The current status of cereal (maize, rice and sorghum) crops cultivation in Africa: need for integration of advances in transgenic for sustainable crop production.
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[1] T. G. Owens,et al. Trehalose accumulation in rice plants confers high tolerance levels to different abiotic stresses , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[2] Jigang Han,et al. Transgenic expression of lactoferrin imparts enhanced resistance to head blight of wheat caused by Fusarium graminearum , 2012, BMC Plant Biology.
[3] C. Anglani. Sorghum for human food – A review , 1998, Plant foods for human nutrition.
[4] N. Tuteja,et al. Cold, salinity and drought stresses: an overview. , 2005, Archives of biochemistry and biophysics.
[5] Kan Wang,et al. Generation of transgenic maize with enhanced provitamin A content , 2008, Journal of experimental botany.
[6] H. Nguyen,et al. HVA1, a LEA gene from barley confers dehydration tolerance in transgenic rice (Oryza sativa L.) via cell membrane protection , 2004 .
[7] Jianjun Wang,et al. Functional analysis of rice NPR1-like genes reveals that OsNPR1/NH1 is the rice orthologue conferring disease resistance with enhanced herbivore susceptibility. , 2007, Plant biotechnology journal.
[8] N. Crickmore,et al. Bacillus thuringiensis and Its Pesticidal Crystal Proteins , 1998, Microbiology and Molecular Biology Reviews.
[9] U. Grossniklaus,et al. Apomixis technology development: transgene containment and fixation of heterosis. , 2004 .
[10] Mike Mendelsohn,et al. Are Bt crops safe? , 2003, Nature Biotechnology.
[11] Enzo Lombi,et al. Constitutive Overexpression of the OsNAS Gene Family Reveals Single-Gene Strategies for Effective Iron- and Zinc-Biofortification of Rice Endosperm , 2011, PloS one.
[12] P. Christou,et al. Constitutive expression of a barley Fe phytosiderophore transporter increases alkaline soil tolerance and results in iron partitioning between vegetative and storage tissues under stress. , 2012, Plant physiology and biochemistry : PPB.
[13] B. Tabashnik,et al. Engineering Modified Bt Toxins to Counter Insect Resistance , 2007, Science.
[14] Paul Christou,et al. Transgenic strategies for the nutritional enhancement of plants. , 2007, Trends in plant science.
[15] P. Christou,et al. An alternative strategy for sustainable pest resistance in genetically enhanced crops , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[16] Y. Nishizawa,et al. Family 19 Chitinase of Streptomyces griseus HUT6037 Increases Plant Resistance to the Fungal Disease , 2003, Bioscience, biotechnology, and biochemistry.
[17] Jürgen Breitenbach,et al. Combinatorial genetic transformation generates a library of metabolic phenotypes for the carotenoid pathway in maize , 2008, Proceedings of the National Academy of Sciences.
[18] R. Creelman,et al. From Laboratory to Field. Using Information from Arabidopsis to Engineer Salt, Cold, and Drought Tolerance in Crops1 , 2004, Plant Physiology.
[19] T. Abebe,et al. Tolerance of Mannitol-Accumulating Transgenic Wheat to Water Stress and Salinity1 , 2003, Plant Physiology.
[20] M. Grusak,et al. Methods to improve the crop-delivery ofminerals to humans and livestock , 2005 .
[21] M. Giroux,et al. Wheat puroindolines enhance fungal disease resistance in transgenic rice. , 2001, Molecular plant-microbe interactions : MPMI.
[22] A. Sakamoto,et al. Transgenics of an elite indica rice variety Pusa Basmati 1 harbouring the codA gene are highly tolerant to salt stress , 2002, Theoretical and Applied Genetics.
[23] P. Christou,et al. Simultaneous expression of Arabidopsis ρ-hydroxyphenylpyruvate dioxygenase and MPBQ methyltransferase in transgenic corn kernels triples the tocopherol content , 2011, Transgenic Research.
[24] Jim M. Dunwell,et al. Technologies for biological containment of GM and Non-GM crops , 2005 .
[25] R. D'Ovidio,et al. Transgenic expression of polygalacturonase-inhibiting proteins in Arabidopsis and wheat increases resistance to the flower pathogen Fusarium graminearum. , 2012, Plant biology.
[26] S. S. Yang,et al. Transgenic maize endosperm containing a milk protein has improved amino acid balance , 2008, Transgenic Research.
[27] 方福德. 构成性表达(constitutive expression) , 2003 .
[28] P. Broun,et al. Progress in plant metabolic engineering , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[29] A. Shelton,et al. Insect-resistant genetically modified rice in China: from research to commercialization. , 2011, Annual review of entomology.
[30] Graham Brookes,et al. GM crops : The global economic and environmental impact-The first nine years 1996-2004 , 2005 .
[31] H. Kuiper,et al. Opinion of the Scientific Panel on Genetically Modified Organisms on the Post Market Environmental Monitoring (PMEM) of genetically modified plants: (Question No EFSA-Q-2004-061) , 2006 .
[32] M. Agarwal,et al. Heat-tolerant basmati rice engineered by over-expression of hsp101 , 2003, Plant Molecular Biology.
[33] Mar Rufat,et al. Pathogen-induced production of the antifungal AFP protein from Aspergillus giganteus confers resistance to the blast fungus Magnaporthe grisea in transgenic rice. , 2005, Molecular plant-microbe interactions : MPMI.
[34] E. Hinchliffe,et al. Improving the nutritional value of Golden Rice through increased pro-vitamin A content , 2005, Nature Biotechnology.
[35] N. Murai,et al. The pea seed storage protein legumin was synthesized, processed, and accumulated stably in transgenic rice endosperm , 1997 .
[36] P. Ronald,et al. Overexpression of a rice NPR1 homolog leads to constitutive activation of defense response and hypersensitivity to light. , 2005, Molecular plant-microbe interactions : MPMI.
[37] Yun Zhang,et al. Over-expression of OsDREB genes lead to enhanced drought tolerance in rice , 2008, Biotechnology Letters.
[38] R. Sunkar,et al. Drought and Salt Tolerance in Plants , 2005 .
[39] Y. Nishizawa,et al. Characterization of transgenic rice plants over-expressing the stress-inducible β-glucanase gene Gns1 , 2004, Plant Molecular Biology.
[40] S. Gupta,et al. TRANSGENIC TECHNOLOGIES IN AGRICULTURE: FROM LAB TO FIELD TO MARKET , 2013 .
[41] G. Acquaah. Principles of plant genetics and breeding , 2006 .
[42] S. S. Hussain,et al. Beyond osmolytes and transcription factors: drought tolerance in plants via protective proteins and aquaporins , 2011, Biologia Plantarum.
[43] H. Koga,et al. Surface α-1,3-Glucan Facilitates Fungal Stealth Infection by Interfering with Innate Immunity in Plants , 2012, PLoS pathogens.
[44] M. Horak,et al. Characterization of Drought-Tolerant Maize MON 87460 for Use in Environmental Risk Assessment , 2014 .
[45] K. Shinozaki,et al. Regulation and functional analysis of ZmDREB2A in response to drought and heat stresses in Zea mays L. , 2007, The Plant journal : for cell and molecular biology.
[46] H. Shou,et al. Nicotianamine, a Novel Enhancer of Rice Iron Bioavailability to Humans , 2010, PloS one.
[47] G. Brookes,et al. Global impact of biotech crops: Environmental effects 1996-2009 , 2011, GM crops.
[48] N. Bohorova,et al. Accumulation, assembly, and digestibility of amarantin expressed in transgenic tropical maize , 2004, Theoretical and Applied Genetics.
[49] S. Song,et al. Expression of a Bifunctional Fusion of the Escherichia coli Genes for Trehalose-6-Phosphate Synthase and Trehalose-6-Phosphate Phosphatase in Transgenic Rice Plants Increases Trehalose Accumulation and Abiotic Stress Tolerance without Stunting Growth1 , 2003, Plant Physiology.
[50] K. Shimamoto. Transgenic Rice Plants , 1991 .
[51] N. Sreenivasulu,et al. Regulation of proline biosynthesis, degradation, uptake and transport in higher plants: Its implications in plant growth and abiotic stress tolerance , 2005 .
[52] Mitsuru Tsubo,et al. A simulation model of cereal-legume intercropping systems for semi-arid regions I. Model development , 2005 .
[53] T. Muneer,et al. Energy supply, its demand and security issues for developed and emerging economies , 2007 .
[54] Juan Zhang,et al. Constitutive expression of pathogen-inducible OsWRKY31 enhances disease resistance and affects root growth and auxin response in transgenic rice plants , 2008, Cell Research.
[55] K. Toriyama,et al. Enhanced heat and drought tolerance in transgenic rice seedlings overexpressing OsWRKY11 under the control of HSP101 promoter , 2008, Plant Cell Reports.
[56] S. Takumi,et al. Transcriptional activation of Cor/Lea genes and increase in abiotic stress tolerance through expression of a wheat DREB2 homolog in transgenic tobacco , 2008, Transgenic Research.
[57] R. Eritja,et al. Transgenic Rice Plants Expressing the Antifungal AFP Protein from Aspergillus Giganteus Show Enhanced Resistance to the Rice Blast Fungus Magnaporthe Grisea , 2004, Plant Molecular Biology.
[58] Suman Bakshi,et al. Status of Transgenic Cereal Crops: A Review , 2013 .
[59] Jian-Bing Fan,et al. Expression of an active tobacco mitogen-activated protein kinase kinase kinase enhances freezing tolerance in transgenic maize. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[60] Y. Nishizawa,et al. Enhanced resistance to blast (Magnaporthe grisea) in transgenic Japonica rice by constitutive expression of rice chitinase , 1999, Theoretical and Applied Genetics.
[61] C. Mei,et al. Inducible overexpression of a rice allene oxide synthase gene increases the endogenous jasmonic acid level, PR gene expression, and host resistance to fungal infection. , 2006, Molecular plant-microbe interactions : MPMI.
[62] A. Savouré,et al. Phospholipase D Is a Negative Regulator of Proline Biosynthesis in Arabidopsis thaliana* , 2004, Journal of Biological Chemistry.
[63] P. Beyer,et al. Engineering the provitamin A (beta-carotene) biosynthetic pathway into (carotenoid-free) rice endosperm. , 2000, Science.
[64] S. Storozhenko,et al. Folate fortification of rice by metabolic engineering , 2007, Nature Biotechnology.