Exploitation of heterosis loci for yield and yield components in rice using chromosome segment substitution lines.

Yajun Tao, Jinyan Zhu, Jianjun Xu, Liujun Wang, Houwen Gu, Ronghua Zhou, Zefeng Yang, Yong Zhou, Guohua Liang
Author Information
  1. Yajun Tao: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  2. Jinyan Zhu: Institute of Food Crops, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China.
  3. Jianjun Xu: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  4. Liujun Wang: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  5. Houwen Gu: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  6. Ronghua Zhou: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  7. Zefeng Yang: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  8. Yong Zhou: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.
  9. Guohua Liang: Jiangsu Key Laboratory of Crop Genetics and Physiology/Co-Innovation Center for Modern Production Technology of Grain Crops, Key Laboratory of Plant Functional Genomics of the Ministry of Education, Yangzhou University, Yangzhou 225009, China.

Abstract

We constructed 128 chromosome segment substitution lines (CSSLs), derived from a cross between indica rice (Oryza sativa L.) 9311 and japonica rice Nipponbare, to investigate the genetic mechanism of heterosis. Three photo-thermo-sensitive-genic male sterile lines (Guangzhan63-4s, 036s, and Lian99s) were selected to cross with each CSSL to produce testcross populations (TCs). Field experiments were carried out in 2009, 2011, and 2015 to evaluate yield and yield-related traits in the CSSLs and TCs. Four traits (plant height, spikelet per panicle, thousand-grain weight, and grain yield per plant) were significantly related between CSSLs and TCs. In the TCs, plant height, panicle length, seed setting rate, thousand-grain weight, and grain yield per plant showed partial dominance, indicating that dominance largely contributes to heterosis of these five traits. While overdominance may be more important for heterosis of panicles per plant and spikelet per panicle. Based on the bin-maps of CSSLs and TCs, we detected 62 quantitative trait loci (QTLs) and 97 heterotic loci (HLs) using multiple linear regression analyses. Some of these loci were clustered together. The identification of QTLs and HLs for yield and yield-related traits provide useful information for hybrid rice breeding, and help to uncover the genetic basis of rice heterosis.

References

  1. Nature. 2002 Apr 18;416(6882):701-2 [PMID: 11961544]
  2. Theor Appl Genet. 2012 May;124(7):1351-64 [PMID: 22311371]
  3. J Dairy Sci. 2015 Jul;98(7):4904-13 [PMID: 25981069]
  4. Proc Natl Acad Sci U S A. 2012 Sep 25;109(39):15847-52 [PMID: 23019369]
  5. Genetics. 1917 Sep;2(5):466-79 [PMID: 17245892]
  6. BMC Genomics. 2010 Nov 24;11:656 [PMID: 21106060]
  7. Nature. 2016 Sep 29;537(7622):629-633 [PMID: 27602511]
  8. Nat Genet. 2008 Jun;40(6):761-7 [PMID: 18454147]
  9. Sci Rep. 2015 Dec 17;5:18376 [PMID: 26679476]
  10. PLoS One. 2014 Mar 25;9(3):e93122 [PMID: 24667442]
  11. J Exp Bot. 2011 Nov;62(15):5233-9 [PMID: 21841178]
  12. Proc Natl Acad Sci U S A. 2002 Jun 25;99(13):9043-8 [PMID: 12077303]
  13. Genetics. 1992 Jun;131(2):461-9 [PMID: 1644280]
  14. Science. 1910 Nov 4;32(827):627-8 [PMID: 17816706]
  15. J Anim Sci. 2015 Mar;93(3):912-9 [PMID: 26020869]
  16. J Appl Genet. 2015 Feb;56(1):1-13 [PMID: 25027629]
  17. Plant Sci. 2014 Feb;215-216:11-8 [PMID: 24388510]
  18. Genetics. 2005 Mar;169(3):1631-8 [PMID: 15654106]
  19. Science. 1946 May 3;103(2679):547-50 [PMID: 17800109]
  20. Theor Appl Genet. 1992 Feb;83(4):495-9 [PMID: 24202597]
  21. Proc Natl Acad Sci U S A. 2016 Oct 11;113(41):E6026-E6035 [PMID: 27663737]

MeSH Term

Chromosomes, Plant
Genes, Plant
Genetic Enhancement
Genetic Loci
Hybrid Vigor
Hybridization, Genetic
Oryza
Plant Breeding
Quantitative Trait Loci
Seeds

Word Cloud

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