Sun Y, Zhang X, Wu C, He Y, Ma Y, Hou H, Guo X, Du W, Zhao Y, Xia L (2016) Engineering
herbicide-resistant rice plants through CRISPR/Cas9-mediated homologous recombination of
acetolactate synthase. Mol Plant 9:628–631
Svitashev S, Young JK, Schwartz C, Gao H, Falco SC, Cigan AM (2015) Targeted mutagenesis,
precise gene editing and site-specific gene insertion in maize using Cas9 and guide RNA. Plant
Physiol 2:931–945
Swaminathan MS (2005) Towards an ever-green revolution. In: Tuberosa R, Phillips RL, Gale M
(eds) Proceedings of the international congress: in the wake of the double Helix: from the green
revolution to the gene revolution. Avenue Media, Bologna, pp 25–36
Takuno S, Terauchi R, Innan H (2012) The power of QTL mapping with RILs. PLoS One 7:e46545
Tran LS, Mochida K (2010) Identification and prediction of abiotic stress responsive transcription
factors involved in abiotic stress signaling in soybean. Plant Signal Behav 5:255–257
Tripathi P, Rabara RC, Lin J, Rushton PJ (2013) GmWRKY53, a water and salt inducible soybean
gene for rapid dissection of regulatory elements in bY-2 cell culture. Plant Signal Behav 8:e2427
Tripathi AK, Pareek A, Singla-Pareek SL (2016a) A NAP-family histone chaperone functions in
abiotic stress response and adaptation. Plant Physiol 171:2854–2868
Tripathi P, Rabara RC, Reese RN, Miller MA, Rohila JS, Subramanian S et al (2016b) A toolbox of
genes, proteins, metabolites and promoters for improving drought tolerance in soybean includes
the metabolite coumestrol and stomatal development genes. BMC Genomics 17:102
Tripathi DK, Singh S, Gaur S, Singh S, Yadav V, Liu S, Singh VP, Sharma S, Srivastava P, Prasad
SM, Dubey NK, Chauhan DK, Shivendra S (2018) Acquisition and homeostasis of iron in
higher plants and their probable role in abiotic stress tolerance. Front Environ Sci 5:86. https://
doi.org/10.3389/fenvs.2017.00086
Tuberosa R (2012) Phenotyping for drought tolerance of crops in the genomics era. Front Physiol
3:347
Tyerman SD, Niemietz CM, Bramley H (2002) Plant aquaporins: multifunctional water and solute
channels with expanding roles. Plant Cell Environ 25:173–194
Tyree MT (1997) The cohesion–tension theory of sap ascent: current controversies. J Exp Bot
48:1753–1765
Ullah A, Sun H, Hakim YX, Zhang X (2018) A novel cotton WRKY gene, GhWRKY6-like,
improves salt tolerance by activating the ABA signaling pathway and scavenging of reactive
oxygen species. Physiol Plant 162(4):439–454. https://doi.org/10.1111/ppl.12651
Vadez V (2014) Root hydraulics: the forgotten side of roots in drought adaptation. Field Crop Res
165:15–24
Vadez V, Rao S, Kholova J, Krishnamurthy L, Kashiwagi J, Ratnakumar P, Sharma KK,
Bhatnagar-Mathur P, Basu PS (2008) Roots research for legume tolerance to drought: quo
vadis? J Food Legume 21(2):77–85
Vadez V, Deshpande SP, Kholova J, Hammer GL, Borrell AK, Talwar HS, Hash CT (2011) Staygreen quantitative trait loci’s effects on water extraction, transpiration efficiency and seed yield
depend on recipient parent background. Funct Plant Biol 38:553–566
Vadez V, Kholova J, Yadav RS, Hash CT (2013) Small temporal differences in water uptake among
varieties of pearl millet (Pennisetum glaucum (L.) R. Br.) are critical for grain yield under
terminal drought. Plant Soil 371:447–462
Valliyodan B, Qiu D, Patil G, Zeng P, Huang J, Dai L, Chen C, Li Y, Joshi T, Song L (2016)
Landscape of genomic diversity and trait discovery in soybean. Sci Rep 6:23598
Vandeleur RK, Sullivan W, Athman A, Jordans C, Gilliham M, Kaiser BN, Tyerman SD (2014)
Rapid shoot-to-root signalling regulates root hydraulic conductance via aquaporins. Plant Cell
Environ 37:520–538
Vu HTT, Kilian A, James AT, Bielig LM, Lawn RJ (2015) Use of DArT molecular markers for
QTL analysis of drought-stress responses in soybean. II. Marker identification and QTL
analyses. Crop Pasture Sci 66:817–830. https://doi.org/10.1071/CP14304
Walker D, Monteros M, Yates J (2010) Mol breed. In: Kole C (ed) Genetics, genomics and breeding
of soybean. CRC Press, New York, pp 123–159
128
G. K. Satpute et al.
herbicide-resistant rice plants through CRISPR/Cas9-mediated homologous recombination of
acetolactate synthase. Mol Plant 9:628–631
Svitashev S, Young JK, Schwartz C, Gao H, Falco SC, Cigan AM (2015) Targeted mutagenesis,
precise gene editing and site-specific gene insertion in maize using Cas9 and guide RNA. Plant
Physiol 2:931–945
Swaminathan MS (2005) Towards an ever-green revolution. In: Tuberosa R, Phillips RL, Gale M
(eds) Proceedings of the international congress: in the wake of the double Helix: from the green
revolution to the gene revolution. Avenue Media, Bologna, pp 25–36
Takuno S, Terauchi R, Innan H (2012) The power of QTL mapping with RILs. PLoS One 7:e46545
Tran LS, Mochida K (2010) Identification and prediction of abiotic stress responsive transcription
factors involved in abiotic stress signaling in soybean. Plant Signal Behav 5:255–257
Tripathi P, Rabara RC, Lin J, Rushton PJ (2013) GmWRKY53, a water and salt inducible soybean
gene for rapid dissection of regulatory elements in bY-2 cell culture. Plant Signal Behav 8:e2427
Tripathi AK, Pareek A, Singla-Pareek SL (2016a) A NAP-family histone chaperone functions in
abiotic stress response and adaptation. Plant Physiol 171:2854–2868
Tripathi P, Rabara RC, Reese RN, Miller MA, Rohila JS, Subramanian S et al (2016b) A toolbox of
genes, proteins, metabolites and promoters for improving drought tolerance in soybean includes
the metabolite coumestrol and stomatal development genes. BMC Genomics 17:102
Tripathi DK, Singh S, Gaur S, Singh S, Yadav V, Liu S, Singh VP, Sharma S, Srivastava P, Prasad
SM, Dubey NK, Chauhan DK, Shivendra S (2018) Acquisition and homeostasis of iron in
higher plants and their probable role in abiotic stress tolerance. Front Environ Sci 5:86. https://
doi.org/10.3389/fenvs.2017.00086
Tuberosa R (2012) Phenotyping for drought tolerance of crops in the genomics era. Front Physiol
3:347
Tyerman SD, Niemietz CM, Bramley H (2002) Plant aquaporins: multifunctional water and solute
channels with expanding roles. Plant Cell Environ 25:173–194
Tyree MT (1997) The cohesion–tension theory of sap ascent: current controversies. J Exp Bot
48:1753–1765
Ullah A, Sun H, Hakim YX, Zhang X (2018) A novel cotton WRKY gene, GhWRKY6-like,
improves salt tolerance by activating the ABA signaling pathway and scavenging of reactive
oxygen species. Physiol Plant 162(4):439–454. https://doi.org/10.1111/ppl.12651
Vadez V (2014) Root hydraulics: the forgotten side of roots in drought adaptation. Field Crop Res
165:15–24
Vadez V, Rao S, Kholova J, Krishnamurthy L, Kashiwagi J, Ratnakumar P, Sharma KK,
Bhatnagar-Mathur P, Basu PS (2008) Roots research for legume tolerance to drought: quo
vadis? J Food Legume 21(2):77–85
Vadez V, Deshpande SP, Kholova J, Hammer GL, Borrell AK, Talwar HS, Hash CT (2011) Staygreen quantitative trait loci’s effects on water extraction, transpiration efficiency and seed yield
depend on recipient parent background. Funct Plant Biol 38:553–566
Vadez V, Kholova J, Yadav RS, Hash CT (2013) Small temporal differences in water uptake among
varieties of pearl millet (Pennisetum glaucum (L.) R. Br.) are critical for grain yield under
terminal drought. Plant Soil 371:447–462
Valliyodan B, Qiu D, Patil G, Zeng P, Huang J, Dai L, Chen C, Li Y, Joshi T, Song L (2016)
Landscape of genomic diversity and trait discovery in soybean. Sci Rep 6:23598
Vandeleur RK, Sullivan W, Athman A, Jordans C, Gilliham M, Kaiser BN, Tyerman SD (2014)
Rapid shoot-to-root signalling regulates root hydraulic conductance via aquaporins. Plant Cell
Environ 37:520–538
Vu HTT, Kilian A, James AT, Bielig LM, Lawn RJ (2015) Use of DArT molecular markers for
QTL analysis of drought-stress responses in soybean. II. Marker identification and QTL
analyses. Crop Pasture Sci 66:817–830. https://doi.org/10.1071/CP14304
Walker D, Monteros M, Yates J (2010) Mol breed. In: Kole C (ed) Genetics, genomics and breeding
of soybean. CRC Press, New York, pp 123–159
128
G. K. Satpute et al.
