Fischer RA, Maurer R (1978) Drought resistance in spring wheat cultivars. I. Grain yield response.
Aust J Agric Res 29:897–907
Frova C, Sari-Gorla M (1994) Quantitative trait loci (QTLs) for pollen thermo tolerance detected in
maize. Mol Gen Genet 245:424–430
Fu J, Momcilovic I, Clemente TE, Nersesian N, Trick HN, Ristic Z (2008) Heterologous expression
of a plastid EF-Tu reduces protein thermal aggregation and enhances CO2 fixation in wheat
(Triticum aestivum) following heat stress. Plant Mol Biol 68:277–288
Gavuzzi P, Rizza F, Palumbo M, Campaline RG, Ricciardi GL, Borghi B (1997) Evaluation of field
and laboratory predict ors of drought and heat tolerance in winter cereals. Plant Sci 77:523–531
Giaveno C, Ferrero J (2003) Introduction of tropical maize genotypes to increase silage production
in the central area of Santa Fe, Argentina. Crop Breed Appl Biotechnol 3:89–94
Giorno F, Wolters-Arts M, Mariani C, Rieu I (2013) Ensuring reproduction at high temperatures:
the heat stress response during anther and pollen development. Plants 2:489–506. https://doi.
org/10.3390/plants2030489
Gororo NN, Eagles HA, Eastwood RF, Nicolas ME, Flood RG (2002) Use of Triticum tauschii to
improve yield of wheat in low-yielding environments. Euphytica 123:241–254
Govindaraj M, Pattanashetti SK, Patne N, Kanatti AA (2018) Breeding cultivars for heat stress
tolerance in staple food crops. In: Ciftci YO (ed) Next generation plant breeding. Intech Open,
London, pp 45–74. https://doi.org/10.5772/intechopen.76480
Grover A, Sabat SC, Mohanty P (1986) Effect of temperature on photosynthetic activities of
senescing detached wheat leaves. Plant Cell Physiol 27:117–126
Guedira M, McCluskey PJ, MacRitchie F, Paulsen GM (2002) Composition and quality of wheat
grown under different shoot and root temperatures during maturation. Cereal Chem
79:397–403. https://doi.org/10.1094/CCHEM.2002.79.3.397
Guo FL, Yu J, Tao J, Su J, Zhang CH (2009) Effects of high temperature stress on photosynthesis
and chlorophyll fluorescence of Euphorbia pulcherrima. J Yangzhou Univ Agric Life Sci
30:71–74
Gupta NK, Agarwal S, Agarwal VP, Nathawat NS, Gupta S, Singh G (2013) Effect of short-term
heat stress on growth, physiology and antioxidative defence system in wheat seedlings. Acta
Physiol Plant 35:1837–1842. https://doi.org/10.1007/s11738-013-1221-1
Hall AE (2001) Crop responses to environment. CRC Press LLC, Boca Raton, FL. https://doi.org/
10.1201/9781420041088
Hampton JG, Boelt B, Rolston MP, Chastain TG (2013) Effects of elevated CO 2 and temperature on
seed quality. J Agric Sci 151:154–162. https://doi.org/10.1017/S0021859612000263
Hansen J, Sato M, Ruedy R (2012) Perception of climate change. Proc Natl Acad Sci
109:14726–14727. https://doi.org/10.1073/pnas.1205276109
Haque MS, Kjaer KH, Rosenqvist E, Sharma DK, Ottosen CO (2014) Heat stress and recovery of
photosystem II efficiency in wheat (Triticum aestivum L.) cultivars acclimated to different
growth temperatures. Environ Exp Bot 99:1–8. https://doi.org/10.1016/j.envexpbot.2013.10.
017
Hartmann A, Czauderna T, Hoffmann R, Stein N, Schreiber F (2011) HTPheno: an image analysis
pipeline for high-throughput plant phenotyping. BMC Bioinform 12:148
Hasanuzzaman M, Hossain MA, da Silva JAT, Fujita M (2012) Plant responses and tolerance to
abiotic oxidative stress: antioxidant defenses is a key factor. In: Bandi V, Shanker AK,
Shanker C, Mandapaka M (eds) Crop stress and its management: perspectives and strategies.
Springer, Berlin, pp 261–316
Hasanuzzaman M, Nahar K, Alam MM, Roychowdhury R, Fujita M (2013) Physiological, biochemical, and molecular mechanisms of heat stress tolerance in plants. Int J Mol Sci
14:9643–9684. https://doi.org/10.3390/ijms14059643
Havaux M, Tardy F (1999) Loss of chlorophyll with limited reduction of photosynthesis as an
adaptive response of Syrian barley landraces to high-light and heat stress. Funct Plant Biol
26:569–578
72
R. Gajghate et al.
Aust J Agric Res 29:897–907
Frova C, Sari-Gorla M (1994) Quantitative trait loci (QTLs) for pollen thermo tolerance detected in
maize. Mol Gen Genet 245:424–430
Fu J, Momcilovic I, Clemente TE, Nersesian N, Trick HN, Ristic Z (2008) Heterologous expression
of a plastid EF-Tu reduces protein thermal aggregation and enhances CO2 fixation in wheat
(Triticum aestivum) following heat stress. Plant Mol Biol 68:277–288
Gavuzzi P, Rizza F, Palumbo M, Campaline RG, Ricciardi GL, Borghi B (1997) Evaluation of field
and laboratory predict ors of drought and heat tolerance in winter cereals. Plant Sci 77:523–531
Giaveno C, Ferrero J (2003) Introduction of tropical maize genotypes to increase silage production
in the central area of Santa Fe, Argentina. Crop Breed Appl Biotechnol 3:89–94
Giorno F, Wolters-Arts M, Mariani C, Rieu I (2013) Ensuring reproduction at high temperatures:
the heat stress response during anther and pollen development. Plants 2:489–506. https://doi.
org/10.3390/plants2030489
Gororo NN, Eagles HA, Eastwood RF, Nicolas ME, Flood RG (2002) Use of Triticum tauschii to
improve yield of wheat in low-yielding environments. Euphytica 123:241–254
Govindaraj M, Pattanashetti SK, Patne N, Kanatti AA (2018) Breeding cultivars for heat stress
tolerance in staple food crops. In: Ciftci YO (ed) Next generation plant breeding. Intech Open,
London, pp 45–74. https://doi.org/10.5772/intechopen.76480
Grover A, Sabat SC, Mohanty P (1986) Effect of temperature on photosynthetic activities of
senescing detached wheat leaves. Plant Cell Physiol 27:117–126
Guedira M, McCluskey PJ, MacRitchie F, Paulsen GM (2002) Composition and quality of wheat
grown under different shoot and root temperatures during maturation. Cereal Chem
79:397–403. https://doi.org/10.1094/CCHEM.2002.79.3.397
Guo FL, Yu J, Tao J, Su J, Zhang CH (2009) Effects of high temperature stress on photosynthesis
and chlorophyll fluorescence of Euphorbia pulcherrima. J Yangzhou Univ Agric Life Sci
30:71–74
Gupta NK, Agarwal S, Agarwal VP, Nathawat NS, Gupta S, Singh G (2013) Effect of short-term
heat stress on growth, physiology and antioxidative defence system in wheat seedlings. Acta
Physiol Plant 35:1837–1842. https://doi.org/10.1007/s11738-013-1221-1
Hall AE (2001) Crop responses to environment. CRC Press LLC, Boca Raton, FL. https://doi.org/
10.1201/9781420041088
Hampton JG, Boelt B, Rolston MP, Chastain TG (2013) Effects of elevated CO 2 and temperature on
seed quality. J Agric Sci 151:154–162. https://doi.org/10.1017/S0021859612000263
Hansen J, Sato M, Ruedy R (2012) Perception of climate change. Proc Natl Acad Sci
109:14726–14727. https://doi.org/10.1073/pnas.1205276109
Haque MS, Kjaer KH, Rosenqvist E, Sharma DK, Ottosen CO (2014) Heat stress and recovery of
photosystem II efficiency in wheat (Triticum aestivum L.) cultivars acclimated to different
growth temperatures. Environ Exp Bot 99:1–8. https://doi.org/10.1016/j.envexpbot.2013.10.
017
Hartmann A, Czauderna T, Hoffmann R, Stein N, Schreiber F (2011) HTPheno: an image analysis
pipeline for high-throughput plant phenotyping. BMC Bioinform 12:148
Hasanuzzaman M, Hossain MA, da Silva JAT, Fujita M (2012) Plant responses and tolerance to
abiotic oxidative stress: antioxidant defenses is a key factor. In: Bandi V, Shanker AK,
Shanker C, Mandapaka M (eds) Crop stress and its management: perspectives and strategies.
Springer, Berlin, pp 261–316
Hasanuzzaman M, Nahar K, Alam MM, Roychowdhury R, Fujita M (2013) Physiological, biochemical, and molecular mechanisms of heat stress tolerance in plants. Int J Mol Sci
14:9643–9684. https://doi.org/10.3390/ijms14059643
Havaux M, Tardy F (1999) Loss of chlorophyll with limited reduction of photosynthesis as an
adaptive response of Syrian barley landraces to high-light and heat stress. Funct Plant Biol
26:569–578
72
R. Gajghate et al.
