| Literature DB >> 28983868 |
Yaling Zhang1,2, Qiongle Zhu1, Yongxiang Yao1,3, Zhenghong Zhao4, James C Correll5, Ling Wang1, Qinghua Pan6.
Abstract
BACKGROUND: Rice blast, caused by the ascomycete Magnaporthe oryzae (Mo), imposes a major constraint on rice productivity. Managing the disease through the deployment of host resistance requires a close understanding of race structure of the pathogen population.Entities:
Keywords: Differential cultivar; Magnaporthe oryzae; Oryza sativa; Race structure; Resistance gene
Year: 2017 PMID: 28983868 PMCID: PMC5629185 DOI: 10.1186/s12284-017-0185-y
Source DB: PubMed Journal: Rice (N Y) ISSN: 1939-8425 Impact factor: 4.783
Race diversity detected by the two differential sets in the four Mo populations
| GDa | HN | LN | HLJ | |
|---|---|---|---|---|
| CDC setb | ||||
| No. of race group | 8 | 7 | 7 | 4 |
| No. of race | 18 | 17 | 12 | 7 |
| Race frequency (%) | 30.0 | 28.3 | 20.0 | 11.7 |
| Race diversity index | 0.86 | 0.86 | 0.74 | 0.50 |
| JDC set | ||||
| No. of race | 30 | 27 | 28 | 29 |
| Race frequency (%) | 50.0 | 45.0 | 46.7 | 48.3 |
| Race diversity index | 0.94 | 0.95 | 0.93 | 0.95 |
aThe four populations, each consists of 60 isolates, were selected from Guangdong (GD) and Hunan (HN) in southern, and Liaoning (LN) and Heilongjing (HLJ) in northeastern parts of China (also see Additional fie 1: Table S1)
bCDC, Chinese differential cultivars; JDC, Japanese differential cultivars
Specific race structures shaped by the two differential sets in the four Mo populations
| Racec | Isolated | ||||
|---|---|---|---|---|---|
| Populationa | Specific race (No. of isolates)b | No. | % | No. | % |
| CDC set | |||||
| GD | ZB17 (1), ZB21 (2), ZB23 (1), ZC16 (1) | 4 | 22.2 | 5 | 8.3 |
| HN | ZA47 (2), ZA45 (1), ZB13 (2), ZD4 (1) | 4 | 23.5 | 6 | 10.0 |
| LN | ZA41 (1), ZA9 (1), ZD2 (1) | 3 | 25.0 | 3 | 5.0 |
| HLJ | ZA59 (1) | 1 | 14.3 | 1 | 1.7 |
| JDC set | |||||
| GD | 000.4 (1), 003.4 (1), 004.0 (2), 004.4 (2), 007.4 (2), 007.7 (1), 016.4 (1), 032.7 (1), 036.5 (1), 137.5 (1), 203.6 (1), 207.6 (1), 400.4 (1), 402.4 (1), 402.6 (1), 404.6 (1), 406.4 (1), 406.6 (1), 407.6 (1), 606.6 (1), 606.7 (1), 607.4 (1) | 22 | 73.3 | 26 | 43.3 |
| HN | 002.0 (7), 002.3 (1), 002.6 (2), 003.0 (1), 006.0 (5), 006.6 (2), 017.7 (1), 026.4 (1), 503.2 (1), 600.4 (1), 602.2 (1), 603.2 (2), 603.6 (4), 703.0 (1), 703.2 (5), 703.6 (1), 707.4 (1), 707.6 (2) | 18 | 66.7 | 39 | 65.0 |
| LN | 003.2 (14), 007.2 (1), 016.0 (1), 037.3 (1), 047.2 (1), 047.4 (1), 047.6 (1), 103.0 (3), 106.2 (1), 107.2 (3), 107.6 (1), 117.3 (3), 137.3 (2), 143.0 (1), 613.3 (2), 633.3 (2), 633.5 (1), 633.7 (2), 637.7 (3) | 19 | 67.9 | 44 | 73.3 |
| HLJ | 000.1 (1), 002.4 (1), 003.7 (1), 007.5 (1), 016.5 (1) 017.5 (2), 017.3 (1), 020.4 (1), 033.1 (2), 037.7 (1), 055.7 (1), 057.5 (2), 057.7 (3), 077.1 (2), 077.7 (6), 133.1 (1), 137.3 (1), 437.2 (1), 635.5 (1), 637.5 (1), 737.1 (7) | 21 | 72.4 | 38 | 63.3 |
aCDC, Chinese Differential Cultivar; JDC, Japanese Differential Cultivar; GD, Guangdong; HN, Hunan, LN, Liaoning, and HLJ, Heilongjing provinces of China
bRaces were ordered by their code alphabets and numbers (also see Additional file 1: Table S1)
cThe total of races were 18, 17, 12, 7 in GD, HN, LN, and HLJ, respectively, by CDC set, and 30, 27, 28, 29, respectively, by JDC set (also see Table 1)
dEach population consists of 60 isolates
Dominant race structures shaped by the two differential sets in the four Mo populations
| Populationa | Dominant races and their frequenciesb | Top-three (%) | |||||
|---|---|---|---|---|---|---|---|
| 1st (Isolates) | % | 2nd (Isolates) | % | 3rd (Isolates) | % | ||
| CDC set | |||||||
| GD | ZG1 (19) | 31.7 | ZC15 (10) | 16.7 | ZF1 (7) | 11.7 | 60.0 |
| HN | ZC15 (17) | 28.3 | ZG1 (14) | 23.3 | ZC13 (7) | 11.7 | 63.3 |
| LN | ZF1 (25) | 41.7 | ZE1 (18) | 30.0 | ZA57 (5) | 8.3 | 80.0 |
| HLJ | ZE1 (42) | 70.0 | ZA57 (5) | 8.3 | ZF1 (4) | 6.7 | 85.0 |
| JDC set | |||||||
| GD | 006.4 (10) | 16.7 | 000.0 (9) | 15.0 | 607.6 (5) | 8.3 | 40.0 |
| HN | 006.4 (9) | 15.0 | 002.0 (7) | 11.7 | 006.0 (5), 703.2 (5) | 16.7 | 43.3 |
| LN | 003.2 (14) | 23.3 | 637.3 (5) | 8.3 | 637.7 (3), 103.0 (3), 117.3 (3), 107.2 (3) | 20.0 | 51.7 |
| HLJ | 037.5 (10) | 16.7 | 737.1 (7) | 11.7 | 077.7 (6) | 10.0 | 38.3 |
aCDC, Chinese differential cultivar; JDC, Japanese differential cultivar; GD, Guangdong; HN, Hunan, LN, Liaoning, and HLJ, Heilongjing provinces of China
bEach population consists of 60 isolates
Resistance frequencies of the two sets of differentials in the four Mo populations
| Resistance frequency (%)c | |||||
|---|---|---|---|---|---|
| Cultivara | Resistance geneb | GD | HN | LN | HLJ |
| CDC set | |||||
| Tetep |
|
|
|
|
|
| Zhenlong 13 |
|
|
|
|
|
| Sifeng 43 |
| 68.3 | 41.7 |
|
|
| Dongnong 363 |
| 76.7 |
|
|
|
| Kando 51 |
|
|
| 51.7 | 15.0 |
| Hejiang 18 |
| 63.3δ | 68.3δ | 8.3 | 13.3 |
| LTH |
| 6.7 | 10.0 | 3.3 | 8.3 |
| JDC set | |||||
| Shin 2 |
| 63.3 | 58.3 | 6.7 | 11.7 |
| Aichi Asahi |
| 26.7 | 8.3 | 0 | 11.7 |
| Fujisaka 5 |
| 28.3 | 55.0 | 43.3 | 16.7 |
| Kusabue |
|
|
| 51.7 | 15.0 |
| Tsuyuake |
|
|
| 61.7 | 30.0 |
| Fukunishiki |
|
|
|
| 71.7 |
| K1 |
|
| 81.7 | 73.3 | 83.1 |
| Pi4 No. 4 |
| 75.0 | 66.7 | 71.7 | 81.7 |
| Toride 1 |
| 68.3 | 65.0 | 71.7 | 80.0 |
| K60 |
| 80.0 |
| 53.3 | 11.7 |
| BL1 |
| 63.3 | 55.0 | 28.3 | 73.3 |
| K59 |
| 20.0 | 48.3 | 76.7 | 43.3 |
aCDC, Chinese differential cultivar; JDC, Japanese differential cultivar
bThe Pi genes in the CDCs were adopted from Kiyosawa and Ling (1984), Mackill and Bonman (1992), Rai et al. (2011), Hua et al. (2012), and Singh et al. (2015), and those in JDCs from Kiyosawa (1981), Imbe and Matsumoto (1985); and Hayashi et al. (1998). The additional resistance genes in the CDCs given by α, β, γ, δ, and ε those were predicted in the current study by comparison of resistance frequencies between CDCs and JDCs carrying the same Pi genes
cThe bold-faced ones were recognized as the higher resistance cultivar