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Pinto RS, Reynolds MP (2015) Common genetic basis for canopy temperature depression under
heat and drought stress associated with optimized root distribution in bread wheat. Theor Appl
Genet 128(4):575–585
Poland JA, Rife TW (2012) Genotyping-by-sequencing for plant breeding and genetics. Plant
Genome 5:92–102
Pradhan A, Naik N, Sahoo KK (2015) RNAi mediated drought and salinity stress tolerance in
plants. Am J Plant Sci 6:1990–2008
Prince SJ, Song L, Qiu D, dos Santos JVM, Chai C, Joshi T, Patil G, Valliyodan B, Vuong TD,
Murphy M (2015a) Genetic variants in root architecture-related genes in a Glycine soja
accession, a potential resource to improve cultivated soybean. BMC Genomics 16:132
Prince SJ, Joshi T, Mutavaa RN, Syed N, dos Santos JVM, Patil G, Songa L, Wang JJ, Lina L,
Chena W, Shannona JG, Valliyodana B, Xub D, Nguyen HT (2015b) Comparative analysis of
the drought responsive transcriptome in soybean lines contrasting for canopy wilting. Plant Sci
240:65–78. https://doi.org/10.1016/j.plantsci.2015.08.017
Purcell LC, DeSilva M, King CA, Kim WH (1997) Biomass accumulation and allocation in
soybean associated with genotypic differences in tolerance of nitrogen fixation to water deficits.
Plant Soil 196(1):101–113. https://doi.org/10.1023/A:1004289609466
Qi X, Li MW, Xie M, Liu X, Ni M, Shao G, Song C, Kay-Yuen Yim A, Tao Y, Wong FL, Isobe S,
Wong CF, Wong KS, Xu C, Li C, Wang Y, Guan R, Sun F, Fan G, Xiao Z, Zhou F, Phang TH,
Liu X, Tong SW, Chan TF, Yiu SM, Tabata S, Wang J, Xu X, Lam HM (2014) Identification of
a novel salt tolerance gene in wild soybean by whole-genome sequencing. Nat Commun 5:4340
Qin H, Wang Y, Wang J, Liu H, Zhao H, Deng Z, Zhang Z, Huang R, Zhang Z (2016) Knocking
down the expression of GMPase gene OsVTC1-1 decreases salt tolerance of rice at seedling and
reproductive stages. PLoS One 11(12):e0168650. https://doi.org/10.1371/journal.pone.
0168650
Qiu PC, Zhang WB, Li CD, Jiang HW, Liu CY, Fan DM, Zeng QL, Hu HG, Chen QS (2011)
Genetic overlap of drought-tolerance loci between germination stage and seedling stage
analyzed using introgression lines in soybean. Acta Agron Sin 37(3):477–483. https://doi.org/
10.3724/SP.J.1006.2011.00477
Qiu J, Wang Y, Wu S, Wang Y-Y, Ye C-Y, Bai X, Li Z, Yan C, Wang W, Wang Z (2014) Genome
re-sequencing of semi-wild soybean reveals a complex soja population structure and deep
introgression. PLoS One 9:e108479
Rabara RC, Tripathi P, Lin J, Rushton PJ (2013) Dehydration-induced WRKY genes from tobacco
and soybean respond to jasmonic acid treatments in BY-2 cell culture. Biochem Biophys Res
Commun 431:409–414
Rabara RC, Tripathi P, Rushton PJ (2014) The potential of transcription factor-based genetic
engineering in improving crop tolerance to drought. OMICS J Integr Biol 18(10):601–614
Ramegowda V, Gill US, Sivalingam PN, Gupta A, Gupta C, Govind G, Nataraja KN, Pereira A,
Udayakumar M, Mysore KS, Senthil-Kumar M (2017) GBF3 transcription factor imparts
drought tolerance in Arabidopsis thaliana. Sci Rep 7:9148. https://doi.org/10.1038/s41598017-09542-1
Rao SS, El-Habbak MH, Havens WM, Singh AK, Zheng D, Vaughn L, Haudenshield JS, Hartman
GL, Korban SS, Ghabrial SA (2014) Overexpression of GmCaM4 in soybean enhances
resistance to pathogens and tolerance to salt stress. Mol Plant Pathol 15:145–160
Ratnakumar P, Vadez V (2011) Groundnut (Arachis hypogaea) genotypes tolerant to intermittent
drought maintains a high harvest index and have small leaf canopy under stress. Funct Plant Biol
38:1016–1102
Ratnaparkhe MB, Ramesh SV, Giriraj Kumawat, Husain SM, Sanjay Gupta (2014) Soybean
Genomics. In Legumes in the Omic Era, Gupta S eds, Springer Heidelberg pp 41-72
Ratnaparkhe MB, Marmat N, Kumawat G, Shivakumar M, Viraj Kamble, Nataraj V, Deshmukh
MP, Ramesh SV, Singh AK, Sonha H, Deshmukh R, Prasad M , Chand S, S Gupta (2020)
124
G. K. Satpute et al.
