Molecular and Insecticidal Characterization of a Novel Cry-Related Protein from Bacillus Thuringiensis Toxic against Myzus persicae
Abstract
1. Introduction
2. Results
2.1. Draft Genome Sequence of Strain H1.5
2.2. Molecular Characterization of the Novel Cry Gene


2.3. Protein Expression of the Cry-Related Gene

2.4. Insecticidal Activity of the Novel Cry-Related Protein
| Treatment | LC50 (µg/mL) | Regression line | Goodness of fit value | ||
|---|---|---|---|---|---|
| Slope ± SE | a * ± SE | χ2 | d.f. | ||
| Cry-related protein | 32.7 | 10.3 ± 1.4 | −10.6 ± 2.1 | 0.55 | 2 |
3. Discussion
4. Materials and Methods
4.1. Bacterial Strains and Plasmids
4.2. Genome Sequencing
4.3. Computational Analysis of DNA and Protein Sequences
4.4. Amplification and Cloning of the Novel Cry-Related Gene Sequence
4.5. Protein Expression and Purification
4.6. Insect Rearing and Bioassays
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Schnepf, E.; Crickmore, N.; van Rie, J.; Lereclus, D.; Baum, J.; Feitelson, J.; Zeigler, D.R.; Dean, D.H. Bacillus thuringiensis and its pesticidal crystal proteins. Microbiol. Mol. Biol. Rev. 1998, 62, 775–806. [Google Scholar]
- Bravo, A.; Gill, S.S.; Soberón, M. Mode of action of Bacillus thuringiensis Cry and Cyt toxins and their potential for insect control. Toxicon 2007, 49, 423–435. [Google Scholar]
- MacIntosh, S.C.; Stone, T.B.; Sims, S.R.; Hunst, P.L.; Greenplate, J.T.; Marrone, P.G.; Perlak, F.J.; Fischhoff, D.A.; Fuchs, R.L. Specificity and efficacy of purified Bacillus thuringiensis proteins against agronomically important insects. J. Invertebr. Pathol. 1990, 56, 258–266. [Google Scholar]
- Porcar, M.; Grenier, A.M.; Federici, B.; Rahbe, Y. Effects of Bacillus thuringiensis δ-endotoxins on the pea aphid (Acyrthosiphon pisum). Appl. Environ. Microbiol. 2009, 75, 4897–4900. [Google Scholar]
- Wei, J.Z.; Hale, K.; Carta, L.; Platzer, E.; Wong, C.; Fang, S.C.; Aroian, R.V. Bacillus thuringiensis crystal proteins that target nematodes. Proc. Natl. Acad. Sci. USA 2003, 100, 2760–2765. [Google Scholar]
- Chougule, N.P.; Bonning, B.C. Toxins for transgenic resistance to hemipteran pests. Toxins 2012, 4, 405–429. [Google Scholar]
- Shi, X.; Jiang, L.; Wang, H.; Qiao, K.; Wang, D.; Wang, K. Toxicities and sublethal effects of seven neonicotinoid insecticides on survival, growth and reproduction of imidacloprid-resistant cotton aphid, Aphis gossypii. Pest. Manag. Sci. 2011, 67, 1528–1533. [Google Scholar]
- Wang, K.Y.; Liu, T.X.; Yu, C.H.; Jiang, X.Y.; Yi, M.Q. Resistance of Aphis gossypii (Homoptera: Aphididae) to fenvalerate and imidacloprid and activities of detoxification enzymes on cotton and cucumber. J. Econ. Entomol. 2002, 95, 407–413. [Google Scholar]
- Sampson, S.K.; Dumitru, V.; Tomso, J.D. Pesticidal proteins and methods for their use. U.S. Patent 8,318,900, 27 November 2012. [Google Scholar]
- Walters, F.S.; English, L.H. Toxicity of Bacillus thuringiensis delta-endotoxins toward the potato aphid in an artificial diet bioassay. Entomol. Exp. Appl. 1995, 77, 211–216. [Google Scholar]
- Sattar, S.; Maiti, M.K. Molecular characterization of a novel vegetative insecticidal protein from Bacillus thuringiensis effective against sap-sucking insect pest. J. Microbiol. Biotechnol. 2011, 21, 937–946. [Google Scholar]
- Baum, J.A.; Sukuru, U.R.; Penn, S.R.; Meyer, S.E.; Subbarao, S.; Shi, X.; Flasinski, S.; Heck, G.R.; Brown, R.S.; Clark, T.L. Cotton plants expressing a hemipteran-active Bacillus thuringiensis crystal protein impact the development and survival of Lygus hesperus (Hemiptera: Miridae) nymphs. J. Econ. Entomol. 2012, 105, 616–624. [Google Scholar]
- Yu, Y.; Wei, Z.M. Increased oriental armyworm and aphid resistance in transgenic wheat stably expressing Bacillus thuringiensis (Bt) endotoxin and Pinellia ternate agglutinin (PTA). Plant. Cell. Tiss Org. 2008, 94, 33–44. [Google Scholar]
- Ohba, M.; Mizuki, E.; Uemori, A. Parasporin, a new anticancer protein group from Bacillus thuringiensis. Anticancer Res. 2009, 29, 427–433. [Google Scholar]
- Mizuki, E.; Park, Y.S.; Saitoh, H.; Yamashita, S.; Akao, T.; Higuchi, K.; Ohba, M. Parasporin, a human leukemic cell-recognizing parasporal protein of Bacillus thuringiensis. Clin. Diagn. Lab. Immunol. 2000, 7, 625–634. [Google Scholar]
- Yasutake, K.; Uemori, A.; Kagoshima, K.; Ohba, M. Serological identification and insect toxicity of Bacillus thuringiensis isolated from the island Okinoerabu-jima, Japan. Appl. Entomol. Zool. 2007, 42, 285–290. [Google Scholar]
- Hayakawa, T.; Kanagawa, R.; Kotani, Y.; Kimura, M.; Yamagiwa, M.; Yamane, Y.; Takebe, S.; Sakai, H. Parasporin-2Ab, a newly isolated cytotoxic crystal protein from Bacillus thuringiensis. Curr. Microbiol. 2007, 55, 278–283. [Google Scholar]
- Kondo, S.; Mizuki, E.; Akao, T.; Ohba, M. Antitrichomonal strains of Bacillus thuringiensis. Parasitol. Res. 2002, 88, 1090–1092. [Google Scholar]
- Iriarte, J.; Bel, Y.; Ferrandis, M.D.; Andrew, R.; Murillo, J.; Ferré, J.; Caballero, P. Environmental distribution and diversity of Bacillus thuringiensis in Spain. Syst. Appl. Microbiol. 1998, 21, 97–106. [Google Scholar]
- Iriarte, J.; Porcar, M.; Lecadet, M.; Caballero, P. Isolation and characterization of Bacillus thuringiensis strains from aquatic environments in Spain. Curr. Microbiol. 2000, 40, 402–408. [Google Scholar]
- Altschul, S.F.; Gish, W.; Miller, W.; Myers, E.W.; Lipman, D.J. Basic local alignment search tool. J. Mol. Biol. 1990, 215, 403–410. [Google Scholar]
- Ye, W.; Zhu, L.; Liu, Y.; Crickmore, N.; Peng, D.; Ruan, L.; Sun, M. Mining new crystal protein genes from Bacillus thuringiensis based on mixed plasmid-enriched genome sequencing and a computational pipeline. Appl. Environ. Microbiol. 2012, 78, 4795–4801. [Google Scholar]
- Drummond, A.J.; Ashton, B.; Buxton, S.; Cheung, M.; Cooper, A.; Duran, C.; Field, M.; Heled, J.; Kearse, M.; Markowitz, S.; et al. Geneious Pro v5.5.6. Available online: http://www.geneious.com/ (accessed on 31 October 2014).
- Sambrook, J.; Russell, D. Molecular Cloning: A Laboratory Manual; Cold Spring Harbor Laboratory Press: Cold Spring Harbor, NY, USA, 2001. [Google Scholar]
- Pence, R.J. The antimetabolite, imidazole as a pesticide. J. Econ. Entomol. 1963, 56, 1–7. [Google Scholar]
- Ross, D.C.; Brown, T.M. Inhibition of larval growth in Spodoptera frugiperda by sublethal dietary concentrations of insecticides. J. Agric. Food Chem. 1982, 30, 193–196. [Google Scholar]
- Bradford, M.M. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem. 1976, 72, 248–254. [Google Scholar]
- Greene, G.L.; Leppla, N.C.; Dickerson, W.A. The velvetbean caterpillar: A rearing procedure and artificial medium. J. Econ. Entomol. 1976, 69, 487–488. [Google Scholar]
- LeOra-Software POLO-PC: A User’s Guide to Probit or Logit Analysis; LeOra Software: Berkeley, CA, USA, 1987.
- Yamashita, S.; Katayama, H.; Saitoh, H.; Akao, T.; Park, Y.S.; Mizuki, E.; Ohba, M.; Ito, A. Typical three-domain Cry proteins of Bacillus thuringiensis strain A1462 exhibit cytocidal activity on limited human cancer cells. J. Biochem. 2005, 138, 663–672. [Google Scholar]
- Okumura, S.; Ohba, M.; Mizuki, E.; Crickmore, N.; Coté, J.-C.; Nagamatsu, Y.; Kitada, S.; Sakai, H.; Harata, K.; Shin, T. Parasporin nomenclature. Available online: http://parasporin.fitc.pref.fukuoka.jp/2013 (accessed on 28 October 2014).
- Burgio, G.; Lanzoni, A.; Accinelli, G.; Dinelli, G.; Bonetti, A.; Marotti, I.; Ramilli, F. Evaluation of Bt-toxin uptake by the non-target herbivore, Myzus persicae (Hemiptera: Aphididae), feeding on transgenic oilseed rape. Bull. Entomol. Res. 2007, 97, 211–215. [Google Scholar]
- Lawo, N.C.; Wäckers, F.L.; Romeis, J. Indian Bt cotton varieties do not affect the performance of cotton aphids. PLoS One 2009, 4. [Google Scholar] [CrossRef]
- Chakroun, M.; Bel, Y.; Caccia, S.; Abdelkefi-Mesrati, L.; Escriche, B.; Ferré, J. Susceptibility of Spodoptera frugiperda and S exigua to Bacillus thuringiensis Vip3Aa insecticidal protein. J. Invertebr. Pathol. 2012, 110, 334–339. [Google Scholar]
- Crespo, A.L.; Spencer, T.A.; Nekl, E.; Pusztai-Carey, M.; Moar, W.J.; Siegfried, B.D. Comparison and validation of methods to quantify Cry1Ab toxin from Bacillus thuringiensis for standardization of insect bioassays. Appl. Environ. Microbiol. 2008, 74, 130–135. [Google Scholar]
- Ibargutxi, M.A.; Estela, A.; Ferré, J.; Caballero, P. Use of Bacillus thuringiensis toxins for control of the cotton pest Earias insulana (Boisd.) (Lepidoptera: Noctuidae). Appl. Environ. Microbiol. 2006, 72, 437–442. [Google Scholar]
- Gatehouse, J.A. Biotechnological prospects for engineering insect-resistant plants. Plant. Physiol. 2008, 146, 881–887. [Google Scholar]
- Mehlo, L.; Gahakwa, D.; Nghia, P.T.; Loc, N.T.; Capell, T.; Gatehouse, J.A.; Gatehouse, A.M.; Christou, P. An alternative strategy for sustainable pest resistance in genetically enhanced crops. Proc. Natl. Acad. Sci. USA 2005, 102, 7812–7816. [Google Scholar]
- Pardo-López, L.; Soberón, M.; Bravo, A. Bacillus thuringiensis insecticidal three-domain Cry toxins: Mode of action, insect resistance and consequences for crop protection. FEMS Microbiol. Rev. 2013, 37, 3–22. [Google Scholar]
- Bravo, A.; Soberón, M. How to cope with insect resistance to Bt toxins? Trends Biotechnol 2008, 26, 573–579. [Google Scholar]
- Yao, J.; Pang, Y.; Qi, H.; Wan, B.; Zhao, X.; Kong, W.; Sun, X.; Tang, K. Transgenic tobacco expressing Pinellia ternata agglutinin confers enhanced resistance to aphids. Transgenic Res. 2003, 12, 715–722. [Google Scholar]
- Monerrat, R.G.; Soares, C.M.; Capdeville, G.; Jones, G.; Soares Martins, E.; Praça, L.; Cordeiro, B.A.; Braz, S.V.; Dos Santos, R.C.; Berry, C. Translocation and insecticidal activity of Bacillus thuringiensis bacteria living inside of plants. Microbial Biotechnol. 2009, 2, 512–520. [Google Scholar]
- Melatti, V.M.; Praça, L.B.; Martins, E.S.; Sujii, E.; Berry, C.; Monnerat, R.G. Selection of Bacillus thuringiensis strains toxic against cotton aphid, Aphis gossypii Glover (Hemiptera: Aphididae). BioAssay 2010, 5, 1–4. [Google Scholar]
© 2014 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Palma, L.; Muñoz, D.; Berry, C.; Murillo, J.; De Escudero, I.R.; Caballero, P. Molecular and Insecticidal Characterization of a Novel Cry-Related Protein from Bacillus Thuringiensis Toxic against Myzus persicae. Toxins 2014, 6, 3144-3156. https://doi.org/10.3390/toxins6113144
Palma L, Muñoz D, Berry C, Murillo J, De Escudero IR, Caballero P. Molecular and Insecticidal Characterization of a Novel Cry-Related Protein from Bacillus Thuringiensis Toxic against Myzus persicae. Toxins. 2014; 6(11):3144-3156. https://doi.org/10.3390/toxins6113144
Chicago/Turabian StylePalma, Leopoldo, Delia Muñoz, Colin Berry, Jesús Murillo, Iñigo Ruiz De Escudero, and Primitivo Caballero. 2014. "Molecular and Insecticidal Characterization of a Novel Cry-Related Protein from Bacillus Thuringiensis Toxic against Myzus persicae" Toxins 6, no. 11: 3144-3156. https://doi.org/10.3390/toxins6113144
APA StylePalma, L., Muñoz, D., Berry, C., Murillo, J., De Escudero, I. R., & Caballero, P. (2014). Molecular and Insecticidal Characterization of a Novel Cry-Related Protein from Bacillus Thuringiensis Toxic against Myzus persicae. Toxins, 6(11), 3144-3156. https://doi.org/10.3390/toxins6113144
