana. Phytopathology 106:185–91 [Google Scholar]
  125. Tommasi F, Siniscalco A, Paradies M. 125.  1980. Aecia of an unidentified rust on Thalictrum flavum L. in southern Italy. Proc. Fifth Eur. Mediterr. Cereal Rusts Conf. 1980. Bari and Rome, Italy, 28 May–4 June, 1980, Instituto di Patologia Vegetale, Bari, Italy 5:191–98 [Google Scholar]
  126. Tranzschel W. 126.  1914. Kulturversuche mit uredineen in den Jahren 1911–1913. Vorlauf. Mitt. Mycol. CI. 4:70–71 [Google Scholar]
  127. Tranzschel W. 127.  1934. Promezutocnye chozjaeva rzavciny chlebov i ich der UdSSR (The alternate hosts of cereal rust fungi and their distribution in the UdSSR). Bull. Plant Prot. Ser. 2:4–10 (In Russian with German summary) [Google Scholar]
  128. Wahl I, Dinoor A, Halperin J, Schreiter S. 128.  1960. The effect of Rhamnus palaestina on the origin and resistance of oat crown rust races. Phytopathology 50:562–67 [Google Scholar]
  129. Waipara NW, Smith LA, Gianotti AF, Wikie JP, Winks CJ, McKenzie HC. 129.  2005. A survey of fungal plant pathogens associated with weed infestations of barberry (Berberis spp.) in New Zealand and their biocontrol potential. Aus. Plant Pathol. 34:369–76 [Google Scholar]
  130. Wan AM, Chen XM. 130.  2014. Virulence characterization of Puccinia striiformis f. sp. tritici using a new set of Yr single-gene line differentials in the United States in 2010. Plant Dis. 98:1534–42 [Google Scholar]
  131. Wang MN, Chen XM. 131.  2013. First report of Oregon grape (Mahonia aquifolium) as an alternate host for the wheat stripe rust pathogen (Puccinia striiformis f. sp. tritici) under artificial inoculation. Plant Dis. 97:839 [Google Scholar]
  132. Wang MN, Chen XM. 132.  2015. Barberry does not function as an alternate host for Puccinia striiformis f. sp. tritici in the US Pacific Northwest due to teliospore degradation and barberry phenology. Plant Dis. 99:1500–6 [Google Scholar]
  133. Wang MN, Wan AM, Chen XM. 133.  2012. Genetic characterization of virulence/avirulence genes of Puccinia striiformis f. sp. tritici. Phytopathology 102:S4:132 (Abstr.) [Google Scholar]
  134. Wang MN, Wan AM, Chen XM. 134.  2015. Barberry as alternate host is important for Puccinia graminis f. sp. tritici but not for Puccinia striiformis f. sp. tritici in the U.S. Pacific Northwest.. Plant Dis. 99:1507–16 [Google Scholar]
  135. Wang MN, Wan AM, Chen XM, Evans CK. 135.  2011. Barberry is more important as an alternate host for stem rust than for stripe rust in the U.S. Pacific Northwest.. Oral Present. Poster Abstr. Particip. Program BGRI Tech. Workshop, St. Paul, MN June 13–16 166 Ithaca, NY: BGRI [Google Scholar]
  136. Wang ZY, Zhao J, Chen XM, Lu YZ, Ji JJ. 136.  et al. 2016. Virulence variations of Puccinia striiformis f. sp. tritici isolates collected from Berberis spp. in China. Plant Dis. 100:131–38 [Google Scholar]
  137. Watson IA, De Sousa CNA. 137.  1983. Long distance transport of spores of Puccinia graminis tritici in the Southern Hemisphere. Proc. Linn. Soc. N. SW. 106:311–21 [Google Scholar]
  138. Wellings CR. 138.  2011. Global status of stripe rust: a review of historical and current threats. Euphytica 179:129–41 [Google Scholar]
  139. Williams PG, Scott KJ, Kuhl JL, Maclean JL. 139.  1967. Sporulation and pathogenicity of Puccinia graminis f. sp. tritici grown on an artificial medium. Phytopathology 57:326–27 [Google Scholar]
  140. Xia CJ, Wang MN, Wan AM, Chen XM. 140.  2015. Development of SP-SNP markers and use them to characterize populations of the stripe rust pathogen and identify markers associated to avirulence genes. Phytopathology 105:Suppl. 4151 (Abstr.) [Google Scholar]
  141. Yamada M, Takahashi K, Takahashi H, Tanaka T. 141.  1973. Studies on alternate host, Thalictrum thunbergii DC., as an origin of physiologic races of wheat leaf rust, Puccinia recondita Roberge ex. Desm. f. sp. tritici in Japan. Rep. Tottori Mycol. Inst. 10:283–302 [Google Scholar]
  142. Young HC Jr, Prescott JM. 142.  1977. A study of race populations of Puccinia recondita f. sp. tritici. Phytopathology 67:528–32 [Google Scholar]
  143. Young HC Jr, Saart EE, Curtis BC. 143.  1965. The potential function of native Thalictrum species as an alternate host of Puccinia recondita f. sp. tritici. Phytopathology 55:502 [Google Scholar]
  144. Zadoks JC. 144.  1961. Yellow rust on wheat studies in epidemiology and physiologic specialization. T. Pl. Ziekten. 67:69–256 [Google Scholar]
  145. Zadoks TC. 145.  1967. Epidemiology of wheat rust in Europe. Pest Artic. News Summar. Sect. B Plant Dis. Control 13:29–46 [Google Scholar]
  146. Zadoks JC, Bouwman JJ. 146.  1985. Epidemiology in Europe. See Ref. 100 329–69
  147. Zambino PJ, Kubelik AR, Szabo LJ. 147.  2000. Gene action and linkage of avirulence genes to DNA markers in the rust fungus Puccinia graminis. Phytopathology 90:819–26 [Google Scholar]
  148. Zeng GR, Xue LX. 148.  1963. Study on relation of Berberis amurensis Rup. to occurrence of wheat stem rust in the middle of North China. J. Plant Prot. 2:47–55 [Google Scholar]
  149. Zhang GC, Zeng GR, Xue LX. 149.  1957. Report on association of Berberis poiretii Sch. with wheat stem rust. Northeast Agric. Sci. Bull. 4:102–7 [Google Scholar]
  150. Zhao J, Wang L, Wang ZY, Chen XM, Zhang HC. 150.  et al. 2013. Identification of eighteen Berberis species as alternate hosts of Puccinia striiformis f. sp. tritici and virulence variation in the pathogen isolates from natural infection of barberry plants in China. Phytopathology 103:935–40 [Google Scholar]
  151. Zhao J, Zhao SL, Chen XM, Wang ZY, Wang L. 151.  et al. 2015. Determination of the role of Berberis spp. in wheat stem rust in China. Plant Dis. 99:1113–7 [Google Scholar]
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