Levitt J (1980) Responses of plants to environmental stresses. In: Chilling, freezing, and high
temperature stresses, vol 1, 2nd edn. Academic Press, New York, p 497
Lichtenthaler HK (1998) The stress concept in plants: an introduction. Ann N Y Acad Sci
851:187–198
Lisar SYS, Motafakkerazad R, Hossain MM, Rahman IMM (2012) Water stress in plants: causes,
effects and responses. Intech, Rijeka. https://doi.org/10.5772/39363
Liu D, Zhang X, Cheng Y, Takano T, Liu S (2006) RHSP90 gene expression in response to several
environmental stresses in rice (Oryza sativa L.). Plant Physiol Biochem 44:380–386
Mariani L, Ferrante A (2017) Agronomic management for enhancing plant tolerance to abiotic
stresses-drought, salinity, hypoxia, and lodging. Horticulturae 3:52
Mittler R (2006) Abiotic stress, the field environment and stress combination. Trends Plant Sci
11:15–19
Munns R, Tester M (2008) Mechanisms of salinity tolerance. Annu Rev Plant Biol 59:651–681
Nahar K, Hasanuzzaman M, Ahamed KA, Hakeem KR, Ozturk M, Fujita M (2015) Plant responses
and tolerance to high temperature stress: role of exogenous phytoprotectants. In: Hakeem KR
(ed) Crop production and global environmental issues. Springer, Cham. https://doi.org/10.1007/
978-3-319-23162-4_17
Nieto-Sotelo J, Martinez LM, Ponce G, Cassab GI, Alagon A, Meeley RB, Ribaut JM, Yang R
(2002) Maize HSP101 plays important roles in both induced and basal Thermotolerance and
primary root growth. Plant Cell 14:1621–1633
Palva ET, Htiharju ST, Tamminen I, Puhakainen T, Laitinen R, Svensson J, Helenius E, Heino P
(2002) Biological mechanisms of low temperature stress response: cold acclimation and development of freezing tolerance in plants. JIRCAS Work Ret 23:9–15
Pollock CJ, Eagles CF (1988) Low temperature and the growth of plants. In: Long SP, Woodward
FI (eds) Plants and temperature, vol 42. Society for Experimental Biology Symposium, Company of biologists, Cambridge, pp 157–180
Popova OV, Dinh HQ, Aufsatz W, Jonak C (2013) The RdDM pathway is required for basal heat
tolerance in Arabidopsis. Mol Plant 6:396–410. https://doi.org/10.1093/mp/sst023
Queitsch C, Hong SW, Vierling E, Lindquist S (2000) Heat shock protein 101 plays a crucial role in
Thermotolerance in Arabidopsis. Plant Cell 12:479–492. https://doi.org/10.1105/tpc.12.4.479
Ramana GV, Padhy SP, Chaitanya KV (2012) Differential responses of our soybean (Glycine max
L.) cultivars to salinity stress. Legume Res 35:185–193
Rasool S, Hameed S, Azooz MM, Rehman MU, Siddiqi TO, Ahmed P (2013) Salt stress: causes,
types and responses of plants. In: Ahmad P, Azooz MM, Prasad MNV (eds) Ecophysiology and
responses of plants under salt stress. Springer, New York, pp 1–24. https://doi.org/10.1007/9781-4614-4747-4_1
Reddy PS, Kishor PBK, Seiler C, Kuhlmann M, Eschen-Lippold L, Lee J, Reddy MK, Sreenivasulu
N (2014) Unraveling regulation of the small heat shock proteins by the heat shock factor
HvHsfB2c in barley: its implications in drought stress response and seed development. PLoS
One 9(3):e89125. https://doi.org/10.1371/journal.pone.0089125
Saxena B, Shukla K, Giri B (2017) Arbuscular mycorrhizal fungi and tolerance of salt stress in
plants. In: Arbuscular mycorrhizas and stress tolerance of plants. Springer, Singapore, pp 67–97.
https://doi.org/10.1007/978-981-10-4115-0_4
Scoccianti V, Crinelli R, Tirillini B, Mancinelli V, Speranza A (2006) Uptake and toxicity of Cr
(Cr
3+ ) in celery seedlings. Chemosphere 64:1695–1703
Shahid M, Khalid S, Abbas G, Shahid N, Nadeem M, Sabir M, Aslam M, Dumat C (2015) Heavy
metal stress and crop productivity. In: Hakeem K et al (eds) Crop production and global
environmental issues. Springer, Cham
Sharma P, Dubey RS (2005) Lead toxicity in plants. Braz J Plant Physiol 17:35–52
Sharma V, Rena V, Kumar D, Pandey RN, Singh B (2016) Sulfur regulates iron uptake and iron use
efficiency in bread and durum wheat. Ind J Plant Physiol 21:189–196
Shelford VE (1952) Paired factors and master factors in environmental relations. Ill Acad Sci Trans
45:155–160
14
P. Baweja and G. Kumar
temperature stresses, vol 1, 2nd edn. Academic Press, New York, p 497
Lichtenthaler HK (1998) The stress concept in plants: an introduction. Ann N Y Acad Sci
851:187–198
Lisar SYS, Motafakkerazad R, Hossain MM, Rahman IMM (2012) Water stress in plants: causes,
effects and responses. Intech, Rijeka. https://doi.org/10.5772/39363
Liu D, Zhang X, Cheng Y, Takano T, Liu S (2006) RHSP90 gene expression in response to several
environmental stresses in rice (Oryza sativa L.). Plant Physiol Biochem 44:380–386
Mariani L, Ferrante A (2017) Agronomic management for enhancing plant tolerance to abiotic
stresses-drought, salinity, hypoxia, and lodging. Horticulturae 3:52
Mittler R (2006) Abiotic stress, the field environment and stress combination. Trends Plant Sci
11:15–19
Munns R, Tester M (2008) Mechanisms of salinity tolerance. Annu Rev Plant Biol 59:651–681
Nahar K, Hasanuzzaman M, Ahamed KA, Hakeem KR, Ozturk M, Fujita M (2015) Plant responses
and tolerance to high temperature stress: role of exogenous phytoprotectants. In: Hakeem KR
(ed) Crop production and global environmental issues. Springer, Cham. https://doi.org/10.1007/
978-3-319-23162-4_17
Nieto-Sotelo J, Martinez LM, Ponce G, Cassab GI, Alagon A, Meeley RB, Ribaut JM, Yang R
(2002) Maize HSP101 plays important roles in both induced and basal Thermotolerance and
primary root growth. Plant Cell 14:1621–1633
Palva ET, Htiharju ST, Tamminen I, Puhakainen T, Laitinen R, Svensson J, Helenius E, Heino P
(2002) Biological mechanisms of low temperature stress response: cold acclimation and development of freezing tolerance in plants. JIRCAS Work Ret 23:9–15
Pollock CJ, Eagles CF (1988) Low temperature and the growth of plants. In: Long SP, Woodward
FI (eds) Plants and temperature, vol 42. Society for Experimental Biology Symposium, Company of biologists, Cambridge, pp 157–180
Popova OV, Dinh HQ, Aufsatz W, Jonak C (2013) The RdDM pathway is required for basal heat
tolerance in Arabidopsis. Mol Plant 6:396–410. https://doi.org/10.1093/mp/sst023
Queitsch C, Hong SW, Vierling E, Lindquist S (2000) Heat shock protein 101 plays a crucial role in
Thermotolerance in Arabidopsis. Plant Cell 12:479–492. https://doi.org/10.1105/tpc.12.4.479
Ramana GV, Padhy SP, Chaitanya KV (2012) Differential responses of our soybean (Glycine max
L.) cultivars to salinity stress. Legume Res 35:185–193
Rasool S, Hameed S, Azooz MM, Rehman MU, Siddiqi TO, Ahmed P (2013) Salt stress: causes,
types and responses of plants. In: Ahmad P, Azooz MM, Prasad MNV (eds) Ecophysiology and
responses of plants under salt stress. Springer, New York, pp 1–24. https://doi.org/10.1007/9781-4614-4747-4_1
Reddy PS, Kishor PBK, Seiler C, Kuhlmann M, Eschen-Lippold L, Lee J, Reddy MK, Sreenivasulu
N (2014) Unraveling regulation of the small heat shock proteins by the heat shock factor
HvHsfB2c in barley: its implications in drought stress response and seed development. PLoS
One 9(3):e89125. https://doi.org/10.1371/journal.pone.0089125
Saxena B, Shukla K, Giri B (2017) Arbuscular mycorrhizal fungi and tolerance of salt stress in
plants. In: Arbuscular mycorrhizas and stress tolerance of plants. Springer, Singapore, pp 67–97.
https://doi.org/10.1007/978-981-10-4115-0_4
Scoccianti V, Crinelli R, Tirillini B, Mancinelli V, Speranza A (2006) Uptake and toxicity of Cr
(Cr
3+ ) in celery seedlings. Chemosphere 64:1695–1703
Shahid M, Khalid S, Abbas G, Shahid N, Nadeem M, Sabir M, Aslam M, Dumat C (2015) Heavy
metal stress and crop productivity. In: Hakeem K et al (eds) Crop production and global
environmental issues. Springer, Cham
Sharma P, Dubey RS (2005) Lead toxicity in plants. Braz J Plant Physiol 17:35–52
Sharma V, Rena V, Kumar D, Pandey RN, Singh B (2016) Sulfur regulates iron uptake and iron use
efficiency in bread and durum wheat. Ind J Plant Physiol 21:189–196
Shelford VE (1952) Paired factors and master factors in environmental relations. Ill Acad Sci Trans
45:155–160
14
P. Baweja and G. Kumar
