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Part IV - Case Studies from Developing Countries

Published online by Cambridge University Press:  05 July 2017

Ademola A. Adenle
Affiliation:
Colorado State University
E. Jane Morris
Affiliation:
University of Leeds
Denis J. Murphy
Affiliation:
University of South Wales
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Genetically Modified Organisms in Developing Countries
Risk Analysis and Governance
, pp. 213 - 300
Publisher: Cambridge University Press
Print publication year: 2017

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References

References

Beck, U. (1992a). Risk Society: Towards a New Modernity. London: Sage Publications.Google Scholar
Beck, U. (1992b). From industrial society to the risk society: questions of survival, social structure and ecological enlightenment. Theory, Culture and Society 9(1), S97S123.CrossRefGoogle Scholar
Brown, L. R. (1995). Who Will Feed China? Wake-up Call for a Small Planet. New York, NY: W. W. Norton & Company.Google Scholar
Comments (2015). Industrial Comments on Draft Revision of Measures on the Safety Evaluation Administration of Agricultural Genetically Modified Organisms, 2015. [Online]. Available from www.amcham-shanghai.org/ftpuploadfiles/insight/Comments%20to%20MOA%20on%20Draft%20Amendments_CN.pdfGoogle Scholar
Draft Revision (2015). Draft Revision of Measures on the Safety Evaluation Administration of Agricultural Genetically Modified Organisms 2015.Google Scholar
Greenpeace (2014). Investigation report: illegal cultivation of GM rice in 10 years. [Online]. Available from www.greenpeace.org/china/zh/publications/reports/food-agriculture/2014/illegal-rice-decade/Google Scholar
Howse, R. (2000). Democracy, science, and free trade: risk regulation on trial at the World Trade Organization. Michigan Law Review 98, S2329S2330.CrossRefGoogle Scholar
Jiang, G. (2010). The commercialisation of Bt rice shall be cautious. Journal of China Weekly 2, S60S61.Google Scholar
Keeley, J. (2003). A biotech developmental state? The Chinese experience. [Online]. Available from www.ids.ac.uk/go/idspublication/a-biotech-developmental-state-the-chinese-experienceGoogle Scholar
Kubasek, N. and Silverman, G. (2007). Environmental Law. Sixth edition. Upper Saddle River, NJ: Prentice Hall.Google Scholar
Li, Y. et al. (2016). The development and status of Bt rice in China. Plant Biotechnology Journal 14, S839S848.CrossRefGoogle ScholarPubMed
Mao, X. (2011). On the industrialisation of GM rice in China: dilemmas and way out. Journal of Nanjing Agricultural University (Social Sciences Edition) 11(9), S125S130.Google Scholar
MoA (2016a). Press conference. [Online]. Available from http://news.sohu.com/20160420/n445153674.shtmlGoogle Scholar
MoA (2016b). Official response. [Online]. Available from www.moa.gov.cn/zwllm/tzgg/tz/201508/t20150805_4776718.htmGoogle Scholar
Peng, B. and Huang, J. (2015). Chinese consumers’ knowledge and acceptances of genetically modified food. Agricultural Economics and Management 1, S33S39.Google Scholar
Pollack, M. and Shaffer, G. (2009). When Cooperation Fails. The International Law and Politics of Genetically Modified Foods. Oxford: Oxford University Press.CrossRefGoogle Scholar
Wang, Q. (2015). China's scientists must engage the public on GM. Nature 519, S7.Google Scholar
Wang, X. (2004). Challenges and dilemmas in developing China's national biosafety framework. Journal of World Trade 38(5), S899S913.Google Scholar
Xue, D. (2009). Biosafety and Regulation for Genetically Modified Organisms. Beijing: Science Press.Google Scholar
Zhang, X. et al. (2014). GM Food: a study of Chinese public's recognition and attitude. Journal of Anhui Agricultural Sciences 42(20), S6378S6786.Google Scholar
Zhao, J. and Ho, P. (2005). A developmental risk society? The politics of genetically modified organisms (GMOs) in China. International Journal of Environment and Sustainable Development 4(4), S370S394.Google Scholar

References

Chen, M. et al. (2008). A critical assessment of the effects of Bt transgenic plants on parasitoids. PLoS ONE 3(5), e2284.CrossRefGoogle ScholarPubMed
Ding, J. et al. (2009). The life parameters of a parasitoid Microplitis mediator (Hymenoptera: Braconidae), reared on cotton bollworm Helicoverpa armigera (Hübner) with Cry1Ac diet. Biocontrol Science and Technology 19(9), 931941.Google Scholar
Dutton, A. et al. (2003). Prey-mediated effects of Bacillus thuringiensis spray on the predator Chrysoperla cannea in maize. Biological Control 26, 209215.Google Scholar
Economist (2013). China's food fight: a fierce public debate over GM food exposes concerns about America. The Economist, 14 December 2013. [Online]. Available from www.economist.com/news/china/21591577-fierce-public-debate-over-gm-food-exposes-concerns-about-america-food-fightGoogle Scholar
Guo, Y. Y. (1998). Researches on Cotton Bollworm. Beijing: China Agriculture Press.Google Scholar
Huang, J. et al. (2002). Transgenic varieties and productivity of smallholder cotton farmers in China. Australian Journal of Agricultural and Resource Economics 46, 367387.CrossRefGoogle Scholar
Huang, J. et al. (2003). Biotechnology as an alternative to chemical pesticides: a case study of Bt cotton in China. Agricultural Economics 29, 5567.CrossRefGoogle Scholar
Huang, Y. X. et al. (2013). Diminishing returns from increased percent Bt cotton: the case of pink bollworm. PLoS ONE 8(7), e68573.Google Scholar
ISAAA (2016). GM crop events approved in China. [Online]. Available from www.isaaa.org/gmapprovaldatabase/approvedeventsin/default.asp?CountryID=CNGoogle Scholar
James, C. (2013). Global status of commercialized biotech/GM crops: 2013. ISAAA Brief No. 46. Ithaca, NY: ISAAA.Google Scholar
James, C. (2014). Global status of commercialized biotech/GM crops: 2014. ISAAA Brief No. 49, Ithaca, NY: ISAAA.Google Scholar
Jiang, G. and Li, X. (2010). On the safety and risks of genetically modified crops industry. Journal of Engineering Studies 2(2), 112119.Google Scholar
Jin, L. et al. (2015). Large-scale test of the natural refuge strategy for delaying insect resistance to transgenic Bt crops. Nature Biotechnology 33, 169174.Google Scholar
Keller and Heckman LLP (2015). China passes sweeping amendment to food safety law: the most stringent to date. China Regulatory Matters, 28 April 2015. [Online]. Available from www.khlaw.com/China-Passes-Sweeping-Amendment-to-Food-Safety-Law-The-Most-Stringent-To-DateGoogle Scholar
Kumar, P. A. et al. (1996). Insecticidal proteins of Bacillus thuringiensis. Advances in Applied Microbiology 42, 143.CrossRefGoogle ScholarPubMed
Li, X. G. and Liu, B. (2013). A 2-year field study shows little evidence that the long-term planting of transgenic insect-resistant cotton affects the community structure of soil nematodes. PLoS ONE 8(4), e61670.Google Scholar
Li, X. G. et al. (2011). No evidence of persistent effects of continuously planted transgenic insect-resistant cotton on soil microorganisms. Plant Soil 339(1–2), 247257.Google Scholar
Li, X. G. et al. (2012). Field trials to evaluate effects of continuously planted transgenic insect-resistant cottons on soil invertebrates. Journal of Environmental Monitoring 14(3), 10551063.Google Scholar
Li, Y. H. et al. (2013). Bt rice expressing Cry2Aa does not cause direct detrimental effects on larvae of Chrysoperla sinica. Ecotoxicology 22, 14131421.CrossRefGoogle Scholar
Li, Y. H. et al. (2005). Degradation dynamics of Cry1Ac insecticidal protein in leaves of Bt cotton under different environments. Science Agriculture Sinica 38(4), 714718.Google Scholar
Li, Y. H. et al. (2014). Biosafety management and commercial use of genetically modified crops in China. Plant Cell Reports 33, 565573.CrossRefGoogle ScholarPubMed
Li, Y. H. et al. (2016). The development and status of Bt rice in China. Plant Biotechnology Journal 14, 839848.Google Scholar
Liu, P. L. et al. (2011). Analysis of risk communication for transgenic biotechnology in China. Journal of China Biotechnology 31, 145149.Google Scholar
Lu, Y. H. and Wu, K. M. (2011). Mirid bugs in China: pest status and management strategies. Outlooks on Pest Management 22(6), 248252.Google Scholar
Lu, Y. H. et al. (2010). Mirid bug outbreaks in multiple crops correlated with wide-scale adoption of Bt cotton in China. Science 328(5982), 11511154.CrossRefGoogle ScholarPubMed
Lu, Y. H. et al. (2012). Widespread adoption of Bt cotton and insecticide decrease promotes biocontrol services. Nature 487(7407), 362365.Google Scholar
Maestri, N. and Hirst, K. K. (2014). The domestication history of cotton (Gossypium): the origins of cotton. [Online]. Available from http://archaeology.about.com/od/cterms/a/Cotton.htmGoogle Scholar
Naranjo, S. E. (2009). Impacts of Bt crops on non-target invertebrates and insecticide use patterns. Perspectives in Agriculture, Veterinary Science, Nutrition and Natural Resources 4, 123.Google Scholar
Pray, C. E. et al. (2002). Five years of Bt cotton in China – the benefits continue. The Plant Journal 31, 423430.Google Scholar
Qiao, F. (2015). Fifteen years of Bt cotton in China: the economic impact and its dynamics. World Development 70, 177185.Google Scholar
Qu, Y. D. et al. (2011). Survey analysis of the cognition of GMO risk and safety among Chinese public. Journal of China Agricultural University 16, 110.Google Scholar
Romeis, J. et al. (2006). Transgenic crops expressing Bacillus thuringiensis toxins and biological control. Nature Biotechnology 24, 6371.CrossRefGoogle ScholarPubMed
State Council of China (2001). Regulations on safety of agricultural genetically modified organisms. [Online]. Available from www.gov.cn/flfg/2005-08/06/content_21003.htmGoogle Scholar
Tabashnik, B. E. et al. (2012). Early detection of field-evolved resistance to Bt cotton in China: cotton bollworm and pink bollworm. Journal of Invertebrate Pathology 110(3), 301306.Google Scholar
UNEP (Undated). The cotton sector in China. [Online]. Available from www.unep.ch/etu/publications/Synth_China.PDFGoogle Scholar
Wan, P. et al. (2012a). The halo effect: suppression of pink bollworm on non-Bt cotton by Bt cotton in China. PLoS ONE 7(7), e42004.CrossRefGoogle ScholarPubMed
Wan, P. et al. (2012b). Increased frequency of pink bollworm resistance to Bt toxin Cry1Ac in China. PLoS ONE 7(1), e29975.Google Scholar
Wang, S. et al. (2008). Bt cotton and secondary pests. International Journal of Biotechnology 10, 113121.Google Scholar
Wu, K. M. (2007). Monitoring and management strategy for Helicoverpa armigera resistance to Bt cotton in China. Journal of Invertebrate Pathology 95(3), 220223.CrossRefGoogle ScholarPubMed
Wu, K. M. and Guo, Y. Y. (2005). The evolution of cotton pest management practices in China. Annual Review of Entomology 50, 3152.CrossRefGoogle ScholarPubMed
Wu, K. M. et al. (2002). Evaluation of the natural refuge function for Helicoverpa armigera (Lepidoptera: Noctuidae) within Bacillus thuringiensis transgenic cotton growing areas in north China. Journal of Economic Entomology 95(4), 832837.Google Scholar
Wu, K. M. et al. (2004). Evaluation of maize as a refuge for management of resistance to Bt cotton by Helicoverpa armigera (Hübner) in the Yellow River cotton-farming region of China. Crop Protection 23(6), 523530.Google Scholar
Wu, K. M. et al. (2008). Suppression of cotton bollworm in multiple crops in China in areas with Bt toxin-containing cotton. Science 321(5896), 16761678.CrossRefGoogle Scholar
Zhang, H. N. et al. (2011). Early warning of cotton bollworm resistance associated with intensive planting of Bt cotton in China. PLoS ONE 6(8), e22874.Google Scholar
Zhang, R. et al. (2007). Retrospect and prospect of research on Chinese transgenic insecticidal cotton. Journal of Agricultural Science and Technology 9(4), 3242.Google Scholar
Zhang, T. (2011). Country sector overview: the cotton sector in China. The Sustainable Trade Initiative. [Online]. Available from http://issuu.com/idhsustainabletradeinitiative/docs/cotton_in_china_-_country_sector_anGoogle Scholar
Zhao, D. et al. (2013). Research of transgenic cotton and the prospect in China. Liaoning Agricultural Sciences 2013(1), 4144.Google Scholar
Zhu, J. L. et al. (2013). The influence of wind direction on pollen-mediated gene flow in transgenic insect-resistant cotton. Acta Ecologica Sinica 33(21), 68036812.Google Scholar

References

ABLE (2016). Make in India: Biotech Handbook. Bangalore: ABLE.Google Scholar
Chaturvedi, S. and Srinivas, K. R. (2013). Genetically modified crops: policy logjam. Economic & Political Weekly 48(14), 1923.Google Scholar
Choudhary, B. et al. (2014). Regulatory options for genetically modified crops in India. Plant Biotechnology Journal 12, 135146.Google Scholar
FSSAI (2016). Operationalizing the Regulation of Genetically Modified Foods in India. New Delhi: FSSAI.Google Scholar
GAIN (2015). India: Agricultural Biotechnology Annual GAIN Report IN5088. Washington, D.C.: GAIN (USDA).Google Scholar
Giri, J. and Tyagi, A. K. (2016). Genetically engineered crops: India's path ahead. Nature India, 4 March 2016.Google Scholar
Gupta, A. (2011). An evolving science-society contract in India. Food Policy 36, 736741.Google Scholar
Herring, R. J. (2014). On risk and regulation: Bt crops in India. GM Crops & Food 5, 204209.CrossRefGoogle ScholarPubMed
Howlett, M. and Mukherjee, I. (2016). Achieving regulatory excellence in the agri-food biotechnology sector: building policy capacity. Asian Biotechnology and Development Review 18, 3546.Google Scholar
Kudlu, C. and Stone, G. D. (2013). The trials of genetically modified food: Bt eggplants and Ayurveda in India. Food, Culture and Society 16, 2142.Google Scholar
Millstone, E. (2014). Science and politics in Indian GM crop regulation: a u-turn down a blind alley. In India's Risks: Democratizing the Management of Threats to Environment, Health and Values, ed. Moor, R. and Gowda, M. V. R.. New Delhi: Oxford University Press, pp. 205226.CrossRefGoogle Scholar
MoEF&CC (2015). Confined field trials of GE plants. New Delhi: BCIL and MoEF&CC.Google Scholar
MoEF&CC (2016). Genetically engineered plants in the product development pipeline in India. New Delhi: MoEF&CC.Google Scholar
Pray, C. E. et al. (2005). The cost of biosafety regulations: the Indian experience. Quarterly Journal of International Agriculture 44, 267289.Google Scholar
Qaim, M. (2016). Genetically Modified Crops and Agricultural Development. New York, NY: Palgrave.CrossRefGoogle Scholar
Rao, S. R. (2014). Indian GMO regulations and implications of new plant breeding molecular technologies. International Workshop on Regulation of Animal Biotechnology, Jaipur.Google Scholar
TEC (2013). Final Report of the Technical Expert Committee (TEC) set up by the Supreme Court in a Public Interest Litigation on Genetically Modified Organisms (GMOs). New Delhi. [Online]. Available from www.indiaenvironmentportal.org.in/content/380047/final-report-of-the-technical-expert-committee-tec-set-up-by-the-supreme-court-in-a-public-interest-litigation-on-genetically-modified-organisms-gmos/Google Scholar

References

Bartholomaeus, A. et al. (2015). Recommendations from the workshop on Comparative Approaches to Safety Assessment of GM Plant Materials: a road toward harmonized criteria? GM Crops & Food 6(2), 6979.Google Scholar
Beker, M. P. et al. (2016). Development of a construct-based risk assessment framework for genetic engineered crops. Transgenic Research 25(5), 597607.Google Scholar
Burachik, M. (2010). Experience from use of GMOs in Argentinian agriculture, economy and environment. New Biotechnology 27(5), 588592.Google Scholar
Burachik, M. et al. (2006). Introducción a las Negociaciones Internacionales en Agrobiotecnología. Secretaría de Agricultura, Ganadería, Pesca y Alimentos. Oficina de Biotecnología, 52 pp.Google Scholar
CERA (2014). Low-Level Presence in Seed: A Science Based Approach to Expedited Environmental Risk Assessment – Workshop Proceedings. Washington, D.C.: CERA (ILSI Research Foundation).Google Scholar
García-Alonso, M. (2013). Safety assessment of food and feed derived from GM crops: using problem formulation to ensure “fit for purpose” risk assessments. In Collection of Biosafety Reviews, volume 8. Trieste: International Centre for Genetic Engineering and Biotechnology, pp. 72101.Google Scholar
Lema, M. and Whelan, A. (2015). Regulatory framework for gene editing and other new breeding techniques (NBTs) in Argentina. GM Crops & Food: Biotechnology in Agriculture and the Food Chain 6(4), 253265.Google Scholar
MacKenzie, D. (2000). International comparison of regulatory frameworks for food products of biotechnology. The Canadian Biotechnology Advisory Committee Project Steering Committee on the Regulation of Genetically Modified Foods, 62 pp.Google Scholar
McLean, M. et al. (2002). A conceptual framework for implementing biosafety: linking policy, capacity and regulation. ISNAR Briefing Paper 47. The Hague: ISNAR.Google Scholar
Ministry of Agro-industry (2016). Biotechnology Directorate. [Online]. Available from www.agroindustria.gob.ar/sitio/areas/biotecnologia/ogm/Google Scholar
SENASA (2002). Resolution 412/2002. [Online]. Available from www.senasa.gov.ar/cadena-vegetal/oleaginosas/industria/biotecnologiaGoogle Scholar
Trigo, E. and Cap, E. (2011). Quince años de cultivos genéticamente modificados en la agricultura argentina. ArgenBio. [Online]. Available from http://docplayer.es/15679839-Quince-anos-de-cultivos-geneticamente-modificados-en-la-agricultura-argentina-eduardo-j-trigo.htmlGoogle Scholar
Trigo, E. et al. (2002). Los transgénicos en la agricultura argentina. Una historia con final abierto. Buenos Aires: Libros del Zorzal.Google Scholar
Vicién, C. (2012). Socioeconomic assessment – a requirement for authorisation for cultivation of GM crops in Argentina. In Workshop Proceedings: International Workshop on Socio-economic Impacts of Genetically Modified Crops (Co-organised by JRC-IPTS and FAO), ed. Lusser, M. et al. Office of the European Union and Food and Agriculture Organization of the United Nations.Google Scholar
Vicién, C. and Álvarez, G. (with the collaboration of G. Petri et al.) (2010). La asincronicidad en las aprobaciones comerciales de los materiales genéticamente modificados. ArgenBio, 78 pp.Google Scholar
Vicién, C. and Álvarez, G. (2013). La asincronicidad de las aprobaciones comerciales de los cultivos genéticamente modificados. Conferencia internacional “Comercio agrícola y América Latina: cuestiones, controversias y perspectivas”. Cátedras OMC de la FLACSO – Argentina, del ITAM – México y del Instituto de Estudios Internacionales – Chile. [Online]. Available from www.researchgate.net/profile/Gustavo_Alvarez7/publicationsGoogle Scholar

References

ABDI and CGEE (2009). Panorama da biotecnologia. Brasília: Agência Brasileira de Desenvolvimento Industrial (ABDI) and Centro de Gestão e Estudos Estratégicos (CGEE), 170 pp. [Online]. Available from www.abdi.com.br/Estudo/Panorama%20Setorial%20Biotecnologia.pdfGoogle Scholar
Andrade, P. P. et al. (2016). Use of transgenic Aedes aegypti in Brazil: risk perception and assessment. Bulletin of the World Health Organization 94, 766771.CrossRefGoogle Scholar
Bertolini, L. R. et al. (2016). The transgenic animal platform for biopharmaceutical production. Transgenic Research 25, 329343.Google Scholar
Capalbo, D. M. F. et al. (2015). A study of stakeholder views to shape a communication strategy for GMO in Brazil. Frontiers in Bioengineering and Biotechnology 3, 179.Google Scholar
CBD (2012). Guidance on risk assessment of living modified organisms, 64 pp. [Online]. Available from www.cbd.int/doc/meetings/bs/mop-06/official/mop-06-13-add1-en.pdfGoogle Scholar
Céleres (2016). 2° levantamento da biotecnologia agrícola no Brasil, safra 2015/16. [Online]. Available from www.celeres.com.br/2o-levantamento-de-adocao-da-biotecnologia-agricola-no-brasil-safra-201516/Google Scholar
CGEE (2015). Percepção pública da ciência e tecnologia 2015 – Ciência e tecnologia no olhar dos brasileiros. Sumário executivo. Brasília: Centro de Gestão e Estudos Estratégicos. [Online]. Available from www.cgee.org.brGoogle Scholar
Conko, G. et al. (2016). A risk-based approach to the regulation of genetically engineered organisms. Nature Biotechnology 34(5), 493503.Google Scholar
Furnival, A. C. and Pinheiro, S. M. (2009). O público e a compreensão dos rótulos de alimentos: o caso dos transgênicos. Revista Digital de Biblioteconomia e Ciência da Informação (Campinas) 7(1), 119.Google Scholar
IBGE (2016). Projeções e estimativas da população do Brasil e das Unidades da Federação. [Online]. Available from www.ibge.gov.brGoogle Scholar
James, C. (2015). Global Commercialization of Biotech/GM Crops: 2015. ISAAA Brief 2015.Google Scholar
Legislação Brasileira (2005). [Online]. Available from www.planalto.gov.brGoogle Scholar
Lopes, M. A. (2016). Biotechnologies in action in Brazil. In FAO International Symposium on The Role of Agricultural Biotechnologies in Sustainable Food Systems and Nutrition, pp. 12–13. [Online]. Available from www.fao.org/3/a-bc562e.pdfGoogle Scholar
Mendonça-Hagler, L. et al. (2008). Trends in biotechnology and biosafety in Brazil. Environmental Biosafety Research 7(3), 115121.Google Scholar
Momagri (2012). Agriculture, a strategic sector for Brasil's economy. [Online]. Available from www.momagri.orgGoogle Scholar
Phillips McDougall (2011). The cost and time involved in the discovery, development and authorisation of a new plant biotechnology derived trait. A Consultancy Study for Crop Life International, 24 pp. [Online]. Available from https://croplife.org/wp-content/uploads/2014/04/Getting-a-Biotech-Crop-to-Market-Phillips-McDougall-Study.pdfGoogle Scholar
Porth, I. and El-Kassaby, Y. A. (2014). Current status of the development of genetically modified (GM) forest trees worldwide: a comparison with the development of other GM plants in agriculture. CAB Reviews 9(8), 12.Google Scholar
Rampelotto, P. H. (2016). The Brazilian life science industry: advances and challenges. Industrial Biotechnology 12(1), 310.Google Scholar
Righetti, S. (2010). Ceará fará leite com proteína humana. Jornal Folha de São Paulo 28 August 2010. [Online]. Available from www.recodisa.ufc.br/news/Ceara-fara-leite-com-proteina-humana.phpGoogle Scholar
Soares, E. (2014). Restrictions on Genetically Modified Organisms: Brazil. Law Library of Congress, USA. [Online]. Available from www.loc.gov/law/help/restrictions-on-gmos/brazil.phpGoogle Scholar

References

Adenle, A. A. (2014). Stakeholders’ perception of GM technology in West Africa: assessing the responses of policymakers and scientists in Ghana and Nigeria. Journal of Agricultural and Environmental Ethics 27(2), 241263.CrossRefGoogle Scholar
Adenle, A. A. et al. (2013). Status of development, regulation and adoption of GM agriculture in Africa: views and positions of stakeholder groups. Food Policy 43, 159166.Google Scholar
Bennett, et al. (2004). Economic impact of genetically modified cotton in India. AgBioForum 7(3), 15.Google Scholar
Bett, C. et al. (2010). Perspectives of gatekeepers in the Kenyan food industry towards genetically modified food. Food Policy 35, 332340.Google Scholar
Brookes, G. and Barfoot, P. (2012). GM Crops: Global Socio-economic and Environmental Impacts 1996–2010. Dorchester: PG Economics Ltd.Google Scholar
Carpenter, J. E. (2011). Impacts of GM crops on biodiversity. Landes Bioscience 2, 117.Google Scholar
Dowd-Uribe, B. and Schnurr, M. A. (2016). Briefing: Burkina Faso's Reversal on Genetically Modified Cotton and the Implications for Africa. African Affairs 1–12. [Online]. Available from http://afraf.oxfordjournals.orgGoogle Scholar
James, C. (2013). Global Status of Commercialized Biotech/GM Crops: 2013. ISAAA Brief No. 46. Ithaca, NY: ISAAA.Google Scholar
James, C. (2014). Global Status of Commercialized Biotech/GM Crops: 2014. ISAAA Brief No. 49. Ithaca, NY: ISAAA.Google Scholar
James, C. (2015). Global Status of Commercialized Biotech/GM Crops: 2015. ISAAA Brief No. 51. Ithaca, NY: ISAAA.Google Scholar
Kikulwe, E. M. et al. (2011). Attitude, perceptions, and trust. Insights from a consumer survey regarding genetically modified banana in Uganda. Appetite 57(2), 401413.Google Scholar
NBS (2015). Nigeria in 2014: Economic Review and 2015–2017 Outlook. [Online]. Available from http://sparc-nigeria.com/GREAT/files/5-Economic-Update-source-materials/NBS-Economic-Review-2014-and%20Outlook-2015.pdfGoogle Scholar
Nin-Pratt, A. et al. (2011). Yield gaps and potential agricultural growth in West Africa and Central Africa. Washington, D.C.: International Food Policy Research Institute.Google Scholar
OECD (2006). Cotton – West Africa in the international market. [Online]. Available from www.oecd.org/swac/publications/38409410.pdfGoogle Scholar
Savadogo, K. (2009). Le contexte macroéconomique. Background paper for the Burkina Faso Country Economic Memorandum. Washington, D.C.: World Bank.Google Scholar
Savadogo, M. (2014). Case study – Burkina Faso. In Biosafety in Africa: Experiences and Best Practices, ed. Keetch, D. et al. Michigan, MI: Michigan State University Press, pp. 8288.Google Scholar
Traoré, H. et al. (2014a). Agricultural R&D in Burkina Faso. An assessment of the Environment and Agricultural Research Institute. [Online]. Available from www.asti.cgiar.org/pdf/coraf/BurkinaFaso-SummaryNote.pdfGoogle Scholar
Traoré, H. et al. (2014b). Bt cotton in Burkina Faso demonstrates that political will is key for biotechnology to benefit commercial agriculture in Africa. In Biotechnology in Africa: Emergence, Initiatives and Future, ed. Wambugu, F. and Kamanga, D.. Basel: Springer International Publishing Switzerland, pp. 1536.Google Scholar
Traoré, O. et al. (2008). Testing the efficacy and economic potential of Bollgard II under Burkina Faso cropping conditions. The Journal of Cotton Science 12, 8798.Google Scholar
Vitale, J. D. (2010). The commercial application of GMO crops in Africa: Burkina Faso's decade of experience with Bt cotton. AgBioForum 13(4), 320332.Google Scholar
Vitale, J. D. et al. (2011). Enhancing sustainability of cotton production systems in West Africa: a summary of empirical evidence from Burkina Faso. Sustainability 3, 11361169.Google Scholar

References

Adenle, A. A. et al. (2013). Status of development, regulation and adoption of GM agriculture in Africa: views and positions of stakeholder groups. Food Policy 43, 159166.Google Scholar
African Union Commission (2014). Science, Technology and Innovation Strategy for Africa 2024. Addis Ababa: African Union Commission.Google Scholar
African Union Commission (2016). Agenda 2063: The Africa We Want. [Online]. Available from http://agenda2063.au.int/en/homeGoogle Scholar
Alexandrova, N. et al. (2005). Biosafety regulations of GMOs: national and international aspects and regional cooperation. Biotechnology & Biotechnological Equipment 19(suppl. 3), 153172.Google Scholar
Brinckman, D. (2000). The regulation of rBST: the European case. AgBioForum 3(2–3), 164172.Google Scholar
Chambers, J. A. (2013). Biosafety of GM Crops in Kenya, Uganda, and Tanzania: An Evolving Landscape of Regulatory Progress and Retreat. Washington, D.C.: Center for Strategic and International Studies.Google Scholar
Cohen, S. N. (2013). DNA cloning: a personal view after 40 years. Proceedings of the National Academy of Sciences of the USA 110(39), 1552115529.Google Scholar
Edquist, C. and Johnson, B. (1997). Institutions and organizations in systems of innovation. In Systems of Innovation: Technologies, Institutions and Organizations, ed. Edquist, C. London: Routledge, pp. 4160.Google Scholar
Etzkowitz, H. (2002). Innovation in innovation: the triple helix of university–industry–government relations. Social Science Information 42(3), 293337.Google Scholar
Jaffe, G. (2004). Regulating transgenic crops: a comparative analysis of different regulatory processes. Transgenic Research 13, 519.Google Scholar
Juma, C. (2011). The New Harvest: Agricultural Innovation in Africa. New York, NY: Oxford University Press.Google Scholar
Keese, P. et al. (2002). Seeds of promise: developing a sustainable agricultural biotechnology industry in sub–Saharan Africa. Natural Resources Forum 26(3), 234244.Google Scholar
Knight, W. (2002). Zambia bans GM food aid. [Online]. New Scientist Daily News, 30 October 2002. Available from www.newscientist.com/article/dn2990-zambia-bans-gm-food-aid/Google Scholar
Koch, M. (2014). Elements of an enabling biosafety and regulatory environment. In Biotechnology in Africa: Emergence, Initiatives and Future, ed. Wambugu, F. and Kamanga, D.. Basel: Springer International Publishing Switzerland, pp. 197205.Google Scholar
Ladisch, M. R. and Kohlmann, K. L. (1992). Recombinant human insulin. Biotechnology Progress 8(6), 469478.Google Scholar
Lundvall, B.-A. (2010). National Innovation Systems: Toward a Theory of Innovation and Interactive Learning. Copenhagen: Anthem Press.Google Scholar
New Partnership for Africa's Development (2003). Comprehensive Africa Agriculture Development Programme (CAADP). Pretoria: New Partnership for Africa's Development.Google Scholar
Office of the Gene Technology Regulator (2005). Risk Analysis Framework. Canberra: Office of the Gene Technology Regulator.Google Scholar
Pingali, P. (2012). Green Revolution: impacts, limits, and the path ahead. Proceedings of the National Academy of Sciences of the USA 109(31), 1230212308.Google Scholar
Pingali, P. and Raney, T. (2005). From the Green Revolution to the Gene Revolution: How Will the Poor Fare? Rome: Food and Agriculture Organization.Google Scholar
Sengooba, T. et al. (2005). Analysis of the Biosafety System in Uganda. Kampala: National Council for Science and Technology.Google Scholar
United Nations Department of Economic and Social Affairs Population Division (2015). World population prospects: the 2015 revision, key findings and advance tables. Working Paper No. ESA/P/WP.241.Google Scholar

References

African Union (2014). Malabo declaration on accelerated agricultural growth and transformation for shared prosperity and improved livelihoods. [Online]. Addis Ababa: African Union. Available from http://pages.au.int/sites/default/files/Malabo%20Declaration%202014_11%2026-.pdfGoogle Scholar
Alexandros, N. and Bruinsma, J. (2012). World agriculture towards 2030/2050: the 2012 revision. FAO Agriculture Development Economics Division. ESA Working Paper No. 12-03.Google Scholar
Brookes, G. and Barfoot, P. (2016). GM Crops: Global Socio-economic and Environmental Impacts 1996–2014. Dorchester: PG Economics Ltd.Google Scholar
Carroll, D et al. (2016). Regulate genome-edited products, not genome editing itself. Nature Biotechnology 34, 477479.Google Scholar
Grassini, P. et al. (2013). Distinguishing between yield advances and yield plateaus in historical crop production trends. Nature Communications 4, 2918.Google Scholar
Huesing, J. E. et al. (2016). Global adoption of genetically modified (GM) crops: challenges for the public sector. Journal of Agricultural and Food Chemistry 64(2), 394402.Google Scholar
Jansen van Rijssen, F. W. et al. (2015). The precautionary principle: making managerial decisions on GMOs is difficult. South African Journal of Science 111(3–4), 19.Google Scholar
Peterson, M. (2007). The precautionary principle should not be taken as a basis for decision-making: talking point on the precautionary principle. EMBO Reports 8(4), 305308.Google Scholar
Schiek, B. et al. (2016). Demystification of GM crop costs: releasing late blight resistant potato varieties as public goods in developing countries. International Journal of Biotechnology 14(2), 112131.Google Scholar
Strauss, S. H. and Sax, J. K. (2016). Ending event-based regulation of GMO crops. Nature Biotechnology 34, 474477.Google Scholar
The Montpellier Panel (2013). Sustainable Intensification: A New Paradigm for African Agriculture, London. [Online]. Available from www.ag4impact.org/publications/montpellier-panel-report2013/Google Scholar
Thomson, J. A. T. (2016). An African perspective: new biosciences making African agriculture more productive and resilient. In Creating Sustainable Bioeconomies: The Bioscience Revolution in Europe and Africa, ed. Virgin, I. and Morris, E. J.. London: Routledge, pp. 5161.Google Scholar
United Nations (2015). World population prospects, the 2015 revision. Department of Economic and Social Affairs, Population Division. [Online]. Available from https://esa.un.org/unpd/wpp/Google Scholar
US National Academies (2016). Genetically Engineered Crops: Experiences and Prospects. Washington, D.C.: National Academies Press. [Online]. Available from www.nap.edu/catalog/23395/genetically-engineered-crops-experiences-and-prospectsGoogle Scholar
US Senate (2016). Bill S.764 to amend the Agricultural Marketing Act of 1946 to require the Secretary of Agriculture to establish a national disclosure standard for bioengineered foods, and for other purposes. [Online]. Available from www.agriculture.senate.gov/imo/media/doc/Ag%20biotech%20compromise%20proposal.pdfGoogle Scholar
World Hunger Education Service (2015). 2015 World hunger and poverty facts and statistics. [Online]. Available from www.worldhunger.org/2015-world-hunger-and-poverty-facts-and-statistics/Google Scholar

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