Soils as Driver and Victim of Climate Change in Egypt
147
95. FAO (2013) Rice market monitor, Nov 2013
96. Abdelhady S, Borellob D, Shabanb A, Rispolib F (2014) Viability study of biomass power
plant fired with rice straw in Egypt. Energy Proc 61:211–215. https://doi.org/10.1016/j.egypro.
2014.11.1072
97. FAOSTAT (2012) Economic growth is necessary but not sufficient to accelerate reduction of
hunger and malnutrition. The state of food insecurity in the world, FAO, Rome, p 65
98. Crowther TW, Todd-Brown KEO, Rowe CW, Wieder WR, Carey JC, Machmuller MB, Snoek
BL, Fang S, Zhou G, Allison SD, Blair JM, Bridgham SD, Burton AJ, Carrillo Y, Reich PB,
Clark JS, Classen AT, Dijkstra FA, Elberling B, Emmett BA, Estiarte M, Frey SD, Guo J, Harte
J, Jiang L, Johnson BR, Kröel-Dulay G, Larsen KS, Laudon H, Lavallee JM, Luo Y, Lupascu
M, Ma LN, Marhan S, Michelsen A, Mohan J, Niu S, Pendall E, Peñuelas J, Pfeifer-Meister
L, Poll C, Reinsch S, Reynolds LL, Schmidt IK, Sistla S, Soko NW, Templer PH, Treseder
KK, Welker JM, Bradford MA (2016) Quantifying global soil carbon losses in response to
warming. Nature 540:104–110
99. Moebius BN, van Es HM, Schindelbeck RR, Idowu OJ, Clune DJ, Thies JE (2007) Evaluation
of laboratory-measured soil properties as indicators of soil physical quality. Soil Sci 172:895–
912
100. Reynolds WD, Drury CF, Tan CS, Fox CA, Yang XM (2009) Use of indicators and pore
volume-function characteristics to quantify soil physical quality. Geoderma 152:252–263
101. Dang Y, Ren W, Tao B, Chen G, Lu C, Yang J (2014) Climate and land use controls on soil
organic carbon in the Loess Plateau Region of China. PLoS ONE 9(5):e95548. https://doi.
org/10.1371/journal.pone.0095548
102. Garnett T (2012) Climate change and agriculture. International Institute for Environment and
Development, UK. ISBN: 978-1-84369-853-1. http://pubs.iied.org/pdfs/16512IIED.pdf
103. Meersmans J, Arrouays D, Anton JJ, Rompaey V, Pagé C, De Baets S, Quine TA (2016) Future
C loss in mid-latitude mineral soils: climate change exceeds land use mitigation potential in
France. Sci Rep 6:35798. https://doi.org/10.1038/srep35798
104. Wan Y, Linab E, Xiong W, Li Yu’e, Guo L (2011) Modeling the impact of climate change on
soil organic carbon stock in upland soils in the 21st century in China. Agr Ecosyst Environ
141(2):23–31. https://doi.org/10.1016/j.agee.2011.02.004
105. Davidson EA, Janssens IA (2006) Temperature sensitivity of soil carbon decomposition and
feedback to climate change. Nature 440:165–173. https://doi.org/10.1038/nature04514
106. Frey SD, Lee J, Melillo JM, Six J (2013) The temperature response of soil microbial efficiency and its feedback to climate. Nat Clim Change 3:395–398. https://doi.org/10.1038/
nclimate1796
107. Ågren GI, Wetterstedt JAM (2007) What determines the temperature response of soil organic
matter decomposition? Soil Biol Biochem 39(7):1794–1798. https://pub.epsilon.slu.se/4560/
1/agren_g_et_al_100304.pdf
108. Giardina CP, Ryan MG (2000) Evidence that decomposition rates of organic carbon in mineral soil do not vary with temperature. Nature 404(6780):858–861. https://doi.org/10.1038/
35009076
109. García-Fayos P, Bochet E (2009) Indication of antagonistic interaction between climate
change and erosion on plant species richness and soil properties in semiarid Mediterranean
ecosystems. Glob Change Biol 15:306–318
110. Brevik EC (2009) Soil health and productivity. In: Verheye W (ed) Soils, plant growth and crop
production. Encyclopedia of life support systems (EOLSS). Developed Under the Auspices
of the UNESCO. EOLSS Publishers, Oxford. Available online: http://www.eolss.net
111. Eid EM, Shaltout KH (2013) Evaluation of carbon sequestration potentiality of Lake Burullus,
Egypt to mitigate climate change. Egypt J Aquat Res 39(1):31–38. https://www.sciencedirect.
com/science/article/pii/S1687428513000666
112. DEFRA (Department for Environment, Food and Rural Affairs) (2005) Impacts of climate
change on soil functions. DEFRA Research and Development, UK, Final Project Report [CSG
15]. http://randd.defra.gov.uk/Document.aspx?Document=SP1601_9494_FRP.pdf
147
95. FAO (2013) Rice market monitor, Nov 2013
96. Abdelhady S, Borellob D, Shabanb A, Rispolib F (2014) Viability study of biomass power
plant fired with rice straw in Egypt. Energy Proc 61:211–215. https://doi.org/10.1016/j.egypro.
2014.11.1072
97. FAOSTAT (2012) Economic growth is necessary but not sufficient to accelerate reduction of
hunger and malnutrition. The state of food insecurity in the world, FAO, Rome, p 65
98. Crowther TW, Todd-Brown KEO, Rowe CW, Wieder WR, Carey JC, Machmuller MB, Snoek
BL, Fang S, Zhou G, Allison SD, Blair JM, Bridgham SD, Burton AJ, Carrillo Y, Reich PB,
Clark JS, Classen AT, Dijkstra FA, Elberling B, Emmett BA, Estiarte M, Frey SD, Guo J, Harte
J, Jiang L, Johnson BR, Kröel-Dulay G, Larsen KS, Laudon H, Lavallee JM, Luo Y, Lupascu
M, Ma LN, Marhan S, Michelsen A, Mohan J, Niu S, Pendall E, Peñuelas J, Pfeifer-Meister
L, Poll C, Reinsch S, Reynolds LL, Schmidt IK, Sistla S, Soko NW, Templer PH, Treseder
KK, Welker JM, Bradford MA (2016) Quantifying global soil carbon losses in response to
warming. Nature 540:104–110
99. Moebius BN, van Es HM, Schindelbeck RR, Idowu OJ, Clune DJ, Thies JE (2007) Evaluation
of laboratory-measured soil properties as indicators of soil physical quality. Soil Sci 172:895–
912
100. Reynolds WD, Drury CF, Tan CS, Fox CA, Yang XM (2009) Use of indicators and pore
volume-function characteristics to quantify soil physical quality. Geoderma 152:252–263
101. Dang Y, Ren W, Tao B, Chen G, Lu C, Yang J (2014) Climate and land use controls on soil
organic carbon in the Loess Plateau Region of China. PLoS ONE 9(5):e95548. https://doi.
org/10.1371/journal.pone.0095548
102. Garnett T (2012) Climate change and agriculture. International Institute for Environment and
Development, UK. ISBN: 978-1-84369-853-1. http://pubs.iied.org/pdfs/16512IIED.pdf
103. Meersmans J, Arrouays D, Anton JJ, Rompaey V, Pagé C, De Baets S, Quine TA (2016) Future
C loss in mid-latitude mineral soils: climate change exceeds land use mitigation potential in
France. Sci Rep 6:35798. https://doi.org/10.1038/srep35798
104. Wan Y, Linab E, Xiong W, Li Yu’e, Guo L (2011) Modeling the impact of climate change on
soil organic carbon stock in upland soils in the 21st century in China. Agr Ecosyst Environ
141(2):23–31. https://doi.org/10.1016/j.agee.2011.02.004
105. Davidson EA, Janssens IA (2006) Temperature sensitivity of soil carbon decomposition and
feedback to climate change. Nature 440:165–173. https://doi.org/10.1038/nature04514
106. Frey SD, Lee J, Melillo JM, Six J (2013) The temperature response of soil microbial efficiency and its feedback to climate. Nat Clim Change 3:395–398. https://doi.org/10.1038/
nclimate1796
107. Ågren GI, Wetterstedt JAM (2007) What determines the temperature response of soil organic
matter decomposition? Soil Biol Biochem 39(7):1794–1798. https://pub.epsilon.slu.se/4560/
1/agren_g_et_al_100304.pdf
108. Giardina CP, Ryan MG (2000) Evidence that decomposition rates of organic carbon in mineral soil do not vary with temperature. Nature 404(6780):858–861. https://doi.org/10.1038/
35009076
109. García-Fayos P, Bochet E (2009) Indication of antagonistic interaction between climate
change and erosion on plant species richness and soil properties in semiarid Mediterranean
ecosystems. Glob Change Biol 15:306–318
110. Brevik EC (2009) Soil health and productivity. In: Verheye W (ed) Soils, plant growth and crop
production. Encyclopedia of life support systems (EOLSS). Developed Under the Auspices
of the UNESCO. EOLSS Publishers, Oxford. Available online: http://www.eolss.net
111. Eid EM, Shaltout KH (2013) Evaluation of carbon sequestration potentiality of Lake Burullus,
Egypt to mitigate climate change. Egypt J Aquat Res 39(1):31–38. https://www.sciencedirect.
com/science/article/pii/S1687428513000666
112. DEFRA (Department for Environment, Food and Rural Affairs) (2005) Impacts of climate
change on soil functions. DEFRA Research and Development, UK, Final Project Report [CSG
15]. http://randd.defra.gov.uk/Document.aspx?Document=SP1601_9494_FRP.pdf
