Hao D, Chao M, Yin Z, Yu D (2012) Genome-wide association analysis detecting significant single
nucleotide polymorphisms for chlorophyll and chlorophyll fluorescence parameters in soybean
(Glycine max) landraces. Euphytica 186:919–931
Heffner EL, Sorrells ME, Jannink JL (2009) Genomic selection for crop improvement. Crop Sci
49:1–12. https://doi.org/10.2135/cropsci2008.08.0512
Herritt M, Dhanapal AP, Purcell LC, Fritschi FB (2018) Identification of genomic loci associated
with 21chlorophyll fluorescence phenotypes by genome-wide association analysis in soybean.
BMC Plant Biol 18(1):312
Heslot N, Akdemir D, Sorrells ME, Jannink JL (2014) Integrating environmental covariates and
crop modeling in to the genomic selection frame work to predict genotype by environment
interactions. Theor Appl Genet 127:463–480. https://doi.org/10.1007/s00122-013-2231-5
Hettenhausen C, Sun G, He Y, Zhuang H, Sun T, Qi J, Wu J (2016) Genome-wide identification of
calcium-dependent protein kinases in soybean and analyses of their transcriptional responses to
insect herbivory and drought stress. Sci Rep 6:18973
Hose E, Clarkson DT, Steudle E, Schreiber L, Hartung W (2001) The exodermis: a variable
apoplastic barrier. J Exp Bot 52:2245–2264
Hossain MM, Liu X, Qi X, Lam HM, Zhang J (2014) Differences between soybean genotypes in
physiological response to sequential soil drying and rewetting. Crop J 2(6):366–380. https://doi.
org/10.1016/j.cj.2014.08.001
Hossain Z, Mustafa G, Sakata K, Komatsu S (2016) Insights into the proteomic response of soybean
towards Al2O3, ZnO, and Ag nanoparticles stress. J Hazard Mater 304:291–305
Hussain RM, Ali M, Feng X, Li X (2017) The essence of NAC gene family to the cultivation of
drought-resistant soybean (Glycine max L Merr.) cultivars. BMC Plant Biol 17:55
Hwang T-Y, Sayama T, Takahashi M, Takada Y, Nakamoto Y, Funatsuki H, Hisano H,
Sasamoto S, Sato S, Tabata S (2009) High-density integrated linkage map based on SSR
markers in soybean. DNA Res 16:213–225
Hwang S, King C, Davies M, Ray JD, Cregan P, Purcell LC (2013) QTL analysis of shoot ureide
and nitrogen concentrations in soybean [Glycine max (L.) Merr.]. Crop Sci 53:2421–2433
Hwang S, King CA, Ray JD, Cregan PB, Chen P, Carter TE, Li Z, Abdel-Haleem H, Matson KW,
Schapaugh W (2015) Confirmation of delayed canopy wilting QTLs from multiple soybean
mapping populations. Theor Appl Genet 128:2047–2065
Jagtap UB, Gurav RG, Bapat VA (2011) Role of RNA interference in plant improvement.
Naturwissenschaften 98:473–492
Jan SA, Shinwari ZK, Shah SH et al (2016) In-planta transformation recent advances. Rom
Biotechnol Lett 21(1):11085–11091
Jan SA, Bibi N, Shinwari ZK et al (2017) Impact of salt, drought, heat and frost stresses on morphobiochemical and physiological properties of Brassica species: an updated review. J Rural Dev
Agric 2(1):1–10
Javot H (2003) Role of a single aquaporin isoform in root water uptake. Plant Cell 15:509–522
Ji X, Nie X, Liu Y, Zheng L, Zhao H, Zhang B, Huo L, Wang Y (2016) A bHLH gene from Tamarix
hispida improves abiotic stress tolerance by enhancing osmotic potential and decreasing reactive
oxygen species accumulation. Tree Physiol 36:193–207
Kaldenhoff R, Fischer M (2006) Aquaporins in plants. Acta Physiol (Oxf) 187:169–176
Kaler AS, Dhanapal AP, Ray JD, King CA, Fritschi FB, Purcell LC (2017) Genome-wide association mapping of carbon isotope and oxygen isotope ratios in diverse soybean genotypes. Crop
Sci 6:3085–3100
Kaler AS, Ray JD, Schapaugh WT, Asebedo AR, King CA, Gbur EE, Purcell LC (2018) Association mapping identifies loci for canopy temperature under drought in diverse soybean
genotypes. Euphytica 214(8):135
Kasuga M, Miura S, Shinozaki K, Yamaguchi-Shinozaki K (2004) A combination of the
Arabidopsis DREB1A gene and stress-inducible rd29A promoter improved drought-and
low-temperature stress tolerance in tobacco by gene transfer. Plant Cell Physiol 45(3):346–350
120
G. K. Satpute et al.
nucleotide polymorphisms for chlorophyll and chlorophyll fluorescence parameters in soybean
(Glycine max) landraces. Euphytica 186:919–931
Heffner EL, Sorrells ME, Jannink JL (2009) Genomic selection for crop improvement. Crop Sci
49:1–12. https://doi.org/10.2135/cropsci2008.08.0512
Herritt M, Dhanapal AP, Purcell LC, Fritschi FB (2018) Identification of genomic loci associated
with 21chlorophyll fluorescence phenotypes by genome-wide association analysis in soybean.
BMC Plant Biol 18(1):312
Heslot N, Akdemir D, Sorrells ME, Jannink JL (2014) Integrating environmental covariates and
crop modeling in to the genomic selection frame work to predict genotype by environment
interactions. Theor Appl Genet 127:463–480. https://doi.org/10.1007/s00122-013-2231-5
Hettenhausen C, Sun G, He Y, Zhuang H, Sun T, Qi J, Wu J (2016) Genome-wide identification of
calcium-dependent protein kinases in soybean and analyses of their transcriptional responses to
insect herbivory and drought stress. Sci Rep 6:18973
Hose E, Clarkson DT, Steudle E, Schreiber L, Hartung W (2001) The exodermis: a variable
apoplastic barrier. J Exp Bot 52:2245–2264
Hossain MM, Liu X, Qi X, Lam HM, Zhang J (2014) Differences between soybean genotypes in
physiological response to sequential soil drying and rewetting. Crop J 2(6):366–380. https://doi.
org/10.1016/j.cj.2014.08.001
Hossain Z, Mustafa G, Sakata K, Komatsu S (2016) Insights into the proteomic response of soybean
towards Al2O3, ZnO, and Ag nanoparticles stress. J Hazard Mater 304:291–305
Hussain RM, Ali M, Feng X, Li X (2017) The essence of NAC gene family to the cultivation of
drought-resistant soybean (Glycine max L Merr.) cultivars. BMC Plant Biol 17:55
Hwang T-Y, Sayama T, Takahashi M, Takada Y, Nakamoto Y, Funatsuki H, Hisano H,
Sasamoto S, Sato S, Tabata S (2009) High-density integrated linkage map based on SSR
markers in soybean. DNA Res 16:213–225
Hwang S, King C, Davies M, Ray JD, Cregan P, Purcell LC (2013) QTL analysis of shoot ureide
and nitrogen concentrations in soybean [Glycine max (L.) Merr.]. Crop Sci 53:2421–2433
Hwang S, King CA, Ray JD, Cregan PB, Chen P, Carter TE, Li Z, Abdel-Haleem H, Matson KW,
Schapaugh W (2015) Confirmation of delayed canopy wilting QTLs from multiple soybean
mapping populations. Theor Appl Genet 128:2047–2065
Jagtap UB, Gurav RG, Bapat VA (2011) Role of RNA interference in plant improvement.
Naturwissenschaften 98:473–492
Jan SA, Shinwari ZK, Shah SH et al (2016) In-planta transformation recent advances. Rom
Biotechnol Lett 21(1):11085–11091
Jan SA, Bibi N, Shinwari ZK et al (2017) Impact of salt, drought, heat and frost stresses on morphobiochemical and physiological properties of Brassica species: an updated review. J Rural Dev
Agric 2(1):1–10
Javot H (2003) Role of a single aquaporin isoform in root water uptake. Plant Cell 15:509–522
Ji X, Nie X, Liu Y, Zheng L, Zhao H, Zhang B, Huo L, Wang Y (2016) A bHLH gene from Tamarix
hispida improves abiotic stress tolerance by enhancing osmotic potential and decreasing reactive
oxygen species accumulation. Tree Physiol 36:193–207
Kaldenhoff R, Fischer M (2006) Aquaporins in plants. Acta Physiol (Oxf) 187:169–176
Kaler AS, Dhanapal AP, Ray JD, King CA, Fritschi FB, Purcell LC (2017) Genome-wide association mapping of carbon isotope and oxygen isotope ratios in diverse soybean genotypes. Crop
Sci 6:3085–3100
Kaler AS, Ray JD, Schapaugh WT, Asebedo AR, King CA, Gbur EE, Purcell LC (2018) Association mapping identifies loci for canopy temperature under drought in diverse soybean
genotypes. Euphytica 214(8):135
Kasuga M, Miura S, Shinozaki K, Yamaguchi-Shinozaki K (2004) A combination of the
Arabidopsis DREB1A gene and stress-inducible rd29A promoter improved drought-and
low-temperature stress tolerance in tobacco by gene transfer. Plant Cell Physiol 45(3):346–350
120
G. K. Satpute et al.
