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Plant Sci 14:30–36. https://doi.org/10.1016/j.tplants.2008.11.001
Heffner EL, Sorrells ME, Jannink JL (2009) Genomic selection for crop improvement. Crop Sci
49:1–12. https://doi.org/10.2135/crop-sci2008.08.0512
Hossain AB, Sears AG, Cox TS, Paulsen GM (1990) Desiccation tolerance and its relationship to
assimilate partitioning in winter wheat. Crop Sci 30:622–627
Howarth CJ (2005) Genetic improvements of tolerance to high temperature. In: Ashraf M, Harris
HJC (eds) Abiotic stresses—plant resistance through breeding and molecular approaches. The
Haworth Press, New York, pp 277–300
Huang BR, Taylor HM, McMichael BL (1991) Growth and development of seminal and crown
roots of wheat seedlings as affected by temperature. Environ Exp Bot 31:471–477
Huang B, Rachmilevitch S, Xu J (2012) Root carbon and protein metabolism associated with heat
tolerance. J Exp Bot 63:3455–3465. https://doi.org/10.1093/jxb/ers003
Hussain HA, Men S, Hussain S, Chen Y, Ali S, Zhang S et al (2019) Interactive effects of drought
and heat stresses on morphophysiological attributes, yield, nutrient uptake and oxidative status
in maize hybrids. Sci Rep 9:3890. https://doi.org/10.1038/s41598-019-40362-7
Huve K, Bichele I, Tobias M, Niinemets U (2005) Heat sensitivity of photosynthetic electron
transport varies during the day due to changes in sugars and osmotic potential. Plant Cell
Environ 29:212–218
Iba K (2002) Acclimative response to temperature stress in higher plants: approaches of gene
engineering for temperature tolerance. Annu Rev Plant Biol 53:225–245. https://doi.org/10.
1146/annurev.arplant.53.100201.160729
Ibrahim AMH, Quick JS (2001) Genetic control of high temperature tolerance in wheat as measured
by membrane thermal stability. Crop Sci 41(5):1405–1407
Iloh AC, Omatta G, Ogbadu GH, Onyenekwe PC (2014) Effects of elevated temperature on seed
germination and seedling growth on three cereal crops in Nigeria. Sci Res Essays 9:806–813
IPCC (2014) Summary for policymakers. In: Stocker TF, Qin D, Plattner GK, Tignor M, Allen SK,
Boschung J, Nauels A, Xia Y, Bex V, Midgley PM (eds) Climate change 2013: the physical
science basis. Contribution of working group I to the fifth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge
IPCC (Intergovernmental Panel on Climate Change) (2012) Managing the risks of extreme events
and disasters to advance climate change adaptation. In Field CB, Barros V, Stocker TF, Qin D,
Dokken DJ, Ebi KL, Mastrandrea MD, Mach KJ, Plattner GK, Allen SK, Tignor M, Midgley
PM (eds.), A special report of working groups I and II of the intergovernmental panel on climate
change. Cambridge University Press, Cambridge, pp. 582
Johkan M, Oda M, Maruo T, Shinohara Y (2011) Crop production and global warming. In:
Casalegno S (ed) Global warming impacts-case studies on the economy, human health, and
on urban and natural environments. InTech, Rijeka, pp 139–152
Jones RJ, Setter TL (2000) Hormonal regulation of early kernel development. In: Westgate M,
Boote K (eds) Physiology and modeling kernel set in maize. Crop Science Society of America,
Madison, WI, pp 25–42
Jones HG, Sirault XRR (2014) Scaling of thermal images at different spatial resolution: the mixed
pixel problem. Agron 4:380–396
Jordan PW, Nobel PS (1984) Thermal and water relations of roots of desert succulents. Ann Bot
54:705–717
Kajla M, Yadav VK, Chhokar RS, Sharma RK (2015) Management practices to mitigate the impact
of high temperature on wheat. J Wheat Res 7:1–12
Kamrani M, Hoseini Y, Ebadollahi A (2018) Evaluation for heat stress tolerance in durum wheat
genotypes using stress tolerance indices. Arch Agron Soil Sci 64(1):38–45
Kanno K, Mae T, Makino A (2009) High night temperature stimulates photosynthesis, biomass
production and growth during the vegetative stage of rice plants. Soil Sci Plant Nutr 55:124–131
Karim MA, Fracheboud Y, Stamp P (1997) Heat tolerance of maize with reference of some
physiological characteristics. Ann Bangladesh Agric 7:27–33
3 Plant Morphological, Physiological Traits Associated with Adaptation Against. . .
73
Plant Sci 14:30–36. https://doi.org/10.1016/j.tplants.2008.11.001
Heffner EL, Sorrells ME, Jannink JL (2009) Genomic selection for crop improvement. Crop Sci
49:1–12. https://doi.org/10.2135/crop-sci2008.08.0512
Hossain AB, Sears AG, Cox TS, Paulsen GM (1990) Desiccation tolerance and its relationship to
assimilate partitioning in winter wheat. Crop Sci 30:622–627
Howarth CJ (2005) Genetic improvements of tolerance to high temperature. In: Ashraf M, Harris
HJC (eds) Abiotic stresses—plant resistance through breeding and molecular approaches. The
Haworth Press, New York, pp 277–300
Huang BR, Taylor HM, McMichael BL (1991) Growth and development of seminal and crown
roots of wheat seedlings as affected by temperature. Environ Exp Bot 31:471–477
Huang B, Rachmilevitch S, Xu J (2012) Root carbon and protein metabolism associated with heat
tolerance. J Exp Bot 63:3455–3465. https://doi.org/10.1093/jxb/ers003
Hussain HA, Men S, Hussain S, Chen Y, Ali S, Zhang S et al (2019) Interactive effects of drought
and heat stresses on morphophysiological attributes, yield, nutrient uptake and oxidative status
in maize hybrids. Sci Rep 9:3890. https://doi.org/10.1038/s41598-019-40362-7
Huve K, Bichele I, Tobias M, Niinemets U (2005) Heat sensitivity of photosynthetic electron
transport varies during the day due to changes in sugars and osmotic potential. Plant Cell
Environ 29:212–218
Iba K (2002) Acclimative response to temperature stress in higher plants: approaches of gene
engineering for temperature tolerance. Annu Rev Plant Biol 53:225–245. https://doi.org/10.
1146/annurev.arplant.53.100201.160729
Ibrahim AMH, Quick JS (2001) Genetic control of high temperature tolerance in wheat as measured
by membrane thermal stability. Crop Sci 41(5):1405–1407
Iloh AC, Omatta G, Ogbadu GH, Onyenekwe PC (2014) Effects of elevated temperature on seed
germination and seedling growth on three cereal crops in Nigeria. Sci Res Essays 9:806–813
IPCC (2014) Summary for policymakers. In: Stocker TF, Qin D, Plattner GK, Tignor M, Allen SK,
Boschung J, Nauels A, Xia Y, Bex V, Midgley PM (eds) Climate change 2013: the physical
science basis. Contribution of working group I to the fifth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge
IPCC (Intergovernmental Panel on Climate Change) (2012) Managing the risks of extreme events
and disasters to advance climate change adaptation. In Field CB, Barros V, Stocker TF, Qin D,
Dokken DJ, Ebi KL, Mastrandrea MD, Mach KJ, Plattner GK, Allen SK, Tignor M, Midgley
PM (eds.), A special report of working groups I and II of the intergovernmental panel on climate
change. Cambridge University Press, Cambridge, pp. 582
Johkan M, Oda M, Maruo T, Shinohara Y (2011) Crop production and global warming. In:
Casalegno S (ed) Global warming impacts-case studies on the economy, human health, and
on urban and natural environments. InTech, Rijeka, pp 139–152
Jones RJ, Setter TL (2000) Hormonal regulation of early kernel development. In: Westgate M,
Boote K (eds) Physiology and modeling kernel set in maize. Crop Science Society of America,
Madison, WI, pp 25–42
Jones HG, Sirault XRR (2014) Scaling of thermal images at different spatial resolution: the mixed
pixel problem. Agron 4:380–396
Jordan PW, Nobel PS (1984) Thermal and water relations of roots of desert succulents. Ann Bot
54:705–717
Kajla M, Yadav VK, Chhokar RS, Sharma RK (2015) Management practices to mitigate the impact
of high temperature on wheat. J Wheat Res 7:1–12
Kamrani M, Hoseini Y, Ebadollahi A (2018) Evaluation for heat stress tolerance in durum wheat
genotypes using stress tolerance indices. Arch Agron Soil Sci 64(1):38–45
Kanno K, Mae T, Makino A (2009) High night temperature stimulates photosynthesis, biomass
production and growth during the vegetative stage of rice plants. Soil Sci Plant Nutr 55:124–131
Karim MA, Fracheboud Y, Stamp P (1997) Heat tolerance of maize with reference of some
physiological characteristics. Ann Bangladesh Agric 7:27–33
3 Plant Morphological, Physiological Traits Associated with Adaptation Against. . .
73
