Momcilovic I, Ristic Z (2007) Expression of chloroplast protein synthesis elongation factor, EF-Tu,
in two lines of maize with contrasting tolerance to heat stress during early stages of plant
development. J Plant Physiol 164:90–99. https://doi.org/10.1016/j.jplph.2006.01.010
Monje O, Anderson S, Stutte GW (2007) The effects of elevated root zone temperature on the
development and carbon partitioning of spring wheat. J Am Soc Hortic Sci 132(2):178–184
Murata N, Takahashi S, Nishiyama Y, Allakhverdiev SI (2007) Photoinhibition of photosystem II
under environmental stress. Biochim Biophys Acta Bioenerg 1767(6):414–421. https://doi.org/
10.1016/j.bbabio.2006.11.019
Nagel KA, Kastenholz B, Jahnke S, Dusschoten DV et al (2009) Temperature responses of roots:
impact on growth, root system architecture and implications for phenotyping. Funct Plant Biol
36:947–959
Naidu SL, Moose SP, AL-Shoaibi AK, Raines CA, Long SP (2003) Cold tolerance of C4
photosynthesis in Miscanthus giganteus: adaptation in amounts and sequence of C4 photosynthetic enzymes. Plant Physiol 132:1688–1697. https://doi.org/10.1104/pp.103.021790
Narayanan S, Prasad PV, Welti R (2016) Wheat leaf lipids during heat stress: II. Lipids
experiencing coordinated metabolism are detected by analysis of lipid co-occurrence. Plant
Cell Environ 39:608–617
Narayanan S, Prasad PVV, Welti R (2018) Alterations in wheat pollen lipidome during high day
and night temperature stress. Plant Cell Environ 41:1749–1761
Nawaz A, Farooq M, Cheema SA, Wahid A (2013) Differential response of wheat cultivars to
terminal heat stress. Int J Agric Biol 15:1354–1358
Nicolas ME, Gleadow RM, Dalling MJ (1984) Effects of drought and high temperature on grain
growth in wheat. Aust J Plant Physiol 11:553–566
Ortiz R, Sayre KD, Govaerts B, Gupta R, Subbarao GV, Ban T, Hodson D, Dixon JM, OrtizMonasterio JI, Reynolds M (2008) Climate change: can wheat beat the heat? Agric Ecosyst
Environ 126:46–58. https://doi.org/10.1016/j.agee.2008.01.019
Ottaviano E, Sari-Gorla M, Pe E, Frova C (1991) Molecular markers (RFLPs and HSPs) for the
genetic dissection of thermo tolerance in maize. Theor Appl Genet 81:713–719
Ottaviano E, Mulcahy DL, Sari Gorla M, Bergamini Mulcahy G (1992) Angiosperm pollen and
ovules. Springer-Verlag, New York, pp 355–358
Ottman MJ, Kimball BA, White JW, Wall GW (2012) Wheat growth response to increased
temperature from varied planting dates and supplemental infrared heating. Agron J 104:7–16
Paliwal R, Roder MS, Kumar U, Srivastava JP, Joshi AK (2012) QTL mapping of terminal heat
tolerance in hexaploid wheat (T. aestivum L.). Theor Appl Genet 125:561–575. https://doi.org/
10.1007/s00122-012-1853-3
Parmar N, Singh KH, Sharma D, Singh L, Kumar P, Nanjundan J et al (2017) Genetic engineering
strategies for biotic and abiotic stress tolerance and quality enhancement in horticultural crops: a
comprehensive review. 3 Biotech 7:239. https://doi.org/10.1007/s13205-017-0870-y
Parry MAJ, Reynolds M, Salvucci ME et al (2011) Raising yield potential of wheat. II. Increasing
photosynthetic capacity and efficiency. J Exp Bot 62(2):453–467. https://doi.org/10.1093/jxb/
erq304
Paulsen GM (1994) High temperature responses of crop plants. In: Boote KJ, Bennett JM, Sinclair
TR, Paulsen GM (eds) Physiology and determination of crop yield. ASA, CSSA, and SSSA,
Madison, WI, pp 365–389
Peng S, Huang J, Sheehy JE, Laza RC et al (2004) Rice yields decline with higher night temperature
from global warming. Proc Natl Acad Sci U S A 101:9971–9975
Perego A, Sanna M, Giussani A, Chiodini ME, Fumagalli M, Pilu SR et al (2014) Designing a high
yielding maize ideotype for a changing climate in Lombardy plain (northern Italy). Sci Total
Environ 499:497–509. https://doi.org/10.1016/j.scitotenv.2014.05.092
Pinto RS, Reynolds MP, Mathews KL, McIntyre CL, Olivares-Villegas JJ, Chapman SC (2010)
Heat and drought adaptive QTL in a wheat population designed to minimize confounding
agronomic effects. Theor Appl Genet 121:1001–1021. https://doi.org/10.1007/s00122-0101351-4
76
R. Gajghate et al.
in two lines of maize with contrasting tolerance to heat stress during early stages of plant
development. J Plant Physiol 164:90–99. https://doi.org/10.1016/j.jplph.2006.01.010
Monje O, Anderson S, Stutte GW (2007) The effects of elevated root zone temperature on the
development and carbon partitioning of spring wheat. J Am Soc Hortic Sci 132(2):178–184
Murata N, Takahashi S, Nishiyama Y, Allakhverdiev SI (2007) Photoinhibition of photosystem II
under environmental stress. Biochim Biophys Acta Bioenerg 1767(6):414–421. https://doi.org/
10.1016/j.bbabio.2006.11.019
Nagel KA, Kastenholz B, Jahnke S, Dusschoten DV et al (2009) Temperature responses of roots:
impact on growth, root system architecture and implications for phenotyping. Funct Plant Biol
36:947–959
Naidu SL, Moose SP, AL-Shoaibi AK, Raines CA, Long SP (2003) Cold tolerance of C4
photosynthesis in Miscanthus giganteus: adaptation in amounts and sequence of C4 photosynthetic enzymes. Plant Physiol 132:1688–1697. https://doi.org/10.1104/pp.103.021790
Narayanan S, Prasad PV, Welti R (2016) Wheat leaf lipids during heat stress: II. Lipids
experiencing coordinated metabolism are detected by analysis of lipid co-occurrence. Plant
Cell Environ 39:608–617
Narayanan S, Prasad PVV, Welti R (2018) Alterations in wheat pollen lipidome during high day
and night temperature stress. Plant Cell Environ 41:1749–1761
Nawaz A, Farooq M, Cheema SA, Wahid A (2013) Differential response of wheat cultivars to
terminal heat stress. Int J Agric Biol 15:1354–1358
Nicolas ME, Gleadow RM, Dalling MJ (1984) Effects of drought and high temperature on grain
growth in wheat. Aust J Plant Physiol 11:553–566
Ortiz R, Sayre KD, Govaerts B, Gupta R, Subbarao GV, Ban T, Hodson D, Dixon JM, OrtizMonasterio JI, Reynolds M (2008) Climate change: can wheat beat the heat? Agric Ecosyst
Environ 126:46–58. https://doi.org/10.1016/j.agee.2008.01.019
Ottaviano E, Sari-Gorla M, Pe E, Frova C (1991) Molecular markers (RFLPs and HSPs) for the
genetic dissection of thermo tolerance in maize. Theor Appl Genet 81:713–719
Ottaviano E, Mulcahy DL, Sari Gorla M, Bergamini Mulcahy G (1992) Angiosperm pollen and
ovules. Springer-Verlag, New York, pp 355–358
Ottman MJ, Kimball BA, White JW, Wall GW (2012) Wheat growth response to increased
temperature from varied planting dates and supplemental infrared heating. Agron J 104:7–16
Paliwal R, Roder MS, Kumar U, Srivastava JP, Joshi AK (2012) QTL mapping of terminal heat
tolerance in hexaploid wheat (T. aestivum L.). Theor Appl Genet 125:561–575. https://doi.org/
10.1007/s00122-012-1853-3
Parmar N, Singh KH, Sharma D, Singh L, Kumar P, Nanjundan J et al (2017) Genetic engineering
strategies for biotic and abiotic stress tolerance and quality enhancement in horticultural crops: a
comprehensive review. 3 Biotech 7:239. https://doi.org/10.1007/s13205-017-0870-y
Parry MAJ, Reynolds M, Salvucci ME et al (2011) Raising yield potential of wheat. II. Increasing
photosynthetic capacity and efficiency. J Exp Bot 62(2):453–467. https://doi.org/10.1093/jxb/
erq304
Paulsen GM (1994) High temperature responses of crop plants. In: Boote KJ, Bennett JM, Sinclair
TR, Paulsen GM (eds) Physiology and determination of crop yield. ASA, CSSA, and SSSA,
Madison, WI, pp 365–389
Peng S, Huang J, Sheehy JE, Laza RC et al (2004) Rice yields decline with higher night temperature
from global warming. Proc Natl Acad Sci U S A 101:9971–9975
Perego A, Sanna M, Giussani A, Chiodini ME, Fumagalli M, Pilu SR et al (2014) Designing a high
yielding maize ideotype for a changing climate in Lombardy plain (northern Italy). Sci Total
Environ 499:497–509. https://doi.org/10.1016/j.scitotenv.2014.05.092
Pinto RS, Reynolds MP, Mathews KL, McIntyre CL, Olivares-Villegas JJ, Chapman SC (2010)
Heat and drought adaptive QTL in a wheat population designed to minimize confounding
agronomic effects. Theor Appl Genet 121:1001–1021. https://doi.org/10.1007/s00122-0101351-4
76
R. Gajghate et al.
