Sugarcane Biotechnology: Tapping Unlimited Potential
暂无分享,去创建一个
Sagadevan G. Mundree | Brett Williams | Sudipta Shekhar Das Bhowmik | Anthony Brinin | Brett Williams | S. Mundree | Sudipta Bhowmik | Anthony Brinin | Sagadevan Mundree
[1] Yafan Huang,et al. Narrowing down the targets: towards successful genetic engineering of drought-tolerant crops. , 2010, Molecular plant.
[2] J. Power,et al. Transformation of sugarcane protoplasts by direct uptake of a selectable chimaeric gene , 1987, Plant Cell Reports.
[3] Uzma,et al. Genetic Improvement of Sugarcane for Drought and Salinity Stress Tolerance Using Arabidopsis Vacuolar Pyrophosphatase (AVP1) Gene , 2014, Molecular Biotechnology.
[4] Venkatesh Balan,et al. Alkali‐based AFEX pretreatment for the conversion of sugarcane bagasse and cane leaf residues to ethanol , 2010, Biotechnology and bioengineering.
[5] M. Manickavasagam,et al. Agrobacterium-mediated genetic transformation and development of herbicide-resistant sugarcane (Saccharum species hybrids) using axillary buds , 2004, Plant Cell Reports.
[6] D. E. Van Dyk,et al. Initial evaluation of sugarcane as a production platform for p-hydroxybenzoic acid. , 2004, Plant biotechnology journal.
[7] Bin Gao,et al. Biochar from anaerobically digested sugarcane bagasse. , 2010, Bioresource technology.
[8] D. Gaff,et al. The Occurrence of Resurrection Plants in the Australian Flora , 1978 .
[9] L. Vieira,et al. Improving low-temperature tolerance in sugarcane by expressing the ipt gene under a cold inducible promoter , 2011, Biologia Plantarum.
[10] Shujie Dong,et al. Advances in Agrobacterium-Mediated Sugarcane Transformation and Stable Transgene Expression , 2014, Sugar Tech.
[11] P. Joyce,et al. Field performance of transgenic sugarcane produced using Agrobacterium and biolistics methods. , 2014, Plant biotechnology journal.
[12] Wilfred Vermerris,et al. RNAi suppression of lignin biosynthesis in sugarcane reduces recalcitrance for biofuel production from lignocellulosic biomass. , 2012, Plant biotechnology journal.
[13] R. S. Nelson,et al. Delay of disease development in transgenic plants that express the tobacco mosaic virus coat protein gene. , 1986, Science.
[14] T. Thomas,et al. Sugarcane DIRIGENT and O-METHYLTRANSFERASE promoters confer stem-regulated gene expression in diverse monocots , 2010, Planta.
[15] S. Cai,et al. Molecular characterization of a distinct potyvirus from whitegrass in China , 2003, Archives of Virology.
[16] J. Goldemberg,et al. The Sustainability of Ethanol Production from Sugarcane , 2008, Renewable Energy.
[17] J. Bernal,et al. Evaluation of Lectin-Expressing Transgenic Sugarcane Against Stalkborers (Lepidoptera: Pyralidae): Effects on Life History Parameters , 2002, Journal of economic entomology.
[18] E. Maiss,et al. The complete sequence of the genome of Cocksfoot streak virus (CSV), a grass infecting Potyvirus , 2002, Archives of Virology.
[19] R. Birch,et al. Engineered detoxification confers resistance against a pathogenic bacterium , 1999, Nature Biotechnology.
[20] K. Shimamoto,et al. The promoters of two carboxylases in a C4 plant (maize) direct cell-specific, light-regulated expression in a C3 plant (rice). , 1994, The Plant journal : for cell and molecular biology.
[21] J. Irvine,et al. Effects of tissue type and promoter strength on transient GUS expression in sugarcane following particle bombardment , 1993, Plant Cell Reports.
[22] Xiaofeng Wang,et al. Enhanced Transgene Expression in Sugarcane by Co-Expression of Virus-Encoded RNA Silencing Suppressors , 2013, PloS one.
[23] R. B. McQualter,et al. Production and Evaluation of Transgenic Sugarcane Containing a Fiji Disease Virus (FDV) Genome Segment S9-derived Synthetic Resistance Gene , 2004 .
[24] Prakash Lakshmanan,et al. Sugarcane biotechnology: The challenges and opportunities , 2005, In Vitro Cellular & Developmental Biology - Plant.
[25] M. Fromm,et al. Factors Influencing Gene Delivery into Zea Mays Cells by High–Velocity Microprojectiles , 1988, Bio/Technology.
[26] R. Ming,et al. Genome size variation in three Saccharum species , 2012, Euphytica.
[27] J. Manners,et al. A promoter from sugarcane bacilliform badnavirus drives transgene expression in banana and other monocot and dicot plants , 1999, Plant Molecular Biology.
[28] Xiaosong Hu,et al. Optimizing conditions for the purification of crude octacosanol extract from rice bran wax by molecular distillation analyzed using response surface methodology , 2005 .
[29] D. J. Heinz,et al. Plant Differentiation from Callus Tissue of Saccharum Species1 , 1969 .
[30] Paul H. Moore,et al. Production of biologically active GM-CSF in sugarcane: a secure biofactory , 2005, Transgenic Research.
[31] P. Moore. Anatomy and Morphology , 1987 .
[32] R. Birch,et al. Mature-stem expression of a silencing-resistant sucrose isomerase gene drives isomaltulose accumulation to high levels in sugarcane. , 2013, Plant biotechnology journal.
[33] Hugo Bruno Correa Molinari,et al. Evaluation of the stress-inducible production of proline in transgenic sugarcane (Saccharum spp.): osmotic adjustment, chlorophyll fluorescence and oxidative stress , 2007 .
[34] Vanete Thomaz Soccol,et al. Biotechnological potential of agro-industrial residues. I: sugarcane bagasse , 2000 .
[35] R. Birch,et al. Sugarcane Loading Stem Gene promoters drive transgene expression preferentially in the stem , 2013, Plant Molecular Biology.
[36] K. Nampoothiri,et al. Solid state fermentation for L-glutamic acid production using Brevibacterium sp. , 1996, Biotechnology Letters.
[37] R. Rutherford,et al. An in vitro mutagenesis protocol for the production of sugarcane tolerant to the herbicide imazapyr , 2012, In Vitro Cellular & Developmental Biology - Plant.
[38] J. Ferro,et al. Sugarcane genes differentially expressed during water deficit , 2011, Biologia Plantarum.
[39] J. Daniels,et al. Taxonomy and Evolution , 1987 .
[40] L. Nielsen,et al. Chemical inhibition of acetyl coenzyme A carboxylase as a strategy to increase polyhydroxybutyrate yields in transgenic sugarcane. , 2013, Plant biotechnology journal.
[41] Raquel Ghini,et al. Diseases in tropical and plantation crops as affected by climate changes: current knowledge and perspectives , 2011 .
[42] W. Ens,et al. Characterization of a novel potyvirus isolated from maize in Israel. , 2000, Phytopathology.
[43] Prasant Kumar Rout,et al. Production of first and second generation biofuels: A comprehensive review , 2010 .
[44] Asha Gaur,et al. Biological pretreatment of sugarcane trash for its conversion to fermentable sugars , 2008 .
[45] V. Yadav,et al. Overexpression of osmotin gene confers tolerance to salt and drought stresses in transgenic tomato (Solanum lycopersicum L.) , 2010, Protoplasma.
[46] R. Ford,et al. Taxonomy of potyviruses infecting maize, sorghum, and sugarcane in Australia and the United States as determined by reactivities of polyclonal antibodies directed towards virus-specific N-termini of coat proteins. , 1989 .
[47] R. Birch,et al. Transgenic sugarcane plants via microprojectile bombardment , 1992 .
[48] G. A. de la Riva,et al. Herbicide-resistant sugarcane (Saccharum officinarum L.) plants by Agrobacterium-mediated transformation , 1998, Planta.
[49] T. Mirkov,et al. Posttranscriptional gene silencing in transgenic sugarcane. Dissection Of homology-dependent virus resistance in a monocot that has a complex polyploid genome , 1999, Plant physiology.
[50] M. Chan,et al. An efficient protocol for sugarcane (Saccharum spp. L.) transformation mediated by Agrobacterium tumefaciens , 1998, Transgenic Research.
[51] R. Sutherst,et al. Potential impact of climate change on plant diseases of economic significance to Australia , 1998, Australasian Plant Pathology.
[52] Heather D. Coleman,et al. Accumulation of recombinant cellobiohydrolase and endoglucanase in the leaves of mature transgenic sugar cane. , 2011, Plant biotechnology journal.
[53] N. Pereira,et al. Succinic acid production from sugarcane bagasse hemicellulose hydrolysate by Actinobacillus succinogenes , 2011, Journal of Industrial Microbiology & Biotechnology.
[54] S. Solomon. The Indian Sugar Industry: An Overview , 2011, Sugar Tech.
[55] B. Roe,et al. Microcollinearity between autopolyploid sugarcane and diploid sorghum genomes , 2010, BMC Genomics.
[56] K. C. Alexander,et al. Somaclonal Variation For Rust Resistance in Sugarcane , 1987 .
[57] N. Arora,et al. Engineered hypoallergenic variants of osmotin demonstrate hypoallergenicity with in vitro and in vivo methods. , 2015, Molecular immunology.
[58] J. N. Nigam. Cultivation of Candida langeronii in sugar cane bagasse hemicellulosic hydrolyzate for the production of single cell protein , 2000 .
[59] S. Srivastava,et al. Inter simple sequence repeat profile as a genetic marker system in sugarcane , 2008, Sugar Tech.
[60] J. Hamill,et al. Sporobolus stapfianus, a model desiccation-tolerant grass. , 2009, Functional plant biology : FPB.
[61] S. Gollasch,et al. Bean [alpha]-Amylase Inhibitor Confers Resistance to the Pea Weevil (Bruchus pisorum) in Transgenic Peas (Pisum sativum L.) , 1995, Plant physiology.
[62] M. Sainz,et al. Recombinant Cellulase Accumulation in the Leaves of Mature, Vegetatively Propagated Transgenic Sugarcane , 2014, Molecular Biotechnology.
[63] D. Baulcombe. RNA silencing in plants , 2004, Nature.
[64] Su,et al. Dehydration-stress-regulated transgene expression in stably transformed rice plants , 1998, Plant physiology.
[65] J. Glaszmann,et al. Oligoclonal interspecific origin of ‘North Indian’ and ‘Chinese’ sugarcanes , 2004, Chromosome Research.
[66] S. Snyman,et al. Refining the application of direct embryogenesis in sugarcane: effect of the developmental phase of leaf disc explants and the timing of DNA transfer on transformation efficiency , 2006, Plant Cell Reports.
[67] C. Grof,et al. Developmental and hormonal regulation of direct shoot organogenesis and somatic embryogenesis in sugarcane (Saccharum spp. interspecific hybrids) leaf culture , 2006, Plant Cell Reports.
[68] S. Singh,et al. RAPD marker based analysis of micropropagated plantlets of sugarcane for early evaluation of genetic fidelity , 2008, Sugar Tech.
[69] Lian-Hui Zhang,et al. Transgenic sugarcane plants expressing high levels of modified cry1Ac provide effective control against stem borers in field trials , 2011, Transgenic Research.
[70] M. Van Sluys,et al. A novel linkage map of sugarcane with evidence for clustering of retrotransposon-based markers , 2012, BMC Genetics.
[71] Bruce E Dale,et al. 'Cradle-to-grave' assessment of existing lignocellulose pretreatment technologies. , 2009, Current opinion in biotechnology.
[72] S. V. Kumar,et al. Induction of somatic embryogenesis in different varieties of sugarcane (Saccharam officinarum L.) , 2011 .
[73] R. Birch,et al. Effects of promoter, intron and enhancer elements on transient gene expression in sugar-cane and carrot protoplasts , 1993, Plant Molecular Biology.
[74] Christoph Schmitz,et al. Environmental flow provision: Implications for agricultural water and land-use at the global scale , 2015 .
[75] J. Sanford,et al. The concept of parasite-derived resistance—Deriving resistance genes from the parasite's own genome , 1985 .
[76] B. Sobral,et al. A genetic linkage map of Saccharum spontaneum L. 'SES 208'. , 1993, Genetics.
[77] Heather D. Coleman,et al. Improved molecular tools for sugar cane biotechnology , 2013, Plant Molecular Biology.
[78] V. Y. Patade,et al. Effects of salt stress in relation to osmotic adjustment on sugarcane (Saccharum officinarum L.) callus cultures , 2008, Plant Growth Regulation.
[79] M. Qaim. The Economics of Genetically Modified Crops , 2009 .
[80] D. Millen,et al. Impact of biofuel production in Brazil on the economy, agriculture, and the environment. , 2013 .
[81] T. Iseli,et al. Oleanolic Acid Reduces Hyperglycemia beyond Treatment Period with Akt/FoxO1-Induced Suppression of Hepatic Gluconeogenesis in Type-2 Diabetic Mice , 2012, PloS one.
[82] Jo Dewulf,et al. Comparative Life Cycle Assessment of four alternatives for using by-products of cane sugar production. , 2009 .
[83] David C. Ison,et al. Determination of basic chromosome numbers in the genus Saccharum by physical mapping of ribosomal RNA genes , 1998 .
[84] D. Theertha Prasad,et al. Functional characterization of sugarcane MYB transcription factor gene promoter (PScMYBAS1) in response to abiotic stresses and hormones , 2011, Plant Cell Reports.
[85] M. Q. Zhang,et al. Cloning and identification of promoter Prd29A and its application in sugarcane drought resistance , 2008, Sugar Tech.
[86] M. L. C. Vieira,et al. Genetic instability of sugarcane plants derived from meristem cultures , 2002 .
[87] Hongmei Ma,et al. Metabolic engineering of invertase activities in different subcellular compartments affects sucrose accumulation in sugarcane cells , 2000 .
[88] A. D'Hont,et al. Unraveling the genome structure of polyploids using FISH and GISH; examples of sugarcane and banana , 2005, Cytogenetic and Genome Research.
[89] J. Glaszmann,et al. Characterisation of the double genome structure of modern sugarcane cultivars (Saccharum spp.) by molecular cytogenetics , 1996, Molecular and General Genetics MGG.
[90] Adriana Cheavegatti-Gianotto,et al. Sugarcane (Saccharum X officinarum): A Reference Study for the Regulation of Genetically Modified Cultivars in Brazil , 2011, Tropical Plant Biology.
[91] I. Vasil. Developing Cell and Tissue Culture Systems for the Improvement of Cereal and Grass Crops , 1987 .
[92] L. Canilha,et al. Semi-continuous xylose-to-xylitol bioconversion by Ca-alginate entrapped yeast cells in a stirred tank reactor , 2008, Bioprocess and biosystems engineering (Print).
[93] J. Reinert,et al. Applied and Fundamental Aspects of Plant Cell, Tissue, and Organ Culture , 1977, Springer Berlin Heidelberg.
[94] Suwen Zhu,et al. Bacterially expressed dsRNA protects maize against SCMV infection , 2010, Plant Cell Reports.
[95] K. C. Bansa,et al. Over-expression of Osmotin Induces Proline Accumulation and Confers Tolerance to Osmotic Stress in Transgenic Tobacco , 2012, Journal of Plant Biochemistry and Biotechnology.
[96] D. Baulcombe. Mechanisms of Pathogen-Derived Resistance to Viruses in Transgenic Plants. , 1996, The Plant cell.
[97] R. A. Bailey,et al. Association of a phytoplasma with a yellow leaf syndrome of sugarcane in Africa , 1998 .
[98] Fei-Hu Liu,et al. Expression of the Grifola frondosa Trehalose Synthase Gene and Improvement of Drought-Tolerance in Sugarcane (Saccharum officinarum L.) , 2006 .
[99] J. Oard,et al. High transgene expression levels in sugarcane (Saccharum officinarum L.) driven by the rice ubiquitin promoter RUBQ2 , 2003 .
[100] S. Mundree,et al. Protection mechanisms in the resurrection plant Xerophyta viscosa (Baker): both sucrose and raffinose family oligosaccharides (RFOs) accumulate in leaves in response to water deficit. , 2007, Journal of experimental botany.
[101] O. Singh,et al. Sugarcane bagasse and leaves: foreseeable biomass of biofuel and bio‐products , 2012 .
[102] S. Adkins,et al. Development of an Axillary Bud Culture Technique for Fiji Disease Virus Elimination in Sugarcane , 1995 .
[103] L. G. Nickell,et al. Nutrition and organ differentiation in tissue cultures of sugarcane, a monocotyledon , 1969, Planta.
[104] W. Ngah,et al. Removal of heavy metal ions from wastewater by chemically modified plant wastes as adsorbents: a review. , 2008, Bioresource technology.
[105] E. Ulian,et al. Elevated CO2 increases photosynthesis, biomass and productivity, and modifies gene expression in sugarcane. , 2008, Plant, cell & environment.
[106] Heather D. Coleman,et al. An improved chemically inducible gene switch that functions in the monocotyledonous plant sugar cane , 2014, Plant Molecular Biology.
[107] T. Franks,et al. Gene Transfer into Intact Sugarcane Cells Using Microprojectile Bombardment , 1991 .
[108] C. Viswanathan,et al. Identification and validation of sugarcane streak mosaic virus-encoded microRNAs and their targets in sugarcane , 2014, Plant Cell Reports.
[109] P. Larkin,et al. Somacional variation and eyespot toxin tolerance in sugarcane , 1983, Plant Cell, Tissue and Organ Culture.
[110] M. Anderson,et al. Proteinase inhibitors in Nicotiana alata stigmas are derived from a precursor protein which is processed into five homologous inhibitors. , 1993, The Plant cell.
[111] R. Devarumath,et al. Field performance and RAPD analysis to evaluate genetic fidelity of tissue culture raised plantsvis-à-vis conventional setts derived plants of sugarcane , 2007, Sugar Tech.
[112] E. Ulian,et al. Transformation and expression of a gene for herbicide resistance in a Brazilian sugarcane , 2000, Plant Cell Reports.
[113] N. Saini,et al. Large-scale production, field performance and RAPD analysis of micropropagated sugarcane plants , 2004 .
[114] Luguang Wu,et al. Doubled sugar content in sugarcane plants modified to produce a sucrose isomer. , 2007, Plant biotechnology journal.
[115] M. Oliveira,et al. Genetic stability of micropropagated almond plantlets, as assessed by RAPD and ISSR markers , 2004, Plant Cell Reports.
[116] K. Fukui,et al. Quantitative chromosome map of the polyploid Saccharum spontaneum by multicolor fluorescence in situ hybridization and imaging methods , 1999, Plant Molecular Biology.
[117] Sarah Park,et al. Sugarcane for water-limited environments: Theoretical assessment of suitable traits , 2012 .
[118] S. Tanksley,et al. The detection and estimation of linkage in polyploids using single-dose restriction fragments , 2004, Theoretical and Applied Genetics.
[119] Joaquim E. A. Seabra,et al. Comparative analysis for power generation and ethanol production from sugarcane residual biomass in Brazil , 2011 .
[120] Kevin Begcy,et al. A Novel Stress-Induced Sugarcane Gene Confers Tolerance to Drought, Salt and Oxidative Stress in Transgenic Tobacco Plants , 2012, PloS one.
[121] M. Sharma,et al. Early assessment of genetic fidelity in sugarcane (Saccharum officinarum) plantlets regenerated through direct organogenesis with RAPD and SSR markers , 2012 .
[122] N. Mckern,et al. Confirmation that the Sugarcane Mosaic Virus Subgroup Consists of Four Distinct Potyviruses by Using Peptide Profiles of Coat Proteins , 1991 .