Selection and application of broad-specificity human domain antibody for simultaneous detection of Bt Cry toxins.
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Yuan Liu | Xiao Zhang | Cunzheng Zhang | J. Zhong | Xiaodan Hu | Chongxin Xu | Xianjin Liu | Xiaoqin Liu
[1] B. Tabashnik,et al. Large-scale test of the natural refuge strategy for delaying insect resistance to transgenic Bt crops , 2014, Nature Biotechnology.
[2] Yakun Wan,et al. Uniform Orientation of Biotinylated Nanobody as an Affinity Binder for Detection of Bacillus thuringiensis (Bt) Cry1Ac Toxin , 2014, Toxins.
[3] F. Wuest,et al. Improved soluble expression of a single-chain antibody fragment in E. coli for targeting CA125 in epithelial ovarian cancer. , 2014, Protein expression and purification.
[4] Sher Ali,et al. Genetically modified crops: detection strategies and biosafety issues. , 2013, Gene.
[5] B. Tabashnik,et al. Insect resistance to Bt crops: lessons from the first billion acres , 2013, Nature Biotechnology.
[6] X. Zhang,et al. Isolation of single chain variable fragment (scFv) specific for Cry1C toxin from human single fold scFv libraries. , 2012, Toxicon : official journal of the International Society on Toxinology.
[7] S. Stowell,et al. Initiation and Regulation of Complement during Hemolytic Transfusion Reactions , 2012, Clinical & developmental immunology.
[8] Xian-jin Liu,et al. Rapid isolation of single-chain antibodies from a human synthetic phage display library for detection of Bacillus thuringiensis (Bt) Cry1B toxin. , 2012, Ecotoxicology and environmental safety.
[9] A. Ali,et al. scFv Antibody: Principles and Clinical Application , 2012, Clinical & developmental immunology.
[10] Jun,et al. Study on Spatial-temporal Dynamics of Bt Toxic Protein Expression in Insect-resistant Transgenic Cotton and Its Degradation in Soil , 2012 .
[11] Guozhen Fang,et al. Applications and recent developments of multi-analyte simultaneous analysis by enzyme-linked immunosorbent assays. , 2011, Journal of immunological methods.
[12] R. Twyman,et al. Bacillus thuringiensis: a century of research, development and commercial applications. , 2011, Plant biotechnology journal.
[13] T. Lövgren,et al. Engineering of a broad-specificity antibody: detection of eight fluoroquinolone antibiotics simultaneously. , 2011, Analytical biochemistry.
[14] T. Schirrmann,et al. Phage Display for the Generation of Antibodies for Proteome Research, Diagnostics and Therapy , 2011, Molecules.
[15] Á. González-Fernández,et al. Rapid isolation of single-chain antibodies by phage display technology directed against one of the most potent marine toxins: Palytoxin. , 2010, Toxicon : official journal of the International Society on Toxinology.
[16] K. Pinthong,et al. Analysis of the insecticidal crystal gene type 1 of Bacillus thuringiensis isolates affecting lepidopterans , 2010 .
[17] J. Mao,et al. Expression of an elicitor-encoding gene from Magnaporthe grisea enhances resistance against blast disease in transgenic rice , 2009, Plant Cell Reports.
[18] K. Kwong,et al. Generation, affinity maturation, and characterization of a human anti-human NKG2D monoclonal antibody with dual antagonistic and agonistic activity. , 2008, Journal of molecular biology.
[19] B. Brocks,et al. In vitro affinity maturation of human GM-CSF antibodies by targeted CDR-diversification. , 2008, Molecular immunology.
[20] M. Soberón,et al. How to cope with insect resistance to Bt toxins? , 2008, Trends in biotechnology.
[21] Mats Ohlin,et al. In vitro evolution of an antibody fragment population to find high-affinity hapten binders. , 2008, Protein engineering, design & selection : PEDS.
[22] Yang Yu,et al. Increased oriental armyworm and aphid resistance in transgenic wheat stably expressing Bacillus thuringiensis (Bt) endotoxin and Pinellia ternate agglutinin (PTA) , 2008, Plant Cell, Tissue and Organ Culture.
[23] V. Paul,et al. Development and validation of a sensitive enzyme immunoassay for surveillance of Cry1Ab toxin in bovine blood plasma of cows fed Bt-maize (MON810). , 2008, Analytica chimica acta.
[24] Laura Anfossi,et al. Binding properties of a monoclonal antibody against the Cry1Ab from Bacillus Thuringensis for the development of a capillary electrophoresis competitive immunoassay , 2008, Analytical and bioanalytical chemistry.
[25] D. Christ,et al. Selection of human antibody fragments by phage display , 2007, Nature Protocols.
[26] C. MacKenzie,et al. Isolation and affinity maturation of hapten-specific antibodies. , 2007, Biotechnology advances.
[27] Reiko Teshima,et al. ELISA method for monitoring human serum IgE specific for Cry1Ab introduced into genetically modified corn. , 2007, Regulatory toxicology and pharmacology : RTP.
[28] H. Débat,et al. Expression of a functional scFv fragment of an anti-idiotypic antibody with a beta-lactam hydrolytic activity. , 2006, Immunology letters.
[29] A. Roda,et al. Development and validation of a sensitive and fast chemiluminescent enzyme immunoassay for the detection of genetically modified maize , 2006, Analytical and bioanalytical chemistry.
[30] J. Bünzli,et al. Taking advantage of luminescent lanthanide ions. , 2005, Chemical Society reviews.
[31] H. Hoogenboom,et al. Selecting and screening recombinant antibody libraries , 2005, Nature Biotechnology.
[32] S. Baumgarte,et al. Field studies on the environmental fate of the Cry1Ab Bt‐toxin produced by transgenic maize (MON810) and its effect on bacterial communities in the maize rhizosphere , 2005, Molecular ecology.
[33] P. Motavalli,et al. Bacterial Diversity in Rhizospheres of Nontransgenic and Transgenic Corn , 2005, Applied and Environmental Microbiology.
[34] Mami Takahashi,et al. Effects of transgenic Bt corn pollen on a non-target lycaenid butterfly, Pseudozizeeria maha , 2005 .
[35] T. Pan,et al. Detection of genetically modified maize MON810 and NK603 by multiplex and real-time polymerase chain reaction methods. , 2004, Journal of agricultural and food chemistry.
[36] I. Altosaar,et al. Achieving successful deployment of Bt rice. , 2004, Trends in plant science.
[37] M. Tuomola,et al. Engineering of a broad specificity antibody for simultaneous detection of 13 sulfonamides at the maximum residue level. , 2004, Journal of agricultural and food chemistry.
[38] A. Ashouri. Transgenic-Bt potato plant resistance to the colorado potato beetle affect the aphid parasitoid Aphidius nigripes. , 2004, Communications in agricultural and applied biological sciences.
[39] M. Berenbaum,et al. Effects of exposure to event 176 Bacillus thuringiensis corn pollen on monarch and black swallowtail caterpillars under field conditions , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[40] K D Wittrup,et al. Directed evolution of antibody fragments with monovalent femtomolar antigen-binding affinity. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[41] I. Bernstein,et al. Immune responses in farm workers after exposure to Bacillus thuringiensis pesticides. , 1999, Environmental health perspectives.
[42] H. R. Whiteley,et al. Insecticidal crystal proteins of Bacillus thuringiensis. , 1989, Microbiological reviews.
[43] D. Boulter,et al. A novel mechanism of insect resistance engineered into tobacco , 1987, Nature.
[44] J. Beatty,et al. Measurement of monoclonal antibody affinity by non-competitive enzyme immunoassay. , 1987, Journal of immunological methods.
[45] G. P. Smith,et al. Filamentous fusion phage: novel expression vectors that display cloned antigens on the virion surface. , 1985, Science.
[46] E Soini,et al. Time-resolved fluorometer for lanthanide chelates--a new generation of nonisotopic immunoassays. , 1983, Clinical chemistry.