Breeding Wheat for Powdery Mildew Resistance: Genetic Resources and Methodologies—A Review
Abstract
:1. Introduction
2. Constraints to Wheat Production
3. Pathogenesis, Distribution, and Economic Importance
3.1. Pathogenesis
3.1.1. Life Cycle and Epidemiology
3.1.2. Damages
3.1.3. Population Genetics
3.2. Geographic Distribution and Economic Importance
4. Current Control Strategies
4.1. Monitoring: Remote Sensing Technologies
4.2. Intervention Strategies
4.2.1. Integrated Management Strategies
4.2.2. Chemical Control
4.2.3. Host-Plant Resistance
5. Host-Plant Resistance: Progress and Achievements
5.1. Resistance Types for Powdery Mildew
5.2. Pleiotropic APR Genes for Powdery Mildew and Other Wheat Diseases
6. Wheat Genetic Resources: Conservation and Use in PM Breeding Programs
6.1. Wheat Gene Banks as a Source of PM Resistance
6.2. Wheat Databases as a Source of PM Resistance
6.3. Genetic Resources of Wheat for Powdery Mildew Resistance
6.3.1. Wheat Landraces
6.3.2. Tetraploid Wheats
6.3.3. Synthetic Hexaploid Wheat
Genotype Name | Type of Accession | Traits Type(s) or Gene | Country or Organization | Year of Release | References |
---|---|---|---|---|---|
Hongyoumai | Landrace | pmHYM | China | - | [171,229] |
Duanganmang | Landrace | PmDGM | China | - | [172] |
Baiyouyantiao | Landrace | PmBYYT | China | - | [210] |
Xiaohongpi | Landrace | pmX | China | - | [191] |
Pingyuan 50 | Landrace | Powdery mildew and stripe rust | 1950s | [78,271] | |
Niaomai | Landrace | Pm2c | China | - | [233] |
Hongyanglazi | Landrace | Pm47 | China | - | [152] |
Guizi 1 | Landrace | PmGZ1 | China | - | [275] |
Xiaobaidong and Fuzhuang 30 | Landrace | mlxbd and mlfz | Germany | - | [132,170,276] |
Hulutou | Landrace | MlHLT | China | - | [168] |
Xuxusanyuehuang ‘XXSYH’ | Landrace | Pm61 | China | - | [160] |
Baihulu | Landrace | mlbhl | China | - | [133,277] |
Baihulu and Hulutou | Landrace | Pm24 | China | - | [133,232] |
Qingxinmai | Landrace | PmQ | China | - | [173] |
Dahongtou | Landrace | pmDHT | China | - | [229] |
Shangeda | Landrace | PmSGD | China | - | [278] |
Youbailan | Landrace | pmYBL | China | - | [230] |
Honghauaxiaomai | Landrace | PmHHXM | China | - | [279] |
Dataumai | Landrace | PmDTM | China | - | [280] |
Youzimai | Landrace | Seedling resistance to powdery mildew | China | - | [281] |
PI 181356 | Landrace | Pm59 | Great plains | - | [158] |
PI 223899 | Landrace | pm223899 | USDA-ARS, Oklahoma | - | [231] |
PI 628024 | Landrace | Pm63 | USDA-ARS, Oklahoma | - | [161] |
Synthetic 43 | Synthetic | pmT | North Western Plain Zone of India | 1993 | [22] |
SE5785 | SHW | PmSE5785 | Chinese Academy of Agricultural Sciences, Beijing, China | - | [256] |
N07228-1 and N07228-2 | SDL | Large seeds and PM resistance | College of Agronomy, Northwest A&F University, China | [256] | |
Chuanmai 104 | SHW | APR to PM, stripe rust, and pre-harvest sprouting; high yielding, good quality, wide adaptability | Crop Research Institute, Sichuan Academy of Agricultural Sciences (CRI-SAAS) | 2012 | [246,261] |
MG5323 | T. turgidum | Ml5323 | University of Bari, Italy | [135] | |
NC96BGTA4 | T. monococcum | Pm resistance | North Carolina Agricultural Research Service and the USDA-ARS | 1996 | [134] |
NC96BGTA5 | T. monococcum | Pm25 | North Carolina Agricultural Research Service and the USDA-ARS | 1996 | [134,282] |
NC96BGTA6 | T. monococcum | PM resistance | North Carolina Agricultural Research Service and the USDA-ARS | 1996 | [134] |
NC99BGTAG11 | T. timopheevii | Pm37 | North Carolina Agricultural Research Service and the USDA-ARS | 2000 | [146,283] |
MG29896 | T. turgidum | Pm36, high grain protein content, and acceptable seed size | University of Bari, Italy | - | [145] |
Translocation line L50 | Ae. speltoides | Pm32 | Technical university of Munich, Germany | - | [141] |
Wild emmer IW2 | T. dicoccum | Pm41 | Mount Hermon, Israel, | - | [148] |
Wild emmer accession G-303-IM | T. dicoccum | Pm42 | Israel | - | [149] |
K2 | T. dicoccum | Pm50 | Institute for Crop Science and Plant Breeding, Germany | - | [257] |
CH7086 | Thinopyrum ponticum | Pm51 | Crop Science Institute, Shanxi Academy of Agricultural Sciences | - | [154] |
Qinling | Secale cereale | Pm56 | Sichuan Agricultural University, Ya’an, China | - | [186] |
NAU421 (T5VS·5AL) | Dasypyrum villosum | Pm55 (growth-stage and tissue-specific dependent resistance) | Nanjing Agricultural University, China | - | [185] |
TA1662 | Ae. tauschii | Pm58 | Michigan State University, USA | - | [187] |
T.urartu | T. urartu | Pm60 | Jiangxi Normal University, China | - | [159] |
7. Breeding Methods and Technologies
7.1. Selection Using Phenotypic Traits: Classical Breeding
7.2. Marker-Assisted Selection (MAS)
8. Quantitative Trait Loci (QTLs) for Resistance to Wheat Powdery Mildew
9. Conclusions and Outlook
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Reported Genes | Germplasm Source | References |
---|---|---|
Race-specific resistance | ||
Pm2 | A. squarrosa | [117] |
Pm3a-pm3j | T. aestivum L. | [24] |
Pm4 | T.aestivum L. | [31] |
Pm4b, 4c | T. aestivum L. (RE714) | [118] |
Pm5 | T aestivum L. | [119] |
Pm5a | T. aestivum L. | [119] |
Pm5b | T. aestuvum L. | [120] |
Pm5c | T. sphaerococcum | [120] |
Pm5d | T. aestivum L. | [120] |
Pm5e | T. aestivum | [121] |
Pm8 | Secale cereale | [117] |
Pm9 | T. aestivum L. | [122] |
Pm10 | T. aestivum L. | [123] |
Pm11 | T. aestivum L. | [123] |
Pm13 | Aegilops longissima | [124] |
Pm14 | T. aestivum L. | [123] |
Pm15 | T. aestivum L. | [125] |
Pm16 | T. aestivum L. | [126] |
Pm17 | Secale cereale | [117] |
Pm18 | T. aestivum L. | [123] |
Pm19 | A. squarrosa | [117] |
Pm20 | Secale cereale | [35] |
Pm21 | Haynaldia villosa | [127,128] |
Pm22 | T. aestivum L. | [129,130] |
Pm23/Pm4c | T. aestivum L. | [131] |
Pm24/24b | T. aestivum L. | [132,133] |
Pm25 | T. monococcum | [134] |
Pm26 | T. turgidum | [135] |
Pm27 | T. timopheevii | [136] |
Pm28 | T. aestivum L. | [137] |
Pm29 | T. aestivum L. | [138] |
Pm30 | T. turgidum | [139] |
Pm31 | T. turgidum | [140] |
Pm32 | Ae. spelltoides | [141] |
Pm33 | T. turgidum | [142] |
Pm34 | Ae. tauschii | [143] |
Pm35 | Ae. tauschii | [144] |
Pm36 | T. turgidum | [145] |
Pm37 | T. timopheevii | [146] |
Pm40 | Elytrigia intermedium | [147] |
Pm41 | Triticum turgidum | [148] |
Pm42 | T. turgidum | [149] |
Pm43 | Thinopyrum intermedium | [150] |
Pm45 | T. aestivum L. | [151] |
Pm47 | T. aestivum L. | [152] |
Pm48 | Ae. tauschii | [153] |
Pm51 | Thinopyrum ponticum | [154] |
Pm52 | T. aestivum L. | [155] |
Pm54 | T. aestivum L. | [156] |
Pm57 | Ae. searsii | [157] |
Pm59 | T. aestivum L. | [158] |
Pm60 | T. urartu | [159] |
Pm61 | T. aestivum L. | [160] |
Pm63 | T. aestivum L. | [161] |
Pm65 | T. aestivum L. | [162] |
Pm66 | Ae. longissima | [163] |
Pm68 | T. turgidum | [164] |
Pm69 | T. turgidum | [165] |
PmCH1357 | T. aestivum L | [166] |
PmCG15-009 | T. aestivum L. | [167] |
MG5323 | T. turgidum | [135] |
MlHLT | T. aestivum L. | [168] |
PmG3M | T. turgidum | [169] |
MlXBD | T. aestivum L. | [170] |
pmHYM | T. aestivum L. | [171] |
MIRE | T. aestivum L. | [118] |
pmDGM | T. aestivum L. | [172] |
pmQ | T. aestivum L. | [173] |
PmZ155 | T. aestivum L. | [174] |
MlLX99 | T. aestivum L. | [175] |
Race-non-specific | ||
Pm6 | T. aestivum L. | [111] |
Pm7 | Secale cereale | [176] |
Pm12 | Ae. speltoides | [177,178] |
Pm38 | T.aestivum L. | [179,180] |
Pm39 | T aestivum L. | [181,182] |
Pm46 | T.aestivum L. | [183] |
Pm53 | Ae. speltoides | [184] |
Pm55 | Dasypyrum villosum | [185] |
Pm56 | Secale cereale | [186] |
Pm58 | Ae. tauschii | [187] |
Pm62 | Dasypyrum villosum | [188] |
Pm64 | T. turgidum | [189] |
Pm67 | Dasypyrum villosum | [190] |
pmX | T. aestivum L. | [191] |
PmWFJ | T. aestivum L. | [192] |
Gene Bank | Institution or Country | Year of Establishment | Genebank Capacity | No. of Wheat Accessions | References/Website |
---|---|---|---|---|---|
The Consultative Group on International Agricultural Research (CGIAR, 15 centers) Genebank Platform | France | 1971 | ~770,000 accessions | - | CGIAR: Science for humanity’s greatest challenges |
Centre for Maize and Wheat Improvement (CIMMYT) | Mexico | 1966 | ~200,000 accessions | ~80,000 | https://www.cgiar.org/research/center/cimmyt/ |
International Center for Agricultural Research in the Dry Areas (ICARDA) | Beirut, Lebanon | 1977 | ~150,000 accessions | - | ICARDA Annual report, 2021 |
USDA—National Small Grains Collection (NSGC) or National Plant Germplasm System (NPGS) | Aberdeen, Idaho, USA | 1988 | ~143,893 accessions | - | https://www.ars.usda.gov/pacific-west-area/aberdeen-id/small-grains-and-potato-germplasm-research/docs/national-small-grains-collection/ and USDA-ARS-NPGS |
Plant Gene Resources of Canada (PGRC) | Canada | 1970 | ~112,000 accessions | - | https://pgrc.agr.gc.ca/holdings-stocks_e.html |
Grains Research and Development Corporation (GRDC) | Australia | 1990 | - | - | https://grdc.com.au/ |
Institute of Plant Genetics and Crop Plant Research (IPK), Gatersleben | Germany | 1992 | ~150,000 accessions | ~22,000 | https://www.ipk-gatersleben.de/en/research/genebank |
Genesys: Institute for Cereal Crops Improvement (ICCI) | Israel | 1970 | ~17,006 accessions | - | https://en-lifesci.tau.ac.il/icci |
Pannar | South Africa | 1958 | |||
Agricultural Research Council–Small Grain (ARC-SG) | South Africa | 1976 | ~20,000 accessions | 17,551 | https://www.arc.agric.za/Documents/Annual%20Reports/AR2021-low%20res-OCT%202021.pdf |
QTL (s) | Chromosome | Donor | Reference |
---|---|---|---|
QPm.caas-1A | 1AL | Bainong 64 | [63,321] |
QPm.sfr-1A | 1AL | Oberkulmer | [118] |
QPm.caas-1AS | 1AS | Fukuho-komugi | [285] |
QPm.vt-1B | 1B | Massey | [319,324] |
Qaprpm.cgb-1B | 1B | Hanxuan 10 | [325] |
QPm.heau-1BL | 1BL | Francolin#1 | [218] |
Lr46/Yr29/Pm39 | 1BL | Saar | [181] |
QPmAPR.lfl-1BL | 1BL | Atlantis | [316] |
QPm.vt-1BL | 1BL | USG 3209 | [324] |
QPm.caas-1BL.1 | 1BL | Zhou8425B | [315] |
QPm.sfr-1B | 1BS | Forno | [118] |
QPm.heau-1DL | 1DL | Francolin#1 | [218] |
QPm.sfr-1D | 1DL | Forno | [118] |
QPm.icg-1D | 1DS | Kinelskaya 60 | [114] |
QPm.inra-1D.1 | 1DS | RE9001 | [326] |
QPm.vt-2A | 2A | Massey | [319,324] |
QPm.vt-2AL | 2AL | USG 3209 | [324] |
QPM.sdau-2A | 2A | Lumai 21 (LM21) | [273] |
QPm.sfr-2A | 2AS | Oberkulmer | [118] |
QPm.vt-2B | 2B | Massey | [319,324] |
QPm.inra.2B | 2B | RE9001 | [326] |
Qaprpm.cgb-2B | 2B | Hanxuan 10 | [325] |
QPm.sdau-2B | 2B | Shannong “SN0431” | [273] |
QPm.caas2BL | 2BL | Lumai 21 | [63,321] |
QPmAPR.lfl-2BL | 2BL | Line 6037 | [316] |
QPm.vt-2BL | 2BL | USG 3209 | [324] |
QPm.caas-2B | 2BL | Fukuho-komugi | [285] |
QPm.uga-2BL | 2BL | 26R61 | [156] |
QPm.inra-2B | 2BL | RE9001 | [326] |
QPm.caas-2BS | 2BS | Lumai 21 | [63,321] |
QPm.caas-2BS.2 | 2BS | Pingyuan 50 | [78] |
QPm.umb-2BS | 2BS | Folke | [327] |
QPm.umb-2DL | 2DL | Folke | [327] |
QPm.caas-2DL | 2DL | Lumai 21 | [64,321] |
QPm.umb-2DL | 2DL | Folke | [327] |
QPm.sfr-2D | 2DL | Oberkulmer | [118] |
QPm.caas-2DS | 2DS | Libellula | [322] |
QPm.inra-2D-a | 2DS | RE9001 | [218] |
QPm.inra-2D-b | 2DS | RE9001 | [118] |
QPm.caas-3BL | 3BL | Mingxian 169 | [78] |
Qaprpm.cgb-3A | 3B | Hanxuan 10 | [325] |
QPm.nuls-3AS | 3AS | Saar | [181] |
QPm.caas-3BS | 3BS | Pingyuan 50 | [78] |
QPm.caas-3BS | 3BS | Zhou8425B | [315] |
QPm.sfr-3D | 3DS | Oberkulmer | [118] |
QPm.tut-4A | 4A | Line 8.1 | [116] |
QPm.uga-4A | 4A | AGS 2000 | [156] |
QPm.sfr-4A.1 | 4AL | Forno | [118] |
QPm.sfr-4A.2 | 4AL | Forno | [118] |
QPm.caas-4BL.1 | 4B | Libellula | [322] |
QPm.heau-4BL | 4BL | Francolin#1 | [218] |
QPm.sfr-4B | 4BL | Forno | [118] |
QPm.caas-4BL.2 | 4BL | Zhou8425B | [315] |
QPm.saas-4AS | 4BS | Chuanmai104 (CM104 | [261] |
QTL qApr4D | 4D | Huapei 3 | [328] |
QPm.caas-4DL | 4DL | Bainong 64 | [63,321] |
QPm.sfr-4D | 4DL | Forno | [118] |
QPm.caas-5AL | 5AL | Pingyuan 50 | [78] |
QPm.nuls-5A | 5AL | Saar | [181] |
QPm.umb-5AL | 5AL | Folke | [327] |
QPm.sfr-5A.2 | 5AL | Oberkulmer | [118] |
QPm.sfr-5A.3 | 5AL | Oberkulmer | [118] |
QPm.icg-5A | 5AS | Kinelskaya 60 | [114] |
QPm.heau-5BL | 5BL | Francolin#1 | [218] |
QPm.sfr-5B | 5BL | Oberkulmer | [118] |
QPm.umb-5BS | 5BS | Folke | [327] |
QPm.nuls-5B | 5BS | Saar | [181] |
QPmyz.caas-5DS | 5BS | Yangmai 16 | [329] |
QPm.inra-5D | 5D | RE714 | [317] |
QPm.inra6A2 | 6A | RE714 | [317] |
QPm.icg-6A | 6AL | Kinelskaya 60 | [114] |
Qaprpm.cgb-6B | 6B | Hanxuan 10 | [325] |
QPm.uga-6BL | 6BL | AGS 2000 | [156] |
QPm.caas-6BL.1 | 6BL | Huixianhong | [318] |
QPm.caas-6BL.2 | 6BL | Huixianhong | [318] |
QPmyz.caas-6BL | 6BL | Zhongmai 895 | [329] |
QPm.caas-6BS | 6BS | Bainong 64 | [321] |
QPm.sfr-6B | 6BS | Forno | [118] |
QPm.umb-6BS | 6BS | Folke | [327] |
QPm.caas-6BS | 6BS | Bainong 64 | [321] |
QPm.caas-7A | 7A | Bainong 64 | [321] |
Qaprpm.cgb-7A | 7A | Hanxuan 10 | [325] |
QPm.sfr-7B.1 | 7BL | Forno | [118] |
QPm.sfr-7B.2 | 7BL | Forno | [118] |
QPm.nuls-7BL | 7BL | Saar | [181] |
QPmyz.caas-7BS | 7BS | Zhongmai 895 | [329] |
QPm.caas-7DS | 7D | Libellula | [318] |
Qaprpm.cgb-7D | 7D | Hanxuan 10 | [325] |
Lr34/Yr18/Pm38 | 7DS | Saar | [181] |
QPm.caas - 7DS | 7DS | Chinese Spring | [315] |
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Share and Cite
Bapela, T.; Shimelis, H.; Terefe, T.; Bourras, S.; Sánchez-Martín, J.; Douchkov, D.; Desiderio, F.; Tsilo, T.J. Breeding Wheat for Powdery Mildew Resistance: Genetic Resources and Methodologies—A Review. Agronomy 2023, 13, 1173. https://doi.org/10.3390/agronomy13041173
Bapela T, Shimelis H, Terefe T, Bourras S, Sánchez-Martín J, Douchkov D, Desiderio F, Tsilo TJ. Breeding Wheat for Powdery Mildew Resistance: Genetic Resources and Methodologies—A Review. Agronomy. 2023; 13(4):1173. https://doi.org/10.3390/agronomy13041173
Chicago/Turabian StyleBapela, Theresa, Hussein Shimelis, Tarekegn Terefe, Salim Bourras, Javier Sánchez-Martín, Dimitar Douchkov, Francesca Desiderio, and Toi John Tsilo. 2023. "Breeding Wheat for Powdery Mildew Resistance: Genetic Resources and Methodologies—A Review" Agronomy 13, no. 4: 1173. https://doi.org/10.3390/agronomy13041173