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Stoichiometry of animal manure and implications for nutrient cycling and agriculture in sub-Saharan Africa

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Abstract

A number of studies have recommended application of large quantities of manure alone or in combination with inorganic fertilizer in sub-Saharan Africa (SSA). However, yield responses of cereals such as maize are very modest even at manure application rates exceeding 10 t ha−1 year−1. We conducted a meta-analysis of data from 64 studies across 14 countries in SSA in order to explore variability in nutrient concentrations, stoichiometry and maize yield responses to animal manure. We observed novel instances of stoichiometry and correlations between organic carbon (C), total nitrogen (N), phosphorus (P) and potassium (K) concentrations, and elemental ratios in manure. In 27% of the manure samples the C:N ratio was greater than 25 indicating that N will be potentially unavailable to crops due to net immobilization. In over 94% of the manure samples, the N:P and C:P ratios were <15 and <200 indicating net P mineralization. Therefore, decomposition rates and crop responses are likely to be N-limited rather than P-limited in the majority of the manure applied. Our analyses also demonstrate that manure application rates and N and P concentrations are less important than C:N and N:P ratios in determining maize yield response to manure. Therefore, emphasis in the future should not be on increasing manure application rates but on approaches that ensure favourable C:N and N:P ratios. Our findings also suggest the need for feeding animals with high quality diet to get better quality manure, higher crop yields and improve household food security in SSA.

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References

  • Adamu UK, Mrema JP, Msaky JJ (2015) Growth response of maize (Zea mays L.) to different rates of nitrogen, phosphorus and farm yard manure in Morogoro Urban district, Tanzania. Am J Exp Agric 9:1–8

    Article  Google Scholar 

  • Campbell BM, Thornton P, Zougmoré R, van Asten P, Lipper L (2014) Sustainable intensification: what is its role in climate smart agriculture? Curr Opin Environ Sust 8:39–43

    Article  Google Scholar 

  • Chakeredza S, Hove L, Akinnifesi FA, Franzel S, Ajayi O, Sileshi G (2007) Managing fodder trees as a solution to human–livestock food conflicts and their contribution to income generation for smallholder farmers in Southern Africa. Nat Resour Forum 31:286–291

    Article  Google Scholar 

  • Chikowo R, Corbeels M, Mapfumo P, Tittonell P, Vanlauwe B, Giller KE (2010) Nitrogen and phosphorus capture and recovery efficiencies, and crop responses to a range of soil fertility management strategies in sub-Saharan Africa. Nutr Cycl Agroecosyst 88:59–77

    Article  Google Scholar 

  • du Prel JB, Hommel G, Röhrig B, Blettner M (2009) Confidence interval or P-value? Deut Ärzt Int 106:335–339

    Google Scholar 

  • Dunjana N, Nyamugafata P, Shumba A, Nyamangara J, Zingore S (2012) Effects of cattle manure on selected soil physical properties of smallholder farms on two soils of Murewa, Zimbabwe. Soil Use Manag 28:221–228

    Article  Google Scholar 

  • Eghball B, Wienhold BJ, Gilley JE, Eigenberg RA (2002) Mineralization of manure nutrients. J Soil Water Conserv 57:470–473

    Google Scholar 

  • Enríquez S, Duarte CM, Sandjensen K (1993) Patterns in decomposition rates among photosynthetic organisms—the importance of detritus C:N:P content. Oecologia 94:457–471

    Article  Google Scholar 

  • EU (1991) Council Directive 91/676/EEC; http://ec.europa.eu/environment/water/water-nitrates/index_-en.html. Accessed 15 Jan 2016

  • Gachengo CN, Vanlauwe B, Palm CA, Cadisch G (2004) Chemical characterisation of a standard set of organic materials. In: Delve RJ, Probert ME (eds), Modelling nutrient management in tropical cropping systems. ACIAR Proceedings No. 114, Canberra, Australia

  • Güsewell S, Gessner MO (2009) N: P ratios influence litter decomposition and colonization by fungi and bacteria in microcosms. Funct Ecol 23:211–219

    Article  Google Scholar 

  • Holechek JL, Cibils AF, Bengaly K, Kinyamario JI (2016) Human Population Growth, African Pastoralism, and Rangelands: a Perspective. Rangel Ecol Manag. doi:10.1016/j.rama.2016.09.004

    Google Scholar 

  • Ibrahim MA (2016) Impact of enclosure on plant species composition and biomass production in Ewa Woreda of Afar Region State, Ethiopia. J Biodivers Endanger Species 4:157

    Google Scholar 

  • Ibrahim A, Abaidoo RC, Fatondji D, Opoku A (2015) Hill placement of manure and fertilizer micro-dosing improves yield and water use efficiency in the Sahelian low input millet-based cropping system. Field Crops Res 180:29–36

    Article  Google Scholar 

  • Jackson HL, Mtengeti EJ (2005) Assessment of animal manure production, management and utilization in Southern Highlands of Tanzania. Livest Res Rural Dev 17 (10). http://www.cipav.org.co/lrrd/lrrd17/10/jack17110.htm. Accessed 15 Jan 2016

  • Kallah MS, Adamu AM (1989) The importance of animal faeces as fertilizer. In :Gefu JO, Adu IF, Lufadeju EA, Kallah MS, Awogbade MO (eds) Pastoralism in Nigeria: Past, Present and Future. Proceedings of the National Conference on Pastoralism in Nigeria, Shika-Zaria, Nigeria, 26–29 June 1988

  • Keiblinger KM, Hall EK, Wanek W, Szukics U, Hämmerle I, Ellersdorfer G, Böck S, Strauss J, Sterflinger K, Richter A, Boltenstern SZ (2010) The effect of resource quantity and resource stoichiometry on microbial carbon-use-efficiency. FEMS Microbiol Ecol 73:430–440

    CAS  PubMed  Google Scholar 

  • Kihara J, Nziguheba G, Zingore S, Coulibaly A, Esilaba A, Kabambe V, Njoroge S, Palm C, Huising J (2016) Understanding variability in crop response to fertilizer and amendments in sub-Saharan Africa. Agric Ecosyst Environ 229:1–12

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Koerselman W, Meuleman AFM (1996) The vegetation N: P ratio: a new tool to detect the nature of nutrient limitation. J Appl Ecol 33:1441–1450

    Article  Google Scholar 

  • Lekasi JK, Tanner JC, Kimani SK, Harris PJC (2003) Cattle manure quality in Maragua District, Central Kenya: effect of management practices and development of simple methods of assessment. Agric Ecosyst Environ 94:289–298

    Article  Google Scholar 

  • Liu J, Liangzhi Y, Amini M, Obersteiner M, Herrero M, Zehnder AJB (2010) A high-resolution assessment on global nitrogen flows in cropland. Proc Nat Acad Sci USA 107:8035–8040

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • MacDonald GK, Bennett EM, Potter PA, Ramankutty N (2011) Agronomic phosphorus imbalances across the world’s croplands. Proc Nat Acad Sci USA 108:3086–3091

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Mafongoya P, Rusinamhodzi L, Siziba S, Thierfelder C, Mvumi BM, Nhau B, Hove L, Chivenge P (2016) Maize productivity and profitability in Conservation Agriculture systems across agro-ecological regions in Zimbabwe: a review of knowledge and practice. Agr Ecosyst Environ 220:211–225

    Article  Google Scholar 

  • Mapanda F, Wuta M, Nyamangara J, Rees RS (2011) Effects of organic and mineral fertilizer nitrogen on greenhouse gas emissions and plant-captured carbon under maize cropping in Zimbabwe. Plant Soil 343:67–81

    Article  CAS  Google Scholar 

  • Masaka J, Wuta M, Nyamangara J, Mugabe FT (2013) Effect of manure quality on nitrate leaching and groundwater pollution in wetland soil under field tomato (Lycopersicon esculentum Mill var. Heinz) rape (Brassica napus L var. Giant). Nutr Cycl Agroecosyst 96:149–170

    Article  Google Scholar 

  • Mcgroddy ME, Daufresne T, Hedin LO (2004) Scaling of C: N: P stoichiometry in forests worldwide: implications of terrestrial Redfield-type ratios. Ecology 85:2390–2401

    Article  Google Scholar 

  • Moore PA, Daniel TC, Woods CW, Sharplay AN (1995) Poultry manure management. J Soil Water 50:321–327

    Google Scholar 

  • Mooshammer M, Wanek W, Hämmerle I, Fuchslueger L, Hofhans F, Knoltsch A et al (2014) Adjustment of microbial nitrogen use efficiency to carbon: nitrogen imbalances regulate soil nitrogen cycling. Nat Commun 5:3694

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Nhamo N, Murwira HK, Giller KE (2004) The relationship between nitrogen mineralization patterns and quality indices of cattle manure from different smallholder farm in Zimbabwe. In: Bationo A (ed) Managing nutrient cycles to sustain soil fertility in Sub-Saharan Africa. Academy Science Publishers, Nairobi, pp 299–315

    Google Scholar 

  • Nyamangara N, Bergström LF, Piha MI, Giller KE (2003) Fertilizer use efficiency and nitrate leaching in a tropical sandy soil. J Environ Qual 32:599–606

    Article  CAS  PubMed  Google Scholar 

  • Nziguheba G, Zingore S, Kihara J, Merckx R, Njoroge S, Otinga A, Vandamme A, Vanlauwe B (2016) Phosphorus in smallholder farming systems of sub-Saharan Africa: implications for agricultural intensification. Nutr Cycl Agroecosyst 104:321–340

    Article  Google Scholar 

  • Palm CA (1995) Contribution of agroforestry trees to nutrient requirements of intercropped plants. Agrofor Syst 30:105–124

    Article  Google Scholar 

  • Palm CA, Gachengo CN, Delve RJ, Cadisch G, Giller KE (2001) Organic inputs for soil fertility management in tropical agroecosystems: application of an organic resource database. Agr Ecosyst Environ 83:27–42

    Article  Google Scholar 

  • Reich PB, Oleksyn J (2004) Global patterns of plant leaf N and P in relation to temperature and latitude. Proc Nat Acad Sci USA 101:11001–11006

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Rusinamhodzi L, Corbeels M, Zingore S, Nyamangara J, Giller KE (2013) Pushing the envelope? Maize production intensification and the role of cattle manure in recovery of degraded soils in smallholder farming areas of Zimbabwe. Field Crops Res 147:40–53

    Article  Google Scholar 

  • Sileshi GW, Mafongoya PL, Akinnifesi FK, Phiri E, Chirwa P, Beedy T, Makumba W, Nyamadzawo G, Njoloma J, Wuta M, Nyamugafata P, and Jiri O (2014) Fertilizer trees. Encyclopedia of Agriculture and Food Systems, vol. 1, San Diego: Elsevier; pp 222–234

  • Sitters J, Maechler M-J, Edwards PJ, Suter W, Venterink HO (2014) Interactions between C:N: P stoichiometry and soil macrofauna control dung decomposition of savanna herbivores. Funct Ecol 28:776–786

    Article  Google Scholar 

  • Snijders P, Onduru D, Wouters B, Gachimbi L, Zake J, Ebanyat P, Ergano K, Abduke M, van Keulen H (2009) Cattle manure management in East Africa: review of manure quality and nutrient losses and scenarios for cattle and manure management. Wageningen UR Livestock Research Report 258, pp 25

  • Stevenson FJ, Cole MA (1999) Carbon, nitrogen, phosphorus, sulphur, micronutrients. Wiley, New York

    Google Scholar 

  • Thornton PK, Herrero M (2010) Potential for reduced methane and carbon dioxide emissions from livestock and pasture management in the tropics. Proc Nat Acad Sci USA 107:19667–19672

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Tilahun TF, Dechassa RN, Bayu W, Gebeyehu S (2013) Effect of farmyard manure and inorganic fertilizers on the growth, yield and moisture stress tolerance of rain-fed lowland rice. Am J Res Commun 4:275–301

    Google Scholar 

  • Tittonell P, Rufino MC, Janssen BH, Giller KE (2010) Carbon and nutrient losses during manure storage under traditional and improved practices in smallholder crop-livestock systems–evidence from Kenya. Plant Soil 328:253–269

    Article  CAS  Google Scholar 

  • UN Millennium Project (2005) Halving hunger: it can be done. Earthscan, London

    Google Scholar 

  • Whalen JK, Chang C, Olson BM (2001) Nitrogen and phosphorus mineralization potentials of soils receiving repeated annual cattle manure applications. Biol Fertil Soils 34:334–341

    Article  CAS  Google Scholar 

  • Zingore S, Delve RJ, Nyamangara J, Giller KE (2008) Multiple benefits of manure: the key to maintenance of soil fertility and restoration of depleted sandy soils on African smallholder farms. Nutr Cycl Agroecosyst 80:267–282

    Article  Google Scholar 

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Correspondence to Gudeta W. Sileshi.

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Sileshi, G.W., Nhamo, N., Mafongoya, P.L. et al. Stoichiometry of animal manure and implications for nutrient cycling and agriculture in sub-Saharan Africa. Nutr Cycl Agroecosyst 107, 91–105 (2017). https://doi.org/10.1007/s10705-016-9817-7

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