Karim MA, Fracheboud Y, Stamp P (1999) Photosynthetic activity of developing leaves of Zea
mays is less affected by heat stress than that of developed leaves. Physiol Plant 105:685–693.
https://doi.org/10.1034/j.1399-3054.1999.105413.x
Kast EJ, Nguyen MDT, Lawrence RE, Rabeler C, Kaplinsky NJ (2013) The rootscope: a simple
high-throughput screening system for quantitating gene expression dynamics in plant roots.
BMC Plant Biol 13:158
Kawano T, Sahashi N, Takahashi K, Uozumi N, Muto S (1998) Salicylic acid induces extracellular
superoxide generation followed by an increase in cytosolic calcium ion in tobacco suspension
culture: the earliest events in salicylic acid signal transduction. Plant Cell Physiol 39:721–730
Khodarahmpour Z (2011) Genetic analysis of tolerance to heat stress in maize (Zea mays L.). Afr J
Agric Res 6:2767–2773
Klopfenstein TJ, Erickson GE, Berger LL (2013) Maize is a critically important source of food,
feed, energy and forage in the USA. Field Crops Res 153:5–11. https://doi.org/10.1016/j.fcr.
2012.11.006
Kobza J, Edwards GE (1987) Influences of leaf temperature on photosynthetic carbon metabolism
in wheat. Plant Physiol 83:69–74
Kosova K, Vítamvas P, Prasil IT, Renaut J (2011) Plant proteome changes under abiotic stresscontribution of proteomics studies to understanding plant stress response. J Proteome
74:1301–1322
Kumar U, Joshi AK, Kumari M, Paliwal R, Kumar S, Roder MS (2010) Identification of QTLs for
stay green trait in wheat (Triticum aestivum L.) in the ‘Chirya 3’ x ‘Sonalika’ population.
Euphytica 174:437–445. https://doi.org/10.1007/s10681-010-0155-6
Kumar S, Gupta D, Nayyar H (2012) Comparative response of maize and rice genotypes to heat
stress: status of oxidative stress and antioxidants. Acta Physiol Plant 34:75–86
Kurahashi Y, Terashima A, Takumi S (2009) Variation in dehydration tolerance, ABA sensitivity
and related gene expression patterns in D-genome progenitor and synthetic hexaploid wheat
lines. Int J Mol Sci 10(6):2733–2751
Laghri KA, Mahboob AS, Arain MA (2012) Effect of high temperature stress on grain yield and
yield components of wheat (Triticum aestivum L.). Sci Technol Dev 31:83–90
Larkindale J, Huang B (2005) Effects of abscisic acid, salicylic acid, ethylene and hydrogen
peroxide in thermotolerance and recovery for creeping bentgrass. Plant Growth Regul 47:17–28
Lata C, Prasad M (2011) Role of DREBs in regulation of abiotic stress responses in plants. J Exp
Bot 62:4731–4748
Lesk C, Rowhani P, Ramankutty N (2016) Influence of extreme weather disasters on global crop
production. Nature 529:84–87. https://doi.org/10.1038/nature16467
Levitt J (1980) Response of plants to environmental stresses. Chilling, freezing and high temperature stresses, vol I. Academic Press, New York, p 497
Li Z, Peng T, Xie Q, Han S, Tian J (2010) Mapping of QTL for tiller number at different stages of
growth in wheat using double haploid and immortalized F2 populations. J Genet 89:409–415.
https://doi.org/10.1007/s12041-010-0059-1
Li YF, Wu Y, Hernandez-Espinosa N, Pena RJ (2013) Heat and drought stress on durum wheat:
responses of genotypes, yield, and quality parameters. J Cereal Sci 57:398–404. https://doi.org/
10.1016/j.jcs.2013.01.005
Lin CS, Binns M, Lefkovitch LP (1986) Stability analysis where do we stand? Crop Sci 26:894–900
Liu X, Huang B (2000) Carbohydrate accumulation in relation to heat stress tolerance in two
creeping bentgrass cultivars. J Am Soc Hortic Sci 125:442–447
Lizana XC, Calderini DF (2013) Yield and grain quality of wheat in response to increased
temperatures at key periods for grain number and grain weight determination: considerations
for the climatic change scenarios of Chile. J Agric Sci 151:209–221
Lobell DB, Gourdji SM (2012) The influence of climate change on global crop productivity. Plant
Physiol 160(4):1686–1697
Lobell DB, Banziger M, Magorokosho C, Vivek B (2011) Nonlinear heat effects on African maize
as evidenced by historical yield trials. Nat Clim Chang 1:42–45
74
R. Gajghate et al.
mays is less affected by heat stress than that of developed leaves. Physiol Plant 105:685–693.
https://doi.org/10.1034/j.1399-3054.1999.105413.x
Kast EJ, Nguyen MDT, Lawrence RE, Rabeler C, Kaplinsky NJ (2013) The rootscope: a simple
high-throughput screening system for quantitating gene expression dynamics in plant roots.
BMC Plant Biol 13:158
Kawano T, Sahashi N, Takahashi K, Uozumi N, Muto S (1998) Salicylic acid induces extracellular
superoxide generation followed by an increase in cytosolic calcium ion in tobacco suspension
culture: the earliest events in salicylic acid signal transduction. Plant Cell Physiol 39:721–730
Khodarahmpour Z (2011) Genetic analysis of tolerance to heat stress in maize (Zea mays L.). Afr J
Agric Res 6:2767–2773
Klopfenstein TJ, Erickson GE, Berger LL (2013) Maize is a critically important source of food,
feed, energy and forage in the USA. Field Crops Res 153:5–11. https://doi.org/10.1016/j.fcr.
2012.11.006
Kobza J, Edwards GE (1987) Influences of leaf temperature on photosynthetic carbon metabolism
in wheat. Plant Physiol 83:69–74
Kosova K, Vítamvas P, Prasil IT, Renaut J (2011) Plant proteome changes under abiotic stresscontribution of proteomics studies to understanding plant stress response. J Proteome
74:1301–1322
Kumar U, Joshi AK, Kumari M, Paliwal R, Kumar S, Roder MS (2010) Identification of QTLs for
stay green trait in wheat (Triticum aestivum L.) in the ‘Chirya 3’ x ‘Sonalika’ population.
Euphytica 174:437–445. https://doi.org/10.1007/s10681-010-0155-6
Kumar S, Gupta D, Nayyar H (2012) Comparative response of maize and rice genotypes to heat
stress: status of oxidative stress and antioxidants. Acta Physiol Plant 34:75–86
Kurahashi Y, Terashima A, Takumi S (2009) Variation in dehydration tolerance, ABA sensitivity
and related gene expression patterns in D-genome progenitor and synthetic hexaploid wheat
lines. Int J Mol Sci 10(6):2733–2751
Laghri KA, Mahboob AS, Arain MA (2012) Effect of high temperature stress on grain yield and
yield components of wheat (Triticum aestivum L.). Sci Technol Dev 31:83–90
Larkindale J, Huang B (2005) Effects of abscisic acid, salicylic acid, ethylene and hydrogen
peroxide in thermotolerance and recovery for creeping bentgrass. Plant Growth Regul 47:17–28
Lata C, Prasad M (2011) Role of DREBs in regulation of abiotic stress responses in plants. J Exp
Bot 62:4731–4748
Lesk C, Rowhani P, Ramankutty N (2016) Influence of extreme weather disasters on global crop
production. Nature 529:84–87. https://doi.org/10.1038/nature16467
Levitt J (1980) Response of plants to environmental stresses. Chilling, freezing and high temperature stresses, vol I. Academic Press, New York, p 497
Li Z, Peng T, Xie Q, Han S, Tian J (2010) Mapping of QTL for tiller number at different stages of
growth in wheat using double haploid and immortalized F2 populations. J Genet 89:409–415.
https://doi.org/10.1007/s12041-010-0059-1
Li YF, Wu Y, Hernandez-Espinosa N, Pena RJ (2013) Heat and drought stress on durum wheat:
responses of genotypes, yield, and quality parameters. J Cereal Sci 57:398–404. https://doi.org/
10.1016/j.jcs.2013.01.005
Lin CS, Binns M, Lefkovitch LP (1986) Stability analysis where do we stand? Crop Sci 26:894–900
Liu X, Huang B (2000) Carbohydrate accumulation in relation to heat stress tolerance in two
creeping bentgrass cultivars. J Am Soc Hortic Sci 125:442–447
Lizana XC, Calderini DF (2013) Yield and grain quality of wheat in response to increased
temperatures at key periods for grain number and grain weight determination: considerations
for the climatic change scenarios of Chile. J Agric Sci 151:209–221
Lobell DB, Gourdji SM (2012) The influence of climate change on global crop productivity. Plant
Physiol 160(4):1686–1697
Lobell DB, Banziger M, Magorokosho C, Vivek B (2011) Nonlinear heat effects on African maize
as evidenced by historical yield trials. Nat Clim Chang 1:42–45
74
R. Gajghate et al.
