Marton I, Zuker A, Shklarman E, Zeevi V, Tovkach A, Roffe S, Ovadis M, Tzfira T, Vainstein A
(2010) Non transgenic genome modification in plant cells. Plant Physiol 154:1079–1087.
https://doi.org/10.1104/pp.110.164806
Maurel C, Santoni V, Luu DT, Wudick MM, Verdoucq L (2009) The cellular dynamics of plant
aquaporin expression and functions. Curr Opin Plant Biol 12:690–698
Meena AK, Verma LK, Kumhar BL (2017) RNAi, Its mechanism and potential use in crop
improvement: a review. Int J Pure App Biosci 5:294–311
Melchinger A (1990) Use of molecular markers in breeding for oligogenic disease resistance. Plant
Breed 104:1–19
Mian M, Bailey M, Ashley D, Wells R, Carter T, Parrott W, Boerma H (1996) Molecular markers
associated with water use efficiency and leaf ash in soybean. Crop Sci 36:1252–1257
Mian M, Ashley D, Boerma H (1998) An additional QTL for water use efficiency in soybean. Crop
Sci 38:390–393
Mickelbart MV, Hasegawa PM, Bailey-Serres J (2015) Genetic mechanisms of abiotic stress
tolerance that translate to crop yield stability. Nat Rev Genet 16:237–251. https://doi.org/10.
1038/nrg3901
Mizoi J, Shinozaki K, Yamaguchi-Shinozaki K (2012) AP2/ERF family transcription factor in plant
abiotic stress responses. Biochim Biophys Acta 1819:86–96
Mohammadi PP, Moieni A, Hiraga S, Komatsu S (2012) Organ specific proteomic analysis of
drought stressed soybean seedlings. J Proteome 75:1906–1923
Monteros MJ, Lee G, Missaoui AM, Carter TE, Boerma HR (2006) Identification and confirmation
of QTL conditioning drought tolerance in Nepalese soybean. In: The 11th biennial conference
on the molecular and cellular biology of the soybean, abstract PI471938. August 5–8, Lincoln,
NE
Mourtzinis S, Specht JE, Conley SP (2019) Defining optimal soybean sowing dates across the
US. Sci Rep 9:2800
Nakashima K, Ito Y, Yamaguchi-Shinozaki K (2009) Transcriptional regulatory networks in
response to abiotic stresses in Arabidopsis and grasses. Plant Physiol 149:88–95. https://doi.
org/10.1104/pp.108.129791
Nguyen QH, VuL TK, Nguyen LTN, Pham NTT, Nguyen YTH, Le SV, Chu MH (2019)
Overexpression of the GmDREB6 gene enhances proline accumulation and salt tolerance in
genetically modified soybean plants. Sci Rep 9:1966
Ocheltree TW, Nippert JB, Prasad PVV (2014) Stomatal responses to changes in vapor pressure
deficit reflect tissue-specific differences in hydraulic conductance. Plant Cell Environ
37:132–139
Oya T, Nepomuceno AL, Farias JRB, Tobita S, Ito O (2004) Drought tolerance characteristics of
Brazilian soybean cultivars – evaluation and characterization of drought tolerance of various
Brazilian soybean cultivars in the field. Plant Prod Sci 7:129–137
Ozsolak F, Milos PM (2010) RNA sequencing: advances, challenges and opportunities. Nat Rev
Genet 12:87–98. https://doi.org/10.1038/nrg2934
Pages L, Serra V, Draye X, Doussan C, Pierret A (2010) Estimating root elongation rates from
morphological measurements of the root tip. Plant Soil 328:35–44
Park C, Lim CW, Baek W, Kim JH, Lim S, Kim SH, Kim KN, Lee SC (2017) The pepper WPP
domain protein, CaWDP1, acts as a novel negative regulator of drought stress via ABA
signaling. Plant Cell Physiol 58:779–788
Passioura J (2010) Scaling up: the essence of effective agricultural research. Funct Plant Biol
37:585–591
Pathan SM, Lee JD, Sleper DA, Fritschi FB, Sharp RE, Carter TE Jr, Nelson RL, King CA,
Schapaugh WT, Ellersieck MR, Nguyen HT, Shannon JG (2014) Two soybean plant
introductions display slow leaf wilting and reduced yield loss under drought. J Agron Crop
Sci 200(3):231–236. https://doi.org/10.1111/jac.12053
Patterson PR, Hudak CM (1996) Drought-avoidant soybean germplasm maintains nitrogen fixation
capacity under water stress. Plant Soil 186(1):39–43. https://doi.org/10.1007/BF00035053
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
123
(2010) Non transgenic genome modification in plant cells. Plant Physiol 154:1079–1087.
https://doi.org/10.1104/pp.110.164806
Maurel C, Santoni V, Luu DT, Wudick MM, Verdoucq L (2009) The cellular dynamics of plant
aquaporin expression and functions. Curr Opin Plant Biol 12:690–698
Meena AK, Verma LK, Kumhar BL (2017) RNAi, Its mechanism and potential use in crop
improvement: a review. Int J Pure App Biosci 5:294–311
Melchinger A (1990) Use of molecular markers in breeding for oligogenic disease resistance. Plant
Breed 104:1–19
Mian M, Bailey M, Ashley D, Wells R, Carter T, Parrott W, Boerma H (1996) Molecular markers
associated with water use efficiency and leaf ash in soybean. Crop Sci 36:1252–1257
Mian M, Ashley D, Boerma H (1998) An additional QTL for water use efficiency in soybean. Crop
Sci 38:390–393
Mickelbart MV, Hasegawa PM, Bailey-Serres J (2015) Genetic mechanisms of abiotic stress
tolerance that translate to crop yield stability. Nat Rev Genet 16:237–251. https://doi.org/10.
1038/nrg3901
Mizoi J, Shinozaki K, Yamaguchi-Shinozaki K (2012) AP2/ERF family transcription factor in plant
abiotic stress responses. Biochim Biophys Acta 1819:86–96
Mohammadi PP, Moieni A, Hiraga S, Komatsu S (2012) Organ specific proteomic analysis of
drought stressed soybean seedlings. J Proteome 75:1906–1923
Monteros MJ, Lee G, Missaoui AM, Carter TE, Boerma HR (2006) Identification and confirmation
of QTL conditioning drought tolerance in Nepalese soybean. In: The 11th biennial conference
on the molecular and cellular biology of the soybean, abstract PI471938. August 5–8, Lincoln,
NE
Mourtzinis S, Specht JE, Conley SP (2019) Defining optimal soybean sowing dates across the
US. Sci Rep 9:2800
Nakashima K, Ito Y, Yamaguchi-Shinozaki K (2009) Transcriptional regulatory networks in
response to abiotic stresses in Arabidopsis and grasses. Plant Physiol 149:88–95. https://doi.
org/10.1104/pp.108.129791
Nguyen QH, VuL TK, Nguyen LTN, Pham NTT, Nguyen YTH, Le SV, Chu MH (2019)
Overexpression of the GmDREB6 gene enhances proline accumulation and salt tolerance in
genetically modified soybean plants. Sci Rep 9:1966
Ocheltree TW, Nippert JB, Prasad PVV (2014) Stomatal responses to changes in vapor pressure
deficit reflect tissue-specific differences in hydraulic conductance. Plant Cell Environ
37:132–139
Oya T, Nepomuceno AL, Farias JRB, Tobita S, Ito O (2004) Drought tolerance characteristics of
Brazilian soybean cultivars – evaluation and characterization of drought tolerance of various
Brazilian soybean cultivars in the field. Plant Prod Sci 7:129–137
Ozsolak F, Milos PM (2010) RNA sequencing: advances, challenges and opportunities. Nat Rev
Genet 12:87–98. https://doi.org/10.1038/nrg2934
Pages L, Serra V, Draye X, Doussan C, Pierret A (2010) Estimating root elongation rates from
morphological measurements of the root tip. Plant Soil 328:35–44
Park C, Lim CW, Baek W, Kim JH, Lim S, Kim SH, Kim KN, Lee SC (2017) The pepper WPP
domain protein, CaWDP1, acts as a novel negative regulator of drought stress via ABA
signaling. Plant Cell Physiol 58:779–788
Passioura J (2010) Scaling up: the essence of effective agricultural research. Funct Plant Biol
37:585–591
Pathan SM, Lee JD, Sleper DA, Fritschi FB, Sharp RE, Carter TE Jr, Nelson RL, King CA,
Schapaugh WT, Ellersieck MR, Nguyen HT, Shannon JG (2014) Two soybean plant
introductions display slow leaf wilting and reduced yield loss under drought. J Agron Crop
Sci 200(3):231–236. https://doi.org/10.1111/jac.12053
Patterson PR, Hudak CM (1996) Drought-avoidant soybean germplasm maintains nitrogen fixation
capacity under water stress. Plant Soil 186(1):39–43. https://doi.org/10.1007/BF00035053
4 Breeding and Molecular Approaches for Evolving Drought-Tolerant Soybeans
123
