Sinclair TR, Purcell LC, King CA, Sneller CH, Chen P, Vadez V (2007) Drought tolerance and
yield increase of soybean resulting from improved symbiotic N2 fixation. Field Crop Res 101
(1):68–71. https://doi.org/10.1016/j.fcr.2006.09.010
Sinclair TR, Zwieniecki MA, Holbrook NM (2008) Low leaf hydraulic conductance associated
with drought tolerance in soybean. Physiol Plant 132:446–451
Sinclair TR, Messina CD, Beatty A, Samples M (2010) Assessment across the United States of the
benefits of altered soybean drought traits. Agron J 102:475–482
Sloane RJ, Patterson RP, Carter TE Jr (1990) Field drought tolerance of a soybean plant introduction. Crop Sci 30(1):118–123. https://doi.org/10.2135/cropsci1990.0011183X003000010027x
Soares-Cavalcanti NM, Belarmino LC, Kido EA, Wanderley-Nogueira AC, Bezerra-Neto JP,
Cavalcanti-Lira R et al (2012) In silico identification of known osmotic stress responsive
genes from Arabidopsis in soybean and Medicago. Genet Mol Biol 35:315–321
Sonah H, Deshmukh RK, Chand S, Srinivasprasad M, Rao GJ, Upreti HC, Singh AK, Singh NK,
Sharma TR (2012) Molecular mapping of quantitative trait loci for flag leaf length and other
agronomic traits in rice (Oryza sativa). Cereal Res Commun 40:362–372. https://doi.org/10.
1556/CRC.40.2012.3.5
Sonah H, Bastien M, Iquira E, Tardivel A, Légaré G, Boyle B, Normandeau É, Laroche J, Larose S,
Jean M (2013) An improved genotyping by sequencing (GBS) approach offering increased
versatility and efficiency of SNP discovery and genotyping. PLoS One 8:e54603
Song Q, Hyten DL, Jia G, Quigley CV, Fickus EW, Nelson RL, Cregan PB (2013) Development
and evaluation of SoySNP50K, a high-density genotyping array for soybean. PLoS One 8:
e54985
Song X, Wei H, Cheng W, Yang S, Zhao Y, Li X, Luo D, Zhang H, Feng X (2015) Development of
INDEL markers for genetic mapping based on whole-genome re-sequencing in soybean. G3:
Genes, Genomes, Genetics 5(12):2793–2799
Song L, Prince S, Valliyodan B, Joshi T, Maldonado dos Santos JV, Wang J, Lin L, Wan J,
Wang Y, Xu D, Nguyen HT (2016) Genome-wide transcriptome analysis of soybean primary
root under varying water deficit conditions. BMC Genomics 17:57. https://doi.org/10.1186/
s12864-016-2378-y
Sosnowski O, Charcosset A, Joets J (2012) Bio Mercator V3: an upgrade of genetic map compilation and quantitative trait loci meta-analysis algorithms. Bioinformatics 28:2082–2083. https://
doi.org/10.1093/bioinformatics/bts313
Specht JE, Hume DJ, Kumudini SV (1999) Soybean yield potential-a genetic and physiological
perspective. Crop Sci 39(6):1560–1570. https://doi.org/10.2135/cropsci1999.3961560x
Specht JE, Chase K, Macrander M, Graef GL, Chung J, Markwell JP, German M, Orf JH, Lark KG
(2001) Soybean response to water: a QTL analysis of drought tolerance. Crop Sci 41
(2):493–509. https://doi.org/10.2135/cropsci2001.412493x
Sreenivasa V, Lal SK, Babu PK, Swamy HKM, Yadav RR, Talukdar A, Rathod DR (2020)
Inheritance and mapping of drought tolerance in soybean at seedling stage using bulked
segregant analysis. Plant Genet Resour:1–8. https://doi.org/10.1017/S1479262120000052
Srivastava AK, Zhang C, Caine RS, Gray J, Sadanandom A (2017) Rice SUMO protease overly
tolerant to salt 1 targets the transcription factor, OsbZIP23 to promote drought tolerance in rice.
Plant J 92:1031–1043
Steketee CJ, Schapaugh WT, Carter TE, Li Z (2020) Genome-wide association analyses reveal
genomic regions controlling canopy wilting in soybean. G3 Genes Genom Genet 10
(4):1413–1425
Steudle E (1995) Water transport across roots. Plant Physiol 108:6
Steudle E (2000) Water uptake by roots: effects of water deficit. J Exp Bot 51:1531–1542
Steudle E, Peterson CA (1998) How does water get through roots? J Exp Bot 49:775–788
Stolf-Moreira R, Medri ME, Marcelino FC, de Olivira MLN, Farias JRB, Abdelnoor RV,
Nepomuceno AL (2010) Cloning and quantitative expression of drought induced genes in
soybean. Genet Mol Res 9:858–867
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
127
yield increase of soybean resulting from improved symbiotic N2 fixation. Field Crop Res 101
(1):68–71. https://doi.org/10.1016/j.fcr.2006.09.010
Sinclair TR, Zwieniecki MA, Holbrook NM (2008) Low leaf hydraulic conductance associated
with drought tolerance in soybean. Physiol Plant 132:446–451
Sinclair TR, Messina CD, Beatty A, Samples M (2010) Assessment across the United States of the
benefits of altered soybean drought traits. Agron J 102:475–482
Sloane RJ, Patterson RP, Carter TE Jr (1990) Field drought tolerance of a soybean plant introduction. Crop Sci 30(1):118–123. https://doi.org/10.2135/cropsci1990.0011183X003000010027x
Soares-Cavalcanti NM, Belarmino LC, Kido EA, Wanderley-Nogueira AC, Bezerra-Neto JP,
Cavalcanti-Lira R et al (2012) In silico identification of known osmotic stress responsive
genes from Arabidopsis in soybean and Medicago. Genet Mol Biol 35:315–321
Sonah H, Deshmukh RK, Chand S, Srinivasprasad M, Rao GJ, Upreti HC, Singh AK, Singh NK,
Sharma TR (2012) Molecular mapping of quantitative trait loci for flag leaf length and other
agronomic traits in rice (Oryza sativa). Cereal Res Commun 40:362–372. https://doi.org/10.
1556/CRC.40.2012.3.5
Sonah H, Bastien M, Iquira E, Tardivel A, Légaré G, Boyle B, Normandeau É, Laroche J, Larose S,
Jean M (2013) An improved genotyping by sequencing (GBS) approach offering increased
versatility and efficiency of SNP discovery and genotyping. PLoS One 8:e54603
Song Q, Hyten DL, Jia G, Quigley CV, Fickus EW, Nelson RL, Cregan PB (2013) Development
and evaluation of SoySNP50K, a high-density genotyping array for soybean. PLoS One 8:
e54985
Song X, Wei H, Cheng W, Yang S, Zhao Y, Li X, Luo D, Zhang H, Feng X (2015) Development of
INDEL markers for genetic mapping based on whole-genome re-sequencing in soybean. G3:
Genes, Genomes, Genetics 5(12):2793–2799
Song L, Prince S, Valliyodan B, Joshi T, Maldonado dos Santos JV, Wang J, Lin L, Wan J,
Wang Y, Xu D, Nguyen HT (2016) Genome-wide transcriptome analysis of soybean primary
root under varying water deficit conditions. BMC Genomics 17:57. https://doi.org/10.1186/
s12864-016-2378-y
Sosnowski O, Charcosset A, Joets J (2012) Bio Mercator V3: an upgrade of genetic map compilation and quantitative trait loci meta-analysis algorithms. Bioinformatics 28:2082–2083. https://
doi.org/10.1093/bioinformatics/bts313
Specht JE, Hume DJ, Kumudini SV (1999) Soybean yield potential-a genetic and physiological
perspective. Crop Sci 39(6):1560–1570. https://doi.org/10.2135/cropsci1999.3961560x
Specht JE, Chase K, Macrander M, Graef GL, Chung J, Markwell JP, German M, Orf JH, Lark KG
(2001) Soybean response to water: a QTL analysis of drought tolerance. Crop Sci 41
(2):493–509. https://doi.org/10.2135/cropsci2001.412493x
Sreenivasa V, Lal SK, Babu PK, Swamy HKM, Yadav RR, Talukdar A, Rathod DR (2020)
Inheritance and mapping of drought tolerance in soybean at seedling stage using bulked
segregant analysis. Plant Genet Resour:1–8. https://doi.org/10.1017/S1479262120000052
Srivastava AK, Zhang C, Caine RS, Gray J, Sadanandom A (2017) Rice SUMO protease overly
tolerant to salt 1 targets the transcription factor, OsbZIP23 to promote drought tolerance in rice.
Plant J 92:1031–1043
Steketee CJ, Schapaugh WT, Carter TE, Li Z (2020) Genome-wide association analyses reveal
genomic regions controlling canopy wilting in soybean. G3 Genes Genom Genet 10
(4):1413–1425
Steudle E (1995) Water transport across roots. Plant Physiol 108:6
Steudle E (2000) Water uptake by roots: effects of water deficit. J Exp Bot 51:1531–1542
Steudle E, Peterson CA (1998) How does water get through roots? J Exp Bot 49:775–788
Stolf-Moreira R, Medri ME, Marcelino FC, de Olivira MLN, Farias JRB, Abdelnoor RV,
Nepomuceno AL (2010) Cloning and quantitative expression of drought induced genes in
soybean. Genet Mol Res 9:858–867
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
127
