Impacts of Climate Change on Microbial Activity in Agricultural …
111
References
1. Zahran MA (2010) Climate–vegetation relationships: perspectives. In: Gilbert F (ed) Climate–vegetation: Afro-Asian Mediterranean and Red Sea coastal lands. Springer Netherlands,
Dordrecht, pp 219–248. https://doi.org/10.1007/978-90-481-8595-5_3
2. El Kenawy A, López-Moreno JI, Vicente-Serrano SM, Morsi F (2010) Climatological modeling
of monthly air temperature and precipitation in Egypt through GIS techniques. Clim Res
42(2):161–176
3. Agrawala S, Moehner A, El Raey M, Conway D, Van Aalst M, Hagenstad M, Smith J (2004)
Development and climate change in Egypt: focus on coastal resources and the Nile. Working Party on Global and Structural Policies, Organization for Economic Cooperation and
Development (OECD)
4. El Massah S, Omran G (2015) Would climate change affect the imports of cereals? The case
of Egypt. In: Leal Filho W (ed) Handbook of climate change adaptation. Springer Berlin
Heidelberg, Berlin, Heidelberg, pp 657–683. https://doi.org/10.1007/978-3-642-38670-1_61
5. Agwa HE, Al-Sodany YM (2003) Arbuscular-mycorrhizal fungi (Glomales) in Egypt. III:
distribution and ecology in some plants in El-Omayed Biosphere Reserve. Egypt J Biol 5:19–26
6. Zahran H, Moharram A, Mohammad H (1992) Some ecological and physiological studies on
bacteria isolated from salt-affected soils of Egypt. J Basic Microbiol 32(6):405–413
7. Abd El-Azeem SA, Mehana TA, Shabayek AA (2007) Some plant growth promoting traits
of rhizobacteria isolated from Suez Canal region, Egypt. In: African crop science conference
proceedings, pp 1517–1525
8. Hanna AL, Youssef HH, Amer WM, Monib M, Fayez M, Hegazi NA (2013) Diversity of
bacteria nesting the plant cover of north Sinai deserts, Egypt. J Adv Res 4(1):13–26. https://
doi.org/10.1016/j.jare.2011.11.003
9. Abd El-Azeem SA, Elwan MW, Sung J-K, Ok YS (2012) Alleviation of salt stress in eggplant
(Solanum melongena L.) by plant-growth-promoting rhizobacteria. Commun Soil Sci Plant
Anal 43(9):1303–1315
10. Bruce K, Jones T, Bezemer T, Thompson L, Ritchie D (2000) The effect of elevated atmospheric
carbon dioxide levels on soil bacterial communities. Glob Change Biol 6(4):427–434
11. Runion G, Curl E, Rogers H, Backman P, Rodriguez-Kabana R, Helms B (1994) Effects of freeair CO 2 enrichment on microbial populations in the rhizosphere and phyllosphere of cotton.
Agric For Meteorol 70(1–4):117–130
12. Gao J, Wang E, Ren W, Liu X, Chen Y, Shi Y, Yang Y (2017) Effects of simulated climate change
on soil microbial biomass and enzyme activities in young Chinese fir (Cunninghamia lanceolata) in subtropical China. Acta Ecol Sin 37(4):272–278. https://doi.org/10.1016/j.chnaes.
2017.02.007
13. Manzoni S, Katul G (2014) Invariant soil water potential at zero microbial respiration explained
by hydrological discontinuity in dry soils. Geophys Res Lett 41(20):7151–7158
14. Yan N, Marschner P, Cao W, Zuo C, Qin W (2015) Influence of salinity and water content
on soil microorganisms. Int Soil Water Conserv Res 3(4):316–323. https://doi.org/10.1016/j.
iswcr.2015.11.003
15. Omar SA, Abdel-Sater MA, Khallil AM, Abd-Alla MH (1994) Growth and enzyme activities
of fungi and bacteria in soil salinized with sodium chloride. Folia Microbiol 39(1):23–28.
https://doi.org/10.1007/bf02814524
16. Sardans J, Peñuelas J (2005) Drought decreases soil enzyme activity in a Mediterranean Quercus ilex L. forest. Soil Biol Biochem 37(3):455–461. https://doi.org/10.1016/j.soilbio.2004.
08.004
17. Fierer N, Schimel JP (2002) Effects of drying-rewetting frequency on soil carbon and nitrogen
transformations. Soil Biol Biochem 34(6):777–787
18. Schjønning P, Thomsen IK, Moldrup P, Christensen BT (2003) Linking soil microbial activity
to water- and air-phase contents and diffusivities. Soil Sci Soc Am J 67(1):156–165. https://
doi.org/10.2136/sssaj2003.1560
111
References
1. Zahran MA (2010) Climate–vegetation relationships: perspectives. In: Gilbert F (ed) Climate–vegetation: Afro-Asian Mediterranean and Red Sea coastal lands. Springer Netherlands,
Dordrecht, pp 219–248. https://doi.org/10.1007/978-90-481-8595-5_3
2. El Kenawy A, López-Moreno JI, Vicente-Serrano SM, Morsi F (2010) Climatological modeling
of monthly air temperature and precipitation in Egypt through GIS techniques. Clim Res
42(2):161–176
3. Agrawala S, Moehner A, El Raey M, Conway D, Van Aalst M, Hagenstad M, Smith J (2004)
Development and climate change in Egypt: focus on coastal resources and the Nile. Working Party on Global and Structural Policies, Organization for Economic Cooperation and
Development (OECD)
4. El Massah S, Omran G (2015) Would climate change affect the imports of cereals? The case
of Egypt. In: Leal Filho W (ed) Handbook of climate change adaptation. Springer Berlin
Heidelberg, Berlin, Heidelberg, pp 657–683. https://doi.org/10.1007/978-3-642-38670-1_61
5. Agwa HE, Al-Sodany YM (2003) Arbuscular-mycorrhizal fungi (Glomales) in Egypt. III:
distribution and ecology in some plants in El-Omayed Biosphere Reserve. Egypt J Biol 5:19–26
6. Zahran H, Moharram A, Mohammad H (1992) Some ecological and physiological studies on
bacteria isolated from salt-affected soils of Egypt. J Basic Microbiol 32(6):405–413
7. Abd El-Azeem SA, Mehana TA, Shabayek AA (2007) Some plant growth promoting traits
of rhizobacteria isolated from Suez Canal region, Egypt. In: African crop science conference
proceedings, pp 1517–1525
8. Hanna AL, Youssef HH, Amer WM, Monib M, Fayez M, Hegazi NA (2013) Diversity of
bacteria nesting the plant cover of north Sinai deserts, Egypt. J Adv Res 4(1):13–26. https://
doi.org/10.1016/j.jare.2011.11.003
9. Abd El-Azeem SA, Elwan MW, Sung J-K, Ok YS (2012) Alleviation of salt stress in eggplant
(Solanum melongena L.) by plant-growth-promoting rhizobacteria. Commun Soil Sci Plant
Anal 43(9):1303–1315
10. Bruce K, Jones T, Bezemer T, Thompson L, Ritchie D (2000) The effect of elevated atmospheric
carbon dioxide levels on soil bacterial communities. Glob Change Biol 6(4):427–434
11. Runion G, Curl E, Rogers H, Backman P, Rodriguez-Kabana R, Helms B (1994) Effects of freeair CO 2 enrichment on microbial populations in the rhizosphere and phyllosphere of cotton.
Agric For Meteorol 70(1–4):117–130
12. Gao J, Wang E, Ren W, Liu X, Chen Y, Shi Y, Yang Y (2017) Effects of simulated climate change
on soil microbial biomass and enzyme activities in young Chinese fir (Cunninghamia lanceolata) in subtropical China. Acta Ecol Sin 37(4):272–278. https://doi.org/10.1016/j.chnaes.
2017.02.007
13. Manzoni S, Katul G (2014) Invariant soil water potential at zero microbial respiration explained
by hydrological discontinuity in dry soils. Geophys Res Lett 41(20):7151–7158
14. Yan N, Marschner P, Cao W, Zuo C, Qin W (2015) Influence of salinity and water content
on soil microorganisms. Int Soil Water Conserv Res 3(4):316–323. https://doi.org/10.1016/j.
iswcr.2015.11.003
15. Omar SA, Abdel-Sater MA, Khallil AM, Abd-Alla MH (1994) Growth and enzyme activities
of fungi and bacteria in soil salinized with sodium chloride. Folia Microbiol 39(1):23–28.
https://doi.org/10.1007/bf02814524
16. Sardans J, Peñuelas J (2005) Drought decreases soil enzyme activity in a Mediterranean Quercus ilex L. forest. Soil Biol Biochem 37(3):455–461. https://doi.org/10.1016/j.soilbio.2004.
08.004
17. Fierer N, Schimel JP (2002) Effects of drying-rewetting frequency on soil carbon and nitrogen
transformations. Soil Biol Biochem 34(6):777–787
18. Schjønning P, Thomsen IK, Moldrup P, Christensen BT (2003) Linking soil microbial activity
to water- and air-phase contents and diffusivities. Soil Sci Soc Am J 67(1):156–165. https://
doi.org/10.2136/sssaj2003.1560
