scholarly journals Molecular Breeding of a Novel PTGMS Line of WDR for Broad-Spectrum Resistance to Blast Using Pi9, Pi5, and Pi54 Genes

Rice ◽  
2021 ◽  
Vol 14 (1) ◽  
Author(s):  
Yi Liu ◽  
Fenyun Zhang ◽  
Xingxing Luo ◽  
Deyan Kong ◽  
Anning Zhang ◽  
...  

Abstract Background The two-line method based on the photoperiod and thermo-sensitive genic male sterile (PTGMS) lines is more cost-effective, simple, and efficient than the three-line system based on cytoplasmic male-sterility. Blast and drought are the most prevalent biotic and abiotic stress factors hampering rice production. Molecular techniques demonstrate higher efficacy in the pyramiding of disease resistance genes, providing green performance under the background of water-saving and drought-resistance rice. Results This study employed molecular marker-assisted selection, conventional hybridization, and high-intensity stress screening to integrate three broad-spectrum blast resistance genes Pi9, Pi5, and Pi54 into Huhan 1S. Subsequently, a novel water-saving and drought-resistance rice (WDR) PTGMS line Huhan 74S was developed. The drought resistance of the new PTGMS line Huhan 74S was comparable to that of Huhan 1S. Pathogenicity assays involving the inoculation of 14 blast prevalent isolates in the glasshouse showed that the blast resistance frequency of Huhan 74S was 85.7%. Further evaluation under natural blast epidemic field conditions showed that Huhan 74S and its hybrids were resistant to leaf and neck blast. The critical temperature point of fertility-sterility alteration of Huhan 74S was 23 °C daily mean temperature. The complete male sterility under natural growth conditions in 2017 at Shanghai lasted for 67 days. Also, both the agronomic and grain quality traits met the requirement for two-line hybrid rice production. Conclusion These results indicate that the newly bred PTGMS line Huhan 74S can be used to breed high-yielding, good-quality, disease-resistant two-line hybrid water-saving and drought-resistance rice (WDR), hence promoting sustainable rice production in China.

2021 ◽  
Author(s):  
Yi Liu ◽  
Fenyun Zhang ◽  
Xingxing Luo ◽  
Deyan Kong ◽  
Anning Zhang ◽  
...  

Abstract Background: The two-line method based on the photoperiod and thermo-sensitive genic male sterile (PTGMS) lines is more cost-effective, simple, and efficient than the three-line system based on cytoplasmic male-sterility (CMS). Blast and drought are the most prevalent biotic and abiotic stress factors that hamper rice production, respectively. Molecular techniques demonstrate higher efficacy in the pyramiding of disease resistance genes, providing green performance under the background of water-saving and drought-resistance rice.Results: This work employed molecular marker-assisted selection (MAS), conventional hybridization and high-intensity stress screening to integrate the broad-spectrum blast resistance genes Pi9, Pikh, and Pi5 into Huhan 1S. Subsequently a novel water-saving and drought-resistance rice (WDR) PTGMS line Huhan 74S was developed. The drought resistance of the new PTGMS line Huhan 74S was comparable to that of Huhan 1S. The artificial inoculation of 14 blast strains revealed that the resistance frequency of Huhan 74S was 85.7%. Based on the conditions of natural field induction, Huhan 74S and its hybrid combination revealed satisfactory resistance to leaf and neck blast. The identification outcomes of photo-thermal characteristics showed that the critical point of Huhan 74S fertility conversion had an average daily temperature of 23℃, and the stable sterile period in Shanghai lasted 51 days. The rice quality of Huhan 74S was grade 3 based on standards issued by the ministry. Also, both the agronomic and rice quality performances adhered to the conditions of two-line hybrid rice production.Conclusion: The newly bred PTGMS line Huhan 74S demonstrated a stable and lasting resistance to blast. Moreover, the hybrid combination showed a high yield potential and can be used in the breeding of high-yield, high-quality, disease-resistance two-line hybrid water-saving and drought-resistance rice (WDR), hence promoting sustainable rice production in China.


2013 ◽  
Vol 39 (11) ◽  
pp. 1927 ◽  
Author(s):  
Miao-Miao YU ◽  
Zheng-Yuan DAI ◽  
Cun-Hong PAN ◽  
Xi-Jun CHEN ◽  
Ling YU ◽  
...  

Rice Science ◽  
2021 ◽  
Vol 28 (5) ◽  
pp. 493-500
Author(s):  
Vishalakshi Balija ◽  
Umakanth Bangale ◽  
Senguttuvel Ponnuvel ◽  
Kalyani Makarand Barbadikar ◽  
Srinivas Prasad Madamshetty ◽  
...  

2017 ◽  
Vol 36 (11) ◽  
pp. 1747-1755 ◽  
Author(s):  
Mandeep Kumari ◽  
Amit Kumar Rai ◽  
B. N. Devanna ◽  
Pankaj Kumar Singh ◽  
Ritu Kapoor ◽  
...  

2016 ◽  
Vol 97 (9) ◽  
pp. 2810-2818 ◽  
Author(s):  
Gous Miah ◽  
Mohd Y Rafii ◽  
Mohd R Ismail ◽  
Adam B Puteh ◽  
Harun A Rahim ◽  
...  

Rice Science ◽  
2014 ◽  
Vol 21 (4) ◽  
pp. 210-216 ◽  
Author(s):  
Xing-bin DU ◽  
Chen CHEN ◽  
Li-jun LUO ◽  
Long-ping XIA ◽  
Kang LIU ◽  
...  

2010 ◽  
Vol 26 (4) ◽  
pp. 595-617 ◽  
Author(s):  
G. Tacconi ◽  
V. Baldassarre ◽  
C. Lanzanova ◽  
O. Faivre-Rampant ◽  
S. Cavigiolo ◽  
...  

2019 ◽  
Vol 374 (1767) ◽  
pp. 20180308 ◽  
Author(s):  
Zhen Xie ◽  
Bingxiao Yan ◽  
Jianyao Shou ◽  
Jun Tang ◽  
Xin Wang ◽  
...  

Rice blast caused by Magnaporthe oryzae is the most destructive fungal disease in crops, greatly threatening rice production and food security worldwide. The identification and utilization of broad-spectrum resistance genes are considered to be the most economic and effective method to control the disease. In the past decade, many blast resistance ( R ) genes have been identified, which mainly encode nucleotide-binding leucine-rich repeat (NLR) receptor family and confer limited race-specific resistance to the fungal pathogen. Resistance genes conferring broad-spectrum blast resistance are still largely lacking. In this study, we carried out a map-based cloning of the new blast R locus Pizh in variety ZH11. A bacterial artificial chromosome (BAC) clone of 165 kb spanning the Pizh locus was sequenced and identified 9 NLR genes, among which only Pizh-1 and Pizh-2 were expressed. Genetic complementation experiments indicated that Pizh-1 but not Pizh-2 alone could confer blast resistance. Intriguingly, both mutations on Pizh-1 and Pizh-2 by CRISPR-Cas9 abolished the Pizh- mediated resistance. We also observed that Pizh-1 -mediated resistance was partially dependent on Pizh-2 . Pizh-1 and Pizh-2 form a complex of NLRs through direct interaction. This suggests that Pizh-1 may function as the executor NLR and Pizh-2 as a ‘helper’ NLR that shares functional redundancy with other NLRs. Our current study provides not only a good tool for rice disease resistance breeding but also deep insight into NLR association and function in plant immunity. This article is part of the theme issue ‘Biotic signalling sheds light on smart pest management’.


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