Whole genome re-sequencing of soybean accession EC241780 providing genomic landscape of
candidate genes involved in rust resistance. Current Genomics 21(7): 504-511. DOI: 10.2174/
1389202921999200601142258
Ray DK, Mueller ND, West PC, Foley JA (2013) Yield trends are insufficient to double global crop
production by 2050. PLoS One 8:e66428
Ray JD, Dhanapal AP, Singh SK, Hoyos-Villegas V, Smith JR, Purcell LC, King CA, Boykin D,
Cregan PB, Song Q, Fritschi FB (2015) Genome-wide association study of ureide concentration
in diverse maturity group IV soybean [Glycine max (L.) Merr.] accessions. G3: Genes,
Genomes, Genet 5(11):2391–2403
Reynolds M, Manes Y, Izanloo A, Langridge P (2009) Phenotyping approaches for physiological
breeding and gene discovery in wheat. Ann Appl Biol 155(3):309–320
Rivero RM, Kojima M, Gepstein A, Sakakibara H, Mittler R, Gepstein S, Blumwald E (2007)
Delayed leaf senescence induces extreme drought tolerance in a flowering plant. PNAS 104
(49):19631–19636
Robertson MJ, Fukai S, Ludlow MM, Hammer GL (1993) Water extraction by grain sorghum in a
sub-humid environment. 2. Extraction in relation to root growth. Field Crops Res 33:99–112
Roco MC (2003) Nanotechnology: convergence with modern biology and medicine. Curr Opin
Biotechnol 14:337–346. https://doi.org/10.1016/S0958-1669(03)00068-5
Rushton PJ, Somssich IE, Ringler P, Shen QJ (2010) WRKY transcription factors. Trends Plant Sci
15:247–258
Sachdeva S, Bharadwaj C, Singh RK, Jain PK, Patil BS, Roorkiwal M, Rajeev Varshney (2020)
Characterization of ASR gene and its role in drought tolerance in chickpea (Cicer arietinum L.).
PLoS ONE 15(7): e0234550. https://doi.org/10.1371/journal.pone.0234550
Sakurai J, Ishikawa F, Yamaguchi T, Uemura M, Maeshima M (2005) Identification of 33 rice
aquaporin genes and analysis of their expression and function. Plant Cell Physiol 46:1568–1577
Salinger MJ, Sivakumar MVK, Motha R (2005) Reducing vulnerability of agriculture and forestry
to climate variability and change: workshop summary and recommendations. Clim Chang
70:341–362
Satpute GK, Arya M, Gupta S, Bhatia VS, Devdas R, Ratnaparkhe MB, Kumawat G, Maharaj S
(2018) Root system architecture for improvement of moisture deficit stress tolerance traits in
soybean (Glycine max L Meril.). In: Extended summaries national conference on enhancing
productivity of oilseeds in changing climate scenario held during 7–9 April, 2018 at ICARDGR, Junagadh, India, pp 8–9
Satpute GK, Gupta S, Bhatia VS, Devdas R, Kumawat G, Tiwari VK, Purwar JP, Agrawal A
(2019a) Multi-tiered selection scheme for breeding drought tolerance in soybean. In: Abstr.
golden jubilee international salinity conference (gjisc): resilient agriculture in saline
environments under changing climate: challenges & opportunities, held during February 7–9,
2019 at ICAR – CSSRI, Karnal, Haryana, pp 127
Satpute GK, Gupta S, Bhatia VS, Maharaj S, Chandra S, Nagar S, Kamble V, Ratnaparkhe MB
(2019b) Improving seed filling under drought stress by stem reserve mobilization in soybean,
glycine max. In: Proc. 5th Intl. conf. plant genetics & genomics: germplasm to genome
engineering, held during 17–18, October 2019 at New Delhi, India
Satpute GK, Arya M, Gupta S, Bhatia VS, Ramgopal D, Ratnaparkhe MB, Chandra S, Singh M,
Nagar S, Kamble VG, Pandey S, Kumawat G, Shivakumar M, Nataraj V, Rajesh V (2020)
Identifying drought tolerant germplasm through multiplexing polygenic traits in soybean
(Glycine max L. Merrill). J Oilseeds Res 37(SI):56–57
Saxena R, Tomar RS, Kumar M (2016) Exploring nanobiotechnology to mitigate abiotic stress in
crop plants. J Pharm Sci Res 8(9):974–980
Schmutz J, Cannon SB, Schlueter J, Ma J, Mitros T, Nelson W, Hyten DL, Song Q, Thelen JJ,
Cheng J (2010) Genome sequence of the palaeopolyploid soybean. Nature 463:178
Schuurmans JA, van Dongen JT, Rutjens BP, Boonman A, Pieterse CM, Borstlap AC (2003)
Members of the aquaporin family in the developing pea seed coat include representatives of the
PIP, TIP, and NIP subfamilies. Plant Mol Biol 53:633–645
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
125
candidate genes involved in rust resistance. Current Genomics 21(7): 504-511. DOI: 10.2174/
1389202921999200601142258
Ray DK, Mueller ND, West PC, Foley JA (2013) Yield trends are insufficient to double global crop
production by 2050. PLoS One 8:e66428
Ray JD, Dhanapal AP, Singh SK, Hoyos-Villegas V, Smith JR, Purcell LC, King CA, Boykin D,
Cregan PB, Song Q, Fritschi FB (2015) Genome-wide association study of ureide concentration
in diverse maturity group IV soybean [Glycine max (L.) Merr.] accessions. G3: Genes,
Genomes, Genet 5(11):2391–2403
Reynolds M, Manes Y, Izanloo A, Langridge P (2009) Phenotyping approaches for physiological
breeding and gene discovery in wheat. Ann Appl Biol 155(3):309–320
Rivero RM, Kojima M, Gepstein A, Sakakibara H, Mittler R, Gepstein S, Blumwald E (2007)
Delayed leaf senescence induces extreme drought tolerance in a flowering plant. PNAS 104
(49):19631–19636
Robertson MJ, Fukai S, Ludlow MM, Hammer GL (1993) Water extraction by grain sorghum in a
sub-humid environment. 2. Extraction in relation to root growth. Field Crops Res 33:99–112
Roco MC (2003) Nanotechnology: convergence with modern biology and medicine. Curr Opin
Biotechnol 14:337–346. https://doi.org/10.1016/S0958-1669(03)00068-5
Rushton PJ, Somssich IE, Ringler P, Shen QJ (2010) WRKY transcription factors. Trends Plant Sci
15:247–258
Sachdeva S, Bharadwaj C, Singh RK, Jain PK, Patil BS, Roorkiwal M, Rajeev Varshney (2020)
Characterization of ASR gene and its role in drought tolerance in chickpea (Cicer arietinum L.).
PLoS ONE 15(7): e0234550. https://doi.org/10.1371/journal.pone.0234550
Sakurai J, Ishikawa F, Yamaguchi T, Uemura M, Maeshima M (2005) Identification of 33 rice
aquaporin genes and analysis of their expression and function. Plant Cell Physiol 46:1568–1577
Salinger MJ, Sivakumar MVK, Motha R (2005) Reducing vulnerability of agriculture and forestry
to climate variability and change: workshop summary and recommendations. Clim Chang
70:341–362
Satpute GK, Arya M, Gupta S, Bhatia VS, Devdas R, Ratnaparkhe MB, Kumawat G, Maharaj S
(2018) Root system architecture for improvement of moisture deficit stress tolerance traits in
soybean (Glycine max L Meril.). In: Extended summaries national conference on enhancing
productivity of oilseeds in changing climate scenario held during 7–9 April, 2018 at ICARDGR, Junagadh, India, pp 8–9
Satpute GK, Gupta S, Bhatia VS, Devdas R, Kumawat G, Tiwari VK, Purwar JP, Agrawal A
(2019a) Multi-tiered selection scheme for breeding drought tolerance in soybean. In: Abstr.
golden jubilee international salinity conference (gjisc): resilient agriculture in saline
environments under changing climate: challenges & opportunities, held during February 7–9,
2019 at ICAR – CSSRI, Karnal, Haryana, pp 127
Satpute GK, Gupta S, Bhatia VS, Maharaj S, Chandra S, Nagar S, Kamble V, Ratnaparkhe MB
(2019b) Improving seed filling under drought stress by stem reserve mobilization in soybean,
glycine max. In: Proc. 5th Intl. conf. plant genetics & genomics: germplasm to genome
engineering, held during 17–18, October 2019 at New Delhi, India
Satpute GK, Arya M, Gupta S, Bhatia VS, Ramgopal D, Ratnaparkhe MB, Chandra S, Singh M,
Nagar S, Kamble VG, Pandey S, Kumawat G, Shivakumar M, Nataraj V, Rajesh V (2020)
Identifying drought tolerant germplasm through multiplexing polygenic traits in soybean
(Glycine max L. Merrill). J Oilseeds Res 37(SI):56–57
Saxena R, Tomar RS, Kumar M (2016) Exploring nanobiotechnology to mitigate abiotic stress in
crop plants. J Pharm Sci Res 8(9):974–980
Schmutz J, Cannon SB, Schlueter J, Ma J, Mitros T, Nelson W, Hyten DL, Song Q, Thelen JJ,
Cheng J (2010) Genome sequence of the palaeopolyploid soybean. Nature 463:178
Schuurmans JA, van Dongen JT, Rutjens BP, Boonman A, Pieterse CM, Borstlap AC (2003)
Members of the aquaporin family in the developing pea seed coat include representatives of the
PIP, TIP, and NIP subfamilies. Plant Mol Biol 53:633–645
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
125
