Research Papers

Development of Heat Tolerant Two-Line Hybrid Rice Restorer Line Carrying Dominant Locus of OsHTAS

Expand
  • Zhejiang Key Laboratory of Crop Germplasm Resources, Institute of Crop Science, Zhejiang University, Hangzhou 310058, Zhejiang, China

#These authors contributed equally to this study

Received date: 2020-02-14

  Accepted date: 2020-08-08

  Online published: 2021-01-28

Abstract

In order to create novel germplasm resources for breeding heat tolerant variety, we transferred a dominant allele OsHTAS, previously characterized and cloned from a high-temperature tolerant local variety HT54, which was collected from the rice production area of southern China, into a high- temperature sensitive intermediate breeding line HT13 through six rounds of successive backcross by using marker-assisted selection. The molecular analysis showed that the recovery of genetic background of a resultant near isogenic line (NIL), MHT13, was around 99.8%. The OsHTAS gene introduced in the MHT13 expressed normally in the HT13 genetic background, mediating heat tolerance and phenotype similar to those of the donor parent HT54. The major agronomic traits of MHT13 resembled those of the recurrent parent HT13. Moreover, MHT13 had high general combining ability and its rice quality reached the grade 3 standard of edible high-quality rice issued by Ministry of Agriculture of the People’s Republic of China, which greatly improved its application value in rice production.

Cite this article

Jan Mehmood, Shah Gulmeena, Yuqing Huang, Xuejiao Liu, Peng Zheng, Hao Du, Hao Chen, Jumin Tu . Development of Heat Tolerant Two-Line Hybrid Rice Restorer Line Carrying Dominant Locus of OsHTAS[J]. Rice Science, 2021 , 28(1) : 99 -108 . DOI: 10.1016/j.rsci.2020.11.011

References

[1] Aghamolki M T K, Yusop M K, Oad F C, Zakikhani H, Jaafar H Z, Kharidah S, Musa M H. 2014. Heat stress effects on yield parameters of selected rice cultivars at reproductive growth stages. J Food Agric Environ, 12: 741-746.
[2] Alberio C, Aguirrezábal L A, Izquierdo N G, Reid R, Zuil S, Zambelli A. 2018. Effect of genetic background on the stability of sunflower fatty acid composition in different high oleic mutations. J Food Agric Environ, 98(11): 4074-4084.
[3] Cao Z B, Li Y, Zeng B H, Mao L H, Cai Y H, Wu X F, Yuan L F. 2020. QTL mapping for heat tolerance of chalky grain rate of Oryza glaberrima Steud. Chin J Rice Sci, 34(2): 135-142. (in Chinese with English abstract)
[4] Challinor A J, Watson J, Lobell D B, Howden S M, Smith D R, Chhetri N. 2014. A meta-analysis of crop yield under climate change and adaptation. Nat Clim Change, 4: 287-291.
[5] Cheabu S, Panichawong N, Rattanametta P, Wasuri B, Kasemsap P, Arikit S, Vanavichit A, Malumpong C. 2019. Screening for spikelet fertility and validation of heat tolerance in a large rice mutant population. Rice Sci, 26(4): 229-238.
[6] Cheng L R, Wang J M, Uzokwe V, Meng L J, Wang Y, Sun Y, Zhu L H, Xu J L, Li Z K. 2012. Genetic analysis of cold tolerance at seedling stage and heat tolerance at anthesis in rice (Oryza sativa L.). J Integr Agric, 11(3): 359-367.
[7] Collard B C, Mackill D J. 2008. Marker-assisted selection: An approach for precision plant breeding in the twenty-first century. Philos Trans Royal Soc B Biol Sci, 363: 557-572.
[8] Dellaporta S L, Wood J, Hicks J B. 1983. A plant DNA minipreparation: Version II. Plant Mol Biol Rep, 1: 19-21.
[9] Driedonks N, Rieu I, Vriezen W H. 2016. Breeding for plant heat tolerance at vegetative and reproductive stages. Plant Reprod, 29: 67-79.
[10] El-Esawi M A, Alayafi A A. 2019. Overexpression of rice Rab7 gene improves drought and heat tolerance and increases grain yield in rice(Oryza sativa L.). Genes, 10(1): 56.
[11] Fahad S, Hussain S, Saud S, Hassan S, Tanveer M, Ihsan M Z, Shah A N, Ullah A, Nasrullah, Khan F, Ullah S, Alharby H F, Nasim W, Wu C, Huang J L. 2016. A combined application of biochar and phosphorus alleviates heat-induced adversities on physiological, agronomical and quality attributes of rice. Plant Physiol Biochem, 103: 191-198.
[12] Fang Y J, Liao K F, Du H, Xu Y, Song H Z, Li X H, Xiong L Z. 2015. A stress-responsive NAC transcription factor SNAC3 confers heat and drought tolerance through modulation of reactive oxygen species in rice. J Exp Bot, 66(21): 6803-6817.
[13] Feng H Y, Jiang H L, Wang Meng, Tang X R, Duan M Y, Pan S G, Tian H, Wang S L, Mo Z W. 2019. Morphophysiological responses of different scented rice varieties to high temperature at seedling stage. Chin J Rice Sci, 33(1): 68-74. (in Chinese with English abstract)
[14] Figueiredo N, Carranca C, Trindade H, Pereira J, Goufo P, Coutinho J, Marques P, Maricato R, de Varennes A. 2015. Elevated carbon dioxide and temperature effects on rice yield, leaf greenness, and phenological stages duration. Paddy Water Environ, 13: 313-324.
[15] Gallois J L, Moury B, German-Retana S. 2018. Role of the genetic background in resistance to plant viruses. Int J Mol Sci, 19(10): 2856.
[16] Jagadish S V K, Cairns J, Lafitte R, Wheeler T R, Price A H, Craufurd P Q. 2010. Genetic analysis of heat tolerance at anthesis in rice. Crop Sci, 50(5): 1633-1641.
[17] Kilasi N L, Singh J, Vallejos C E, Ye C R, Jagadish S V K, Kusolwa P, Rathinasabapathi B. 2018. Heat stress tolerance in rice (Oryza sativa L.): Identification of quantitative trait loci and candidate genes for seedling growth under heat stress. Front Plant Sci, 9: 1578.
[18] Kunimitsu Y, Iizumi T, Yokozawa M. 2014. Is long-term climate change beneficial or harmful for rice total factor productivity in Japan: Evidence from a panel data analysis. Paddy Water Environ, 12: 213-225.
[19] Lei D Y, Tan L B, Liu F X, Chen L Y, Sun C Q. 2013. Identification of heat-sensitive QTL derived from common wild rice (Oryza rufipogon Griff.). Plant Sci, 201/202: 121-127.
[20] Lesk C, Rowhani P, Ramankutty N. 2016. Influence of extreme weather disasters on global crop production. Nature, 529: 84-87.
[21] Li X M, Chao D Y, Wu Y, Huang X H, Chen K, Cui L G, Su L, Ye W W, Chen H, Chen H C, Dong N Q, Guo T, Shi M, Feng Q, Zhang P, Han B, Shan J X, Gao J P, Lin H X. 2015. Natural alleles of a proteasome α2 subunit gene contribute to thermo- tolerance and adaptation of African rice. Nat Genet, 47: 827-833.
[22] Li X, Lawas L M F, Malo R, Glaubitz U, Erban A, Mauleon R, Heuer S, Zuther E, Kopka J, Hincha D K, Jagadish K S V. 2015. Metabolic and transcriptomic signatures of rice floral organs reveal sugar starvation as a factor in reproductive failure under heat and drought stress. Plant Cell Environ, 38(10): 2171-2192.
[23] Liu J P, Sun X J, Xu F Y, Zhang Y J, Zhang Q, Miao R, Zhang J H, Liang J S, Xu W F. 2018. Suppression of OsMDHAR4 enhances heat tolerance by mediating H2O2-induced stomatal closure in rice plants. Rice, 11: 38.
[24] Liu J P, Zhang C C, Wei C C, Liu X, Wang M G, Yu F F, Xie Q, Tu J M. 2016. The RING finger ubiquitin E3 ligase OsHTAS enhances heat tolerance by promoting H2O2-induced stomatal closure in rice. Plant Physiol, 170(1): 429-443.
[25] Liu X H, Lyu Y S, Yang W P, Yang Z T, Lu S J, Liu J X. 2019. A membrane-associated NAC transcription factor OsNTL3 is involved in thermo tolerance in rice. Plant Biotechnol J, 18(5): 1317-1329.
[26] Livak K J, Schmittgen T D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method. Methods, 25(4): 402-408.
[27] Ministry of Agriculture of the People’s Republic of China. 2013. Cooking Rice Variety Quality. Agricultural Industry Standard of the People’s Republic of China. NY/T 593-2013.
[28] Mishra N, Srivastava A P, Esmaeili N, Hu W J, Shen G X. 2018. Overexpression of the rice gene OsSIZ1 in Arabidopsis improves drought-, heat-, and salt-tolerance simultaneously. PLoS One, 13(8): e0201716.
[29] Nakurte I, Keisa A, Rostoks N. 2012. Development and validation of a reversed-phase liquid chromatography method for the simultaneous determination of indole-3-acetic acid, indole-3- pyruvic acid, and abscisic acid in barley (Hordeum vulgare L.). J Anal Methods Chem, 2012: 103575.
[30] Panaud O, Chen X, McCouch S. 1996. Development of microsatellite markers and characterization of simple sequence length polymorphism (SSLP) in rice (Oryza sativa L.). Mol Gen Genet, 252(5): 597-607.
[31] Chen Q Q, Yu S B, Li C H. 2008. Identification of QTLs for heat tolerance at flowering stage in rice. Sci Agric Sin, 41(2): 315-321.
[32] Sato H, Todaka D, Kudo M, Mizoi J, Kidokoro S, Zhao Y, Shinozaki K, Yamaguchi-Shinozaki K. 2016. The Arabidopsis transcriptional regulator DPB 3-1 enhances heat stress tolerance without growth retardation in rice. Plant Biotechnol J, 14(8): 1756-1767.
[33] Shandil R K, Chakrabarti S K, Singh B P, Sharma S, Sundaresha S, Kaushik S K, Bhatt A K, Sharma N N. 2017. Genotypic background of the recipient plant is crucial for conferring RB gene mediated late blight resistance in potato. BMC Genet, 18(1): 22.
[34] Shanmugavadivel P S, Sv A M, Prakash C, Mk R, Tiwari R, Mohapatra T, Singh N K. 2017. High resolution mapping of QTLs for heat tolerance in rice using a 5K SNP array. Rice, 10: 28.
[35] Shen H, Zhong X B, Zhao F F, Wang Y M, Yan B X, Li Q, Chen G Y, Mao B Z, Wang J J, Li Y S, Xiao G Y, He Y K, Xiao H, Li J M, He Z H. 2015. Overexpression of receptor-like kinase ERECTA improves thermotolerance in rice and tomato. Nat Biotechnol, 33: 996-1003.
[36] Shi W J, Yin X Y, Struik P C, Solis C, Xie F M, Schmidt R C, Huang M, Zou Y B, Ye C R, Jagadish S V K. 2017. High day- and night-time temperatures affect grain growth dynamics in contrasting rice genotypes. J Exp Bot, 68(18): 5233-5245.
[37] Wei H, Liu J P, Wang Y, Huang N R, Zhang X B, Wang L C, Zhang J W, Tu J M, Zhong X H. 2013. A dominant major locus in chromosome 9 of rice (Oryza sativa L.) confers tolerance to 48 ºC high temperature at seedling stage. J Hered, 104(2): 287-294.
[38] Xu Y Y, Ramanathan V, Victor D G. 2018. Global warming will happen faster than we think. Nature, 564: 30-32.
[39] Ye C R, Argayoso M A, Redoña E D, Sierra S N, Laza M A, Dilla C J, Mo Y J, Thomson M J, Chin J H, Delaviña C B, Diaz G Q, Hernandez J E. 2012. Mapping QTL for heat tolerance at flowering stage in rice using SNP markers. Plant Breeding, 131(1): 33-41.
[40] Ye C R, Tenorio F A, Argayoso M A, Laza M A, Koh H J, Redona E D, Jagadish K S V, Gregorio G B. 2015a. Identifying and confirming quantitative trait loci associated with heat tolerance at flowering stage in different rice populations. BMC Genet, 16: 41.
[41] Ye C R, Tenorio F A, Redoña E D, Morales-Cortezano P S, Cabrega G A, Jagadish K S V, Gregorio G B. 2015b. Fine- mapping and validating qHTSF4.1 to increase spikelet fertility under heat stress at flowering in rice. Theor Appl Genet, 128: 1507-1517.
[42] Zhang C C, Yuan W Y, Zhang Q F. 2012. RPL1, a gene involved in epigenetic processes regulates phenotypic plasticity in rice. Mol Plant, 5(2): 482-493.
[43] Zhang Y E, Xu W Y, Li Z H, Deng X W, Wu W H, Xue Y B. 2008. F-box protein DOR functions as a novel inhibitory factor for abscisic acid-induced stomatal closure under drought stress in Arabidopsis. Plant Physiol, 148(4): 2121-2133.
[44] Zhao C, Liu B, Piao S L, Wang X H, Lobell D B, Huang Y, Huang M T, Yao Y T, Bassu S, Ciais P, Durand J L, Elliott J, Ewert F, Janssens I A, Li T, Lin E, Liu Q, Martre P, Muller C, Peng S S, Penuelas J, Ruane A C, Wallach D, Wang T, Wu D H, Liu Z, Zhu Y, Zhu Z C, Asseng S. 2017. Temperature increase reduces global yields of major crops in four independent estimates. Proc Natl Acad Sci USA, 114: 9326-9331.
[45] Zhao L, Lei J G, Huang Y J, Zhu S, Chen H P, Huang R L, Peng Z Q, Tu Q H, Shen X H, Yan S. 2016. Mapping quantitative trait loci for heat tolerance at anthesis in rice using chromosomal segment substitution lines. Breeding Sci, 66(3): 358-366.
[46] Zhao Z G, Jiang L, Xiao Y H, Zhang W W, Zhai H Q, Wan J M. 2006. Identification of QTLs for heat tolerance at the booting stage in rice (Oryza sativa L.) Acta Agron Sin, 32(5): 640-644.
[47] Zhou Y, Cao Y L, Huang Y, Xie W B, Xu C G, Li X H, Wang S P. 2009. Multiple gene loci affecting genetic background-controlled disease resistance conferred by R gene Xa3/Xa26 in rice. Theor Appl Genet, 120(1): 127-138.
[48] Zhu S, Huang R L, Wai H P, Xiong H L, Shen X H, He H H, Yan S. 2017. Mapping quantitative trait loci for heat tolerance at the booting stage using chromosomal segment substitution lines in rice. Physiol Mol Biol Plants, 23: 817-825.
Outlines

/

浙ICP备05004719号-15   公安备案号:33010302003355
Copyright © Editorial office of Rice Science
Tel: 0571-63371017 E-mail: crrn@fy.hz.zn.cn; cjrs278@gmail.com
Supported by Beijing Magtech Co., Ltd.
Total visitors:  Visitors of today:  Now online: