Association Mapping and Development of Marker-Assisted Selection Tools for the Resistance to White Pine Blister Rust in the Alberta Limber Pine Populations

被引:10
|
作者
Liu, Jun-Jun [1 ]
Sniezko, Richard A. [2 ]
Sissons, Robert [3 ]
Krakowski, Jodie [4 ]
Alger, Genoa [3 ]
Schoettle, Anna W. [5 ]
Williams, Holly [1 ]
Zamany, Arezoo [1 ]
Zitomer, Rachel A. [2 ,6 ]
Kegley, Angelia [2 ]
机构
[1] Nat Resources Canada, Canadian Forest Serv, Victoria, BC, Canada
[2] USDA Forest Serv, Dorena Genet Resource Ctr, Cottage Grove, OR USA
[3] Pk Canada, Waterton Lakes Natl Pk, Waterton Pk, AB, Canada
[4] Alberta Agr & Forestry, Edmonton, AB, Canada
[5] USDA Forest Serv, Rocky Mt Res Stn, Ft Collins, CO USA
[6] Oregon State Univ, Dept Forest Ecosyst & Soc, Corvallis, OR 97331 USA
来源
关键词
association mapping; Cronartium ribicola; limber pine (Pinus flexilis); major gene resistance (MGR); marker-assisted selection (MAS); plant effector-triggered immunity (ETI); single nucleotide polymorphisms (SNPs); white pine blister rust (WPBR); COMPLEX TRAITS; LINKAGE DISEQUILIBRIUM; GENETIC-RESISTANCE; ARABIDOPSIS; FLEXILIS; DEFENSE; PLANTS; STRESS; EVOLUTION; VALUES;
D O I
10.3389/fpls.2020.557672
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Since its introduction to North America in the early 1900s, white pine blister rust (WPBR) caused by the fungal pathogenCronartium ribicolahas resulted in substantial economic losses and ecological damage to native North American five-needle pine species. The high susceptibility and mortality of these species, including limber pine (Pinus flexilis), creates an urgent need for the development and deployment of resistant germplasm to support recovery of impacted populations. Extensive screening for genetic resistance to WPBR has been underway for decades in some species but has only started recently in limber pine using seed families collected from wild parental trees in the USA and Canada. This study was conducted to characterize Alberta limber pine seed families for WPBR resistance and to develop reliable molecular tools for marker-assisted selection (MAS). Open-pollinated seed families were evaluated for host reaction following controlled infection usingC. ribicolabasidiospores. Phenotypic segregation for presence/absence of stem symptoms was observed in four seed families. The segregation ratios of these families were consistent with expression of major gene resistance (MGR) controlled by a dominant R locus. Based on linkage disequilibrium (LD)-based association mapping used to detect single nucleotide polymorphism (SNP) markers associated with MGR againstC. ribicola, MGR in these seed families appears to be controlled byCr4or other R genes in very close proximity toCr4. These associated SNPs were located in genes involved in multiple molecular mechanisms potentially underlying limber pine MGR toC. ribicola, including NBS-LRR genes for recognition ofC. ribicolaeffectors, signaling components, and a large set of defense-responsive genes with potential functions in plant effector-triggered immunity (ETI). Interactions of associated loci were identified for MGR selection in trees with complex genetic backgrounds. SNPs with tight Cr4-linkage were further converted to TaqMan assays to confirm their effectiveness as MAS tools. This work demonstrates the successful translation and deployment of molecular genetic knowledge into specific MAS tools that can be easily applied in a selection or breeding program to efficiently screen MGR against WPBR in Alberta limber pine populations.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Selection for resistance to white pine blister rust affects the abiotic stress tolerances of limber pine
    Vogan, Patrick J.
    Schoettle, Anna W.
    FOREST ECOLOGY AND MANAGEMENT, 2015, 344 : 110 - 119
  • [2] White Pine Blister Rust Resistance in Limber Pine: Evidence for a Major Gene
    Schoettle, A. W.
    Sniezko, R. A.
    Kegley, A.
    Burns, K. S.
    PHYTOPATHOLOGY, 2014, 104 (02) : 163 - 173
  • [3] Genomics study of limber pine genetic resistance to white pine blister rust
    Liu, J. J.
    Schoettle, W.
    Sniezko, R. A.
    Wang, N.
    Zamany, A.
    Sturrock, R.
    Kegley, A.
    PHYTOPATHOLOGY, 2015, 105 (11) : 83 - 84
  • [4] A hybrid between white pine blister rust and Comandra blister rust on limber pine
    Hamelin, R.
    Joly, D.
    Langor, D.
    PHYTOPATHOLOGY, 2005, 95 (06) : S39 - S40
  • [5] Is Resistance to Mountain Pine Beetle Associated with Genetic Resistance to White Pine Blister Rust in Limber Pine?
    Holtz, Christine T.
    Schoettle, Anna W.
    FORESTS, 2018, 9 (10)
  • [6] Epidemiology of white pine blister rust on limber pine in Colorado and Wyoming
    Jacobi, William R.
    Kearns, Holly S. J.
    Cleaver, Christy M.
    Goodrich, Betsy A.
    Burns, Kelly S.
    FOREST PATHOLOGY, 2018, 48 (06)
  • [7] WHITE-PINE BLISTER RUST ON LIMBER PINE IN SOUTH-DAKOTA
    LUNDQUIST, JE
    GEILS, BW
    JOHNSON, DW
    PLANT DISEASE, 1992, 76 (05) : 538 - 538
  • [8] Risk of white pine blister rust to limber pine in Colorado and Wyoming, USA
    Kearns, H. S. J.
    Jacobi, W. R.
    Reich, R. M.
    Flynn, R. L.
    Burns, K. S.
    Geils, B. W.
    FOREST PATHOLOGY, 2014, 44 (01) : 21 - 38
  • [9] Comparative Association Mapping Reveals Conservation of Major Gene Resistance to White Pine Blister Rust in Southwestern White Pine (Pinus strobiformis) and Limber Pine (P. flexilis)
    Liu, Jun-Jun
    Schoettle, Anna W.
    Sniezko, Richard A.
    Waring, Kristen M.
    Williams, Holly
    Zamany, Arezoo
    Johnson, Jeremy S.
    Kegley, Angelia
    PHYTOPATHOLOGY, 2022, 112 (05) : 1093 - 1102
  • [10] Limber Pine Regeneration and White Pine Blister Rust in the Central and Southern Rocky Mountains
    Cleaver, Christy M.
    Jacobi, William R.
    Burns, Kelly S.
    Means, Robert E.
    FOREST SCIENCE, 2017, 63 (02) : 151 - 164