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The virtuous cycle of ruminants: can adaptation to climate change help mitigation Pol Lloncha,b, Marie Haskella, Xavier Mantecab, Simon Turnera aSRUC, bUAB, West Mains Road, Edinburgh, EH9 3JG, United Kingdom School of Veterinary Science, Cerdanyola del Valles, 08193, Barcelona, Spain Leading the way in Agriculture and Rural Research, Education and Consulting Contribution of ruminants to climate change • Livestock are responsible of 12% of global GHG emissions • Ruminants emit the largest proportion of direct livestock GHG emissions – Methane (enteric fermentation) – Nitrous oxide (manure) 97% 89% Tubiello et al. (2013) The FAOSTAT database of greenhouse gas emissions from agriculture. Environ Res Lett 8, 015009. Livestock´s long shadow, FAO, 2007. • Estimations predict a 40% growth of human population by 2050, increasing demand for livestock products McMichael et al. (2007) Food, livestock production, energy, climate change, and health. The Lancet 370, 1253-1263. Mitigation of climate change • Better management of ruminants can help to mitigate climate change by reducing emissions of GHG´s; predominantly methane (CH4) and nitrous oxide (N2O) Mitigation vs. Adaptation • The fact of climate change Number of natural catastrophe loss events worldwide 1980 – 2013. Source: Munich Re Geo Risks Research Estimation of global temperatures till 2100. Source:5th Report, IPCC (2014) • Efforts in GHG mitigation should not neglect adaptation to predicted changes in the climate Mitigation through Adaptation Can adaptation marry mitigation? Adaptation Mitigation Efficiency Adaptation: heat stress tolerance • Rise of global temperatures Increase likelihood of heat stress IPCC Fourth Assessment Report: Climate Change 2007 Adaptation: heat stress tolerance g CH4/Kg DMI Low stress-responsive cattle have smaller CH4 emissions Cortisol extreme groups Llonch et al. Unpublished data. Association between stress biomarkers and methane emissions in cattle. Adaptation: facing new parasites • Change of the distribution pattern of parasites Prediction model for liver fluke distribution in the UK Fox et al. 2011 Predicting impacts of climate change on Fasciola hepatica risk. Plos one, e16126. Adaptation: facing new parasites Better control of intestinal worms is associated with lower GHG emissions in sheep (kg CO2e / kg live weight gain 2.55 2.5 2.45 NST: Preventive routine treatment 2.4 2.35 SPT: Preventive systematic according to local conditions 2.3 2.25 TST: Preventive systematic according to weight 2.2 2.15 MT: Therapeutic (after confirmation of infection) 2.1 2.05 2 NST SPT TST MT Treatments Extracted from Kenyon et al. (2013) Reduction in greenhouse gas emissions associated with worm control in lambs. Agriculture 3: 271-284. Adaptation: coping with extreme events • Higher frequency of extreme weather events Floods Droughts IPCC Fourth Assessment Report: Climate Change 2007 Adaptation: coping with extreme events Losses caused by extreme weather events cause system inefficiency and critically poor animal welfare % of dead livestock per drought event in Kenya 80 70 60 50 40 30 Cattle (%) Shoats (%) Combined TLU 20 10 0 Extracted from Nkedianye et al. (2011) *Shoats: Sheep + Goats Conwy, Wales (UK), December 2015. Source: BBC Adaptation to extreme events by improving resilience (drought) and risk management (floods) may result in greater efficiency resulting in lower emission (GHG) intensity. Conclusions 1. Better management of ruminant production can contribute to GHG mitigation 2. Expected changes in the climate are predicted to impact ruminant production decreasing animal welfare and system efficiency 3. Adaptation to climate change can improve ruminant production through more efficient animals based on three principles of improved welfare: – – – Reduction of stress Better health Improved longevity Acknowledgements This work was funded by a Marie Curie IntraEuropean Fellowship within the 7th European Community Framework Programme (PIEF-GA2012-331505). Leading the way in Agriculture and Rural Research, Education and Consulting