Impacts of Climate Change on Microbial Activity in Agricultural …
113
41. Hawkes CV, Hartley IP, Ineson P, Fitter AH (2008) Soil temperature affects carbon allocation within arbuscular mycorrhizal networks and carbon transport from plant to fungus. Glob
Change Biol 14(5):1181–1190
42. Gavito ME, Olsson PA, Rouhier H, Medina-Peñafiel A, Jakobsen I, Bago A, Azcón-Aguilar
C (2005) Temperature constraints on the growth and functioning of root organ cultures with
arbuscular mycorrhizal fungi. New Phytol 168(1):179–188
43. Heinemeyer A, Fitter A (2004) Impact of temperature on the arbuscular mycorrhizal (AM)
symbiosis: growth responses of the host plant and its AM fungal partner. J Exp Bot 55(396):525–
534
44. Egamberdiyeva D, Höflich G (2003) Influence of growth-promoting bacteria on the growth of
wheat in different soils and temperatures. Soil Biol Biochem 35(7):973–978
45. Zahran HH (2001) Rhizobia from wild legumes: diversity, taxonomy, ecology, nitrogen fixation
and biotechnology. J Biotechnol 91(2–3):143–153
46. Abd-El-Malek Y (1971) Free-living nitrogen-fixing bacteria in Egyptian soils and their possible
contribution to soil fertility. Plant Soil 35(1):423–442
47. Zogg GP, Zak DR, Ringelberg DB, White DC, MacDonald NW, Pregitzer KS (1997) Compositional and functional shifts in microbial communities due to soil warming. Soil Sci Soc Am
J 61(2):475–481
48. Saad OALO, Conrad R (1993) Temperature dependence of nitrification, denitrification, and
turnover of nitric oxide in different soils. Biol Fertil Soils 15(1):21–27. https://doi.org/10.1007/
bf00336283
49. Fawaz MM, Soliman SA (2016) The potential scenarios of the impacts of climate change on
Egyptian resources and agricultural plant production. Open J Appl Sci 6(4):270–286
50. Canadell JG, Schulze ED (2014) Global potential of biospheric carbon management for climate
mitigation. Nat Commun 5:5282
51. Pathak H, Aggarwal PK, Singh S (2012) Climate change impact, adaptation and mitigation
in agriculture: methodology for assessment and applications. Indian Agricultural Research
Institute
52. Balser TC, Gutknecht JL, Liang C (2010) How will climate change impact soil microbial
communities? In: Soil microbiology and sustainable crop production. Springer, pp 373–397
53. Soussana J, Hartwig U (1995) The effects of elevated CO 2 on symbiotic N 2 fixation: a link
between the carbon and nitrogen cycles in grassland ecosystems. Plant Soil 187(2):321–332
54. Carney KM, Hungate BA, Drake BG, Megonigal JP (2007) Altered soil microbial community
at elevated CO 2 leads to loss of soil carbon. Proc Natl Acad Sci 104(12):4990–4995
55. Niklaus PA (1998) Effects of elevated atmospheric CO 2 on soil microbiota in calcareous
grassland. Glob Change Biol 4(4):451–458
56. Dijkstra FA, Hobbie SE, Reich PB, Knops JM (2005) Divergent effects of elevated CO 2 , N
fertilization, and plant diversity on soil C and N dynamics in a grassland field experiment. Plant
Soil 272(1–2):41–52
57. Treseder KK, Allen MF (2000) Mycorrhizal fungi have a potential role in soil carbon storage
under elevated CO 2 and nitrogen deposition. New Phytol 147(1):189–200
58. Alberton O, Kuyper TW, Gorissen A (2005) Taking mycocentrism seriously: mycorrhizal
fungal and plant responses to elevated CO 2 . New Phytol 167(3):859–868
59. Nannipieri P (2011) Potential impacts of climate change on microbial function in soil. In:
Sustaining soil productivity in response to global climate change: science, policy, and ethics,
pp 201–211
60. Luske B, van der Kamp J (2009) Carbon sequestration potential of reclaimed desert soils in
Egypt. Louis Bolk Instituut & Soil and More International. http://orgprints.org/16438/1/2192.
pdf. Accessed 4 Dec 2009
61. Muñoz-Rojas M, Abd-Elmabod SK, Zavala LM, De la Rosa D, Jordán A (2017) Climate
change impacts on soil organic carbon stocks of Mediterranean agricultural areas: a case study
in Northern Egypt. Agric Ecosyst Environ 238(Supplement C):142–152. https://doi.org/10.
1016/j.agee.2016.09.001
113
41. Hawkes CV, Hartley IP, Ineson P, Fitter AH (2008) Soil temperature affects carbon allocation within arbuscular mycorrhizal networks and carbon transport from plant to fungus. Glob
Change Biol 14(5):1181–1190
42. Gavito ME, Olsson PA, Rouhier H, Medina-Peñafiel A, Jakobsen I, Bago A, Azcón-Aguilar
C (2005) Temperature constraints on the growth and functioning of root organ cultures with
arbuscular mycorrhizal fungi. New Phytol 168(1):179–188
43. Heinemeyer A, Fitter A (2004) Impact of temperature on the arbuscular mycorrhizal (AM)
symbiosis: growth responses of the host plant and its AM fungal partner. J Exp Bot 55(396):525–
534
44. Egamberdiyeva D, Höflich G (2003) Influence of growth-promoting bacteria on the growth of
wheat in different soils and temperatures. Soil Biol Biochem 35(7):973–978
45. Zahran HH (2001) Rhizobia from wild legumes: diversity, taxonomy, ecology, nitrogen fixation
and biotechnology. J Biotechnol 91(2–3):143–153
46. Abd-El-Malek Y (1971) Free-living nitrogen-fixing bacteria in Egyptian soils and their possible
contribution to soil fertility. Plant Soil 35(1):423–442
47. Zogg GP, Zak DR, Ringelberg DB, White DC, MacDonald NW, Pregitzer KS (1997) Compositional and functional shifts in microbial communities due to soil warming. Soil Sci Soc Am
J 61(2):475–481
48. Saad OALO, Conrad R (1993) Temperature dependence of nitrification, denitrification, and
turnover of nitric oxide in different soils. Biol Fertil Soils 15(1):21–27. https://doi.org/10.1007/
bf00336283
49. Fawaz MM, Soliman SA (2016) The potential scenarios of the impacts of climate change on
Egyptian resources and agricultural plant production. Open J Appl Sci 6(4):270–286
50. Canadell JG, Schulze ED (2014) Global potential of biospheric carbon management for climate
mitigation. Nat Commun 5:5282
51. Pathak H, Aggarwal PK, Singh S (2012) Climate change impact, adaptation and mitigation
in agriculture: methodology for assessment and applications. Indian Agricultural Research
Institute
52. Balser TC, Gutknecht JL, Liang C (2010) How will climate change impact soil microbial
communities? In: Soil microbiology and sustainable crop production. Springer, pp 373–397
53. Soussana J, Hartwig U (1995) The effects of elevated CO 2 on symbiotic N 2 fixation: a link
between the carbon and nitrogen cycles in grassland ecosystems. Plant Soil 187(2):321–332
54. Carney KM, Hungate BA, Drake BG, Megonigal JP (2007) Altered soil microbial community
at elevated CO 2 leads to loss of soil carbon. Proc Natl Acad Sci 104(12):4990–4995
55. Niklaus PA (1998) Effects of elevated atmospheric CO 2 on soil microbiota in calcareous
grassland. Glob Change Biol 4(4):451–458
56. Dijkstra FA, Hobbie SE, Reich PB, Knops JM (2005) Divergent effects of elevated CO 2 , N
fertilization, and plant diversity on soil C and N dynamics in a grassland field experiment. Plant
Soil 272(1–2):41–52
57. Treseder KK, Allen MF (2000) Mycorrhizal fungi have a potential role in soil carbon storage
under elevated CO 2 and nitrogen deposition. New Phytol 147(1):189–200
58. Alberton O, Kuyper TW, Gorissen A (2005) Taking mycocentrism seriously: mycorrhizal
fungal and plant responses to elevated CO 2 . New Phytol 167(3):859–868
59. Nannipieri P (2011) Potential impacts of climate change on microbial function in soil. In:
Sustaining soil productivity in response to global climate change: science, policy, and ethics,
pp 201–211
60. Luske B, van der Kamp J (2009) Carbon sequestration potential of reclaimed desert soils in
Egypt. Louis Bolk Instituut & Soil and More International. http://orgprints.org/16438/1/2192.
pdf. Accessed 4 Dec 2009
61. Muñoz-Rojas M, Abd-Elmabod SK, Zavala LM, De la Rosa D, Jordán A (2017) Climate
change impacts on soil organic carbon stocks of Mediterranean agricultural areas: a case study
in Northern Egypt. Agric Ecosyst Environ 238(Supplement C):142–152. https://doi.org/10.
1016/j.agee.2016.09.001
