Allele mining for a drought responsive gene DRO1 determining root growth angle in donors of drought tolerance in rice (Oryza sativa L.)

被引:0
作者
Bablee Kumari Singh
M. K. Ramkumar
Monika Dalal
Archana Singh
Amolkumar U. Solanke
Nagendra K. Singh
Amitha Mithra Sevanthi
机构
[1] Indian Council of Agricultural Research- National Institute for Plant Biotechnology,Division of Biochemistry
[2] Indian Agricultural Research Institute,undefined
来源
Physiology and Molecular Biology of Plants | 2021年 / 27卷
关键词
Rice; Drought stress; Root growth angle; Allele mining;
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摘要
Deeper Rooting 1 (DRO1) gene identified from a major QTL on chromosome 9 increases the root growth angle (RGA) and thus facilitates survival under drought and hence is an excellent candidate for rice improvement. Twenty-four major Indian upland and lowland genotypes including the ‘yield under drought’ (DTY) QTL donors were subjected to allele mining of DRO1 (3058 bp) using four pairs of overlapping primers. A total of 216 and 52 SNPs were identified across all genotypes in the gene and coding region (756 bp) respectively with transversions 3.6 fold more common than transitions in the gene and 2.5 times in the CDS. In 251 amino acid long protein, substitutions were found in 19 positions, wherein change in position 92 was the most frequent. Based on allele mining, the 24 genotypes can be classified into 16 primary structure variants ranging from complete functional allele (Satti, IR36 and DTY 3.1 donor, IR81896-B-B-195) to truncated non-functional alleles in PMK2, IR64, IR20 and Swarna. All the DTY donors, other than IR81896-B-B-195, and most of the upland drought tolerant cultivars (Nagina 22, Vandana and Dhagaddeshi) had accumulated 6–19 SNPs and 4–8 amino acid substitutions resulting in substantial differences in their protein structure. The expression analysis revealed that all the genotypes showed upregulation under drought stress though the degree of upregulation varied among genotypes. The information on structural variations in DRO1 gene will be very useful for the breeders, especially in the light of recent breeding programmes on improving drought tolerance using several DTY donors and upland accessions.
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页码:523 / 534
页数:11
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  • [1] Babu RC(2004)HVA1, a LEA gene from barley confers dehydration tolerance in transgenic rice ( Plant Sci 166 855-862
  • [2] Zhang JX(2006) L.) via cell membrane protection Theor Appl Genet 113 1171-1183
  • [3] Blum A(2019)Nucleotide diversity in starch synthaseIIa and validation of single nucleotide polymorphisms in relation to starch gelatinization temperature and other physicochemical properties in rice ( PLoS ONE 14 e0214979-428
  • [4] Ho THD(1962) L.) Aust J Biol Sci 15 413-1563
  • [5] Wu R(2016)Genetic mapping of morpho-physiological traits involved during reproductive stage drought tolerance in rice F1000 Res 5 1554-253
  • [6] Nguyen HT(2006)A re-examination of the relative turgidity technique for estimating water deficits in leaves Field Crops Res 97 248-1168
  • [7] Bao JS(2005)Plant adaptation to drought stress Aust J Agric Res 56 1159-10
  • [8] Corke H(2017)Water deficit effects on root distribution of soybean, field pea and chickpea Plant Cell Environ 40 4-128
  • [9] Sun M(2009)Drought resistance, water-use efficiency, and yield potential-are they compatible, dissonant, or mutually exclusive? Rice 2 115-61
  • [10] Barik SR(2013)Osmotic adjustment is a prime drought stress adaptive engine in support of plant production Euphytica 192 55-15