Microbiología Industrial utilizando proteinas bioinsecticidas

Nivel C del PRIDE
* Indica publicación con otra institución de adscripción
Total de publicaciones: 56
  • Tipo
  • Fecha
Artículo
8 - Sena da Silva,I.H., Gomez,I., Pacheco,S., Sanchez,J., Zhang,J., Luque Castellane,T.C., Aparecida Desiderio J., Soberon,M., Bravo,A., Polanczyk,R.A. (2021). Bacillus thuringiensis Cry1Ab domain III -16 is involved in binding to prohibitin which correlates with toxicity against Helicoverpa armigera (Lepidoptera: Noctuidae). Applied and Environmental Microbiology, 87 (2), e01930-20.
Artículo
10 - Gomez,I., Ocelotl,J., Sanchez,J., Aguilar-Medel,S., Pena-Chora,G., Lina-Garcia,L., Bravo,A., Soberon,M. (2020). Bacillus thuringiensis Cry1Ab domain III beta-22 mutants with enhanced toxicity to Spodoptera frugiperda (J. E. Smith). Applied and Environmental Microbiology, 86 (22), e01580-20.
Artículo
12 - Gomez, I., Ocelotl, J., Sanchez, J., Lima, C., Martins, E., Rosales-Juarez, A., Aguilar-Medel, S., Abad, A., Dong, H., Monnerat, R., Pena, G., Zhang, J., Nelson, M., Wu, G., Bravo, A., Soberon, M. (2018). Enhancement of Bacillus thuringiensis Cry1Ab and Cry1Fa toxicity to Spodoptera frugiperda by domain III mutations indicates two limiting steps in toxicity as defined by receptor binding and protein stability. Applied and Environmental Microbiology, 84 (20), e01393-18.
Open Access Artículo
Artículo
25 - Garcia-Robles,I., Ochoa-Campuzano,C., Sanchez,J., Contreras,E., Real,M.D., Rausell,C. (2012). Functional significance of membrane associated proteolysis in the toxicity of Bacillus thuringiensis Cry3Aa toxin against Colorado potato beetle. Toxicon, 60 (6), 1063-1071.
Artículo
26 - Ochoa-Campuzano,C., Sanchez,J., Garcia-Robles,I., Real,M.D., Rausell,C., Sanchez,J. (2012). Identification of a calmodulin-binding site within the domain I of Bacillus thuringiensis Cry3Aa toxin. Archives of Insect Biochemistry and Physiology, 81 (1), 53-62.
Artículo
27 - Martins,E.S., Monnerat,R.G., Queiroz,P.R., Dumas,V.F., Braz,S.V., de Souza Aguiar,R.W., Mendes-Gomes,A.C., Sanchez,J., Bravo,A., Ribeiro,B.M. (2010). Midgut GPI- anchored proteins with alkaline phosphatase activity from the cotton boll weevil (Anthonomus grandis) can be the putative receptors for the Cry1B protein of Bacillus thuringiensis. Insect Biochemistry and Molecular Biology, 40 (2), 138-145.
Artículo
Artículo
31 - Monnerat,R., Martins,E., Queiroz,P., Orduz,S., Jaramillo,G., Benintende,G., Cozzi,J., Real,M.D., Martinez-Ramirez,A., Rausell,C., Ceron,J., Ibarra,J.E., del Rincon-Castro,M.C., Espinoza,A.M., Meza-Basso,L., Cabrera,L., Sanchez,J., Soberon,M., Bravo,A. (2006). Genetic variability of Spodoptera frugiperda Smith (Lepidoptera: Noctuidae) populations from Latin America is associated with variations in susceptibility to Bacillus thuringiensis Cry toxins. Applied and Environmental Microbiology, 72 (11), 7029-7035.
Artículo
32 - Munoz-Garay,C., Sanchez,J., Darszon,A., de Maagd,R.A., Bakker,P., Soberon,M., Bravo,A. (2006). Permeability Changes of Manduca sexta Midgut Brush Border Membranes Induced by Oligomeric Structures of Different Cry Toxins. Journal of Membrane Biology, 212 (1), 61-68 [Erratum: 245 (12) 859].
Open Access Artículo
33 - Padilla,C., Pardo-Lopez,L., de la Riva,G., Gomez,I., Sanchez,J., Hernandez,G., Nunez,M.E., Carey,M.P., Dean,D.H., Alzate,O., Soberon,M., Bravo,A. (2006). Role of Tryptophan Residues in Toxicity of Cry1Ab Toxin from Bacillus thuringiensis. Applied and Environmental Microbiology, 72 (1), 901-907.
Artículo
36 - Rausell,C., Garcia-Robles,I., Sanchez,J., Munoz-Garay,C., Martinez-Ramirez,A.C., Real,M.D., Bravo,A. (2004). Role of toxin activation on binding and pore formation activity of the Bacillus thuringiensis Cry3 toxins in membranes of Leptinotarsa decemlineata (Say). Biochimica et Biophysica Acta (BBA) - Biomembranes, 1660 (1-2), 99-105.
Artículo
38 - Ibarra,J.E., Del Rincon,M.C., Orduz,S., Noriega,D., Benintende,G., Monnerat,R., Regis,L., De Oliveira,C.M., Lanz,H., Rodriguez,M.H., Sanchez,J., Pena,G., Bravo,A. (2003). Diversity of Bacillus thuringiensis Strains from Latin America with Insecticidal Activity against Different Mosquito Species. Applied and Environmental Microbiology, 69 (9), 5269-5274.
Open Access Artículo
39 - Bravo,A., Sanchez,J., Kouskoura,T., Crickmore,N. (2002). N-terminal activation is an essential early step in the mechanism of action of the B. thuringiensis Cry1Ac insecticidal toxin. Journal of Biological Chemistry, 277 (27), 23985-23987.
Artículo
41 - Garcia-Robles,I., Sanchez,J., Gruppe,A., Martinez-Ramirez,A.C., Rausell,C., Real,M.D., Bravo,A. (2001). Mode of action of Bacillus thuringiensis PS86Q3 strain in hymenopteran forest pests. Insect Biochemistry and Molecular Biology, 31 (9), 849-856.
Artículo
42 - Nunez-Valdez,M., Sanchez,J., Lina,L., Guereca,L., Bravo,A. (2001). Structural and functional studies of alpha-helix 5 region from Bacillus thuringiensis Cry1Ab delta-endotoxin. Biochimica et Biophysica Acta (BBA) - Protein Structure And Molecular Enzymology, 1546 (1), 122-131.
Internacional
48 - Soberon,M., Garcia-Gomez,B.I., Pacheco,S., Sanchez-Quintana,J., Tabashnik,B.E., Bravo,A. (2015). Countering pest resistance with genetically modified Bt toxins. Bt resistance-characterization and strategies for GM crops expressing Bacillus thuringiensis . CABI Biotechnology Series Volume: 4, 150-161, Oxford.
Memoria in extenso
49 - Bravo,A., Martinez-de-Castro,D.L., Sanchez,J., Munoz-Garay,C., Matus,V., Canton,P.E., Lopez-Diaz,J., Portugal,L., Mendoza,G., Soberon,M. (2014). Mode of action of Bacillus thuringiensis toxins and their use in transgenic crops to control insect pests. Biotechnology: beyond borders. Proceedings of the Indo-Mexico workshop on Biotechnology held at CSIR NCL, Pune, India from October 7-9, 2013., 122-134.
Internacional
50 - Flores-Escobar,B., Zuniga-Navarrete,F., Sanchez,J., Gomez,I. (2012). Protein-protein interaction detection on membrane supports. Tools to Understand Protein-Protein Interactions. 55-70, Kerala: Research Signpost.
Internacional
51 - Soberon,M., Pardo,L., Munoz-Garay,C., Sanchez,J., Gomez,I., Porta,H., Bravo,A. (2010). Pore Formation by Cry Toxins. Proteins: Membrane Binding and Pore Formation. Advances in Experimental Medicine and Biology, 127-142, Austin, TX: Landes Bioscience.
Memoria in extenso
52 - Pardo,L., Gomez,I., Munoz-Garay,C., Jimenez-Juarez,N., Sanchez,J., Perez,C., Soberon,M., Bravo,A. (2007). Oligomer Formation of Different Cry Toxins Indicates that a Pre-Pore is an Essential Intermediate in the Mode of Action of the Three-Domain Cry Family. Proceedings of the 6th Pacific Rim Conference on the Biotechnology of Bacillus thuringiensis and its Environmental Impact. 7-8.
Nacional
53 - Munoz,R., Pardo,L., Sanchez-Quintana,J., Raussell.C., Soberon,M., Bravo,A. (2006). Mecanismos moleculares de insercion de la toxina Cry de Bacillus thuringiensis en membrana. La fisica biologica en Mexico. 1-27, Mexico.
Internacional
54 - Soberon,M., Nuñez,M., Gomez I., Sanchez-Quintana,J., Bravo,A. (2004). Functional studies of helix a-5 region from Bacillus thuringiensis Cry1Ab d-endotoxin shows that conserved residues are important for pore formation and stability but not for oligomer formation. Pore-forming peptides and protein toxins. Cellular and molecular mechanisms of toxin action ;v. 5, 90-101, London ;New York.
Preprint
55 - Fonseca-Garcia,C., Pettinga,D., Caddell,D., Ploemacher,H., Louie,K., Bowen,B.P., Park,J., Sanchez,J., Zimic-Sheen,A., Traxler,M.F., Northen,T.R., Coleman-Derr,D. (2025). Uncovering the hidden diversity and functional roles of root endophytic Streptomyces under drought stress. bioRxiv, Preprint posted June 25. *
Open Access Divulgación
56 - Aranda,E., Sanchez,J.F., Lina,L., Peferoen,M., Bravo,A. (1999). Analisis de la union in vitro e in vivo de las d-endotoxinas de Bacillus Thuringiensis al epitelio intestinal de Diatrea grandiosello. BioTecnologia. Sociedad Mexicana de Biotecnologia y Bioingenieria, 3, 95-105.
Artículo
69 - Gomez, I., Ocelotl, J., Sanchez, J., Lima, C., Martins, E., Rosales-Juarez, A., Aguilar-Medel, S., Abad, A., Dong, H., Monnerat, R., Pena, G., Zhang, J., Nelson, M., Wu, G., Bravo, A., Soberon, M.. Enhancement of Bacillus thuringiensis Cry1Ab and Cry1Fa toxicity to Spodoptera frugiperda by domain III mutations indicates two limiting steps in toxicity as defined by receptor binding and protein stability. Applied and Environmental Microbiology, 84 (20), e01393-18.
Artículo
Open Access Artículo
Open Access Artículo
Open Access Artículo
Revisión
Open Access Artículo
Artículo
85 - Garcia-Robles,I., Ochoa-Campuzano,C., Sanchez,J., Contreras,E., Real,M.D., Rausell,C.. Functional significance of membrane associated proteolysis in the toxicity of Bacillus thuringiensis Cry3Aa toxin against Colorado potato beetle. Toxicon, 60 (6), 1063-1071.
Artículo
86 - Ochoa-Campuzano,C., Sanchez,J., Garcia-Robles,I., Real,M.D., Rausell,C., Sanchez,J.. Identification of a calmodulin-binding site within the domain I of Bacillus thuringiensis Cry3Aa toxin. Archives of Insect Biochemistry and Physiology, 81 (1), 53-62.
Internacional
87 - Flores-Escobar,B., Zuniga-Navarrete,F., Sanchez,J., Gomez,I.. Protein-protein interaction detection on membrane supports. Tools to Understand Protein-Protein Interactions. 55-70, Kerala: Research Signpost.
Artículo
88 - Martins,E.S., Monnerat,R.G., Queiroz,P.R., Dumas,V.F., Braz,S.V., de Souza Aguiar,R.W., Mendes-Gomes,A.C., Sanchez,J., Bravo,A., Ribeiro,B.M.. Midgut GPI- anchored proteins with alkaline phosphatase activity from the cotton boll weevil (Anthonomus grandis) can be the putative receptors for the Cry1B protein of Bacillus thuringiensis. Insect Biochemistry and Molecular Biology, 40 (2), 138-145.
Internacional
89 - Soberon,M., Pardo,L., Munoz-Garay,C., Sanchez,J., Gomez,I., Porta,H., Bravo,A.. Pore Formation by Cry Toxins. Proteins: Membrane Binding and Pore Formation. Advances in Experimental Medicine and Biology, 127-142, Austin, TX: Landes Bioscience.
Artículo
94 - Monnerat,R., Martins,E., Queiroz,P., Orduz,S., Jaramillo,G., Benintende,G., Cozzi,J., Real,M.D., Martinez-Ramirez,A., Rausell,C., Ceron,J., Ibarra,J.E., del Rincon-Castro,M.C., Espinoza,A.M., Meza-Basso,L., Cabrera,L., Sanchez,J., Soberon,M., Bravo,A.. Genetic variability of Spodoptera frugiperda Smith (Lepidoptera: Noctuidae) populations from Latin America is associated with variations in susceptibility to Bacillus thuringiensis Cry toxins. Applied and Environmental Microbiology, 72 (11), 7029-7035.
Artículo
Open Access Artículo
96 - Padilla,C., Pardo-Lopez,L., de la Riva,G., Gomez,I., Sanchez,J., Hernandez,G., Nunez,M.E., Carey,M.P., Dean,D.H., Alzate,O., Soberon,M., Bravo,A.. Role of Tryptophan Residues in Toxicity of Cry1Ab Toxin from Bacillus thuringiensis. Applied and Environmental Microbiology, 72 (1), 901-907.
Artículo
Nacional
98 - Munoz,R., Pardo,L., Sanchez-Quintana,J., Raussell.C., Soberon,M., Bravo,A.. Mecanismos moleculares de insercion de la toxina Cry de Bacillus thuringiensis en membrana. La fisica biologica en Mexico. 1-27, Mexico.
Artículo
103 - Ibarra,J.E., Del Rincon,M.C., Orduz,S., Noriega,D., Benintende,G., Monnerat,R., Regis,L., De Oliveira,C.M., Lanz,H., Rodriguez,M.H., Sanchez,J., Pena,G., Bravo,A.. Diversity of Bacillus thuringiensis Strains from Latin America with Insecticidal Activity against Different Mosquito Species. Applied and Environmental Microbiology, 69 (9), 5269-5274.
Artículo
106 - Garcia-Robles,I., Sanchez,J., Gruppe,A., Martinez-Ramirez,A.C., Rausell,C., Real,M.D., Bravo,A.. Mode of action of Bacillus thuringiensis PS86Q3 strain in hymenopteran forest pests. Insect Biochemistry and Molecular Biology, 31 (9), 849-856.
Artículo
107 - Nunez-Valdez,M., Sanchez,J., Lina,L., Guereca,L., Bravo,A.. Structural and functional studies of alpha-helix 5 region from Bacillus thuringiensis Cry1Ab delta-endotoxin. Biochimica et Biophysica Acta (BBA) - Protein Structure And Molecular Enzymology, 1546 (1), 122-131.
Open Access Divulgación
109 - Aranda,E., Sanchez,J.F., Lina,L., Peferoen,M., Bravo,A.. Analisis de la union in vitro e in vivo de las d-endotoxinas de Bacillus Thuringiensis al epitelio intestinal de Diatrea grandiosello. BioTecnologia. Sociedad Mexicana de Biotecnologia y Bioingenieria, 3, 95-105.