Proteolytic Sites at Protein Termini of BT Cytolytic Cyt2Aa2 Protein Affect its Expression in Escherichia coli

Main Article Content

Chontida Tangsongcharoen
Boonhiang Promdonkoy
Chartchai Krittanai
Sudarat Tharad

Abstract

Bacillus thuringiensis (Bt) is well-known for its bio-larvicidal properties. Cytolytic (Cyt) protein is one of Bt larvicidal proteins. This protein requires proteolytic activation to remove partial N- and C-terminal regions. In this study, to improve proteolytic cleavage specificity, proteinase K cleavage sites at both end termini of Cyt2Aa2 protein were substituted by a trypsin cleavage sites L33R, S37K, S228R, and F237K. Afterward, the engineered Cyt2Aa2 proteins were heterologous expressed in Escherichia coli. Most of the mutants were produced as inclusion proteins similar to the wild type but their capability of solubilization and trypsin activation was significantly reduced, particularly for L33R, S37K, and F237K. The S228R mutant could be partially solubilized and activated. Moreover, the new trypsin cleavage site at N-terminus of L33R resulted in an aberrant toxic Cyt2Aa2 protein against E. coli. The L33R mutant limited E. coli growth during protein synthesis. Remarkably, although the capability of solubilization of the mutant proteins was reduced, their mosquito larvicidal activity (except L33R and L33R/F237K) was comparable to the wild type. These findings demonstrate that although the amino acid residues at N- and C-terminal regions of Cyt2Aa2 are eliminated from active protein, they are necessary for protein production and for preventing toxicity against E. coli during heterologous expression.

Article Details

How to Cite
Tangsongcharoen, C. ., Promdonkoy, B. ., Krittanai, C. ., & Tharad, S. (2026). Proteolytic Sites at Protein Termini of BT Cytolytic Cyt2Aa2 Protein Affect its Expression in Escherichia coli. CURRENT APPLIED SCIENCE AND TECHNOLOGY, e0270529. https://doi.org/10.55003/cast.2026.270529
Section
Original Research Articles

References

Al-yahyaee, S. A. S., & Ellar, D. J. (1995). Maximal toxicity of cloned CytA δ-endotoxin from Bacillus thuringiensis subsp. israelensis requires proteolytic processing from both the N- and C-termini. Microbiology, 141(12), 3141-3148. https://doi.org/10.1099/13500872-141-12-3141

Angsuthanasombat, C., Crickmore, N., & Ellar, D. J. (1993). Effects on toxicity of eliminating a cleavage site in a predicted interhelical loop in Bacillus thuringiensis CryIVB delta-endotoxin. FEMS Microbiology Letters, 111(2-3), 255-261. https://doi.org/10.1111/j.1574-6968.1993.tb06395.x

Bravo, A., Gill, S. S., & Soberon, M. (2007). Mode of action of Bacillus thuringiensis Cry and Cyt toxins and their potential for insect control. Toxicon, 49(4), 423-435. https://doi.org/10.1016/j.toxicon.2006.11.022

Butko, P. (2003). Cytolytic toxin Cyt1A and its mechanism of membrane damage: data and hypotheses. Applied and Environmental Microbiology, 69(5), 2415-2422. https://doi.org/10.1128/AEM.69.5.2415-2422.2003

Crickmore, N., Baum, J., Bravo, A., Lereclus, D., Narva, K., Sampson, K., Schnepf, E., Sun, M., & Zeigler, D. R. (2016). Bacillus thuringiensis toxin nomenclature. http://www.btnomenclature.info/

Du, J., Knowles, B. H., Li, J., & Ellar, D. J. (1999). Biochemical characterization of Bacillus thuringiensis cytolytic toxins in association with a phospholipid bilayer. Biochemical Journal, 338(1), 185-193.

Escobar, E., Segura, C., Vanegas, M., Patarroyo, M. E., & Orduz, S. (2000). Proteolytic processing of the Cyt1Ab1 toxin produced by Bacillus thuringiensis subsp. medellin. Memorias do Instituto Oswaldo Cruz, 95(5), 693-700. https://doi.org/10.1590/s0074-02762000000500014

Hofte, H., & Whiteley, H. R. (1989). Insecticidal crystal proteins of Bacillus thuringiensis. Microbiology and Molecular Biology Reviews, 53(2), 242-255. https://doi.org/10.1128/mr.53.2.242-255.1989

James, J., Yarnall, B., Koranteng, A., Gibson, J., Rahman, T., & Doyle, D. A. (2021). Protein over-expression in Escherichia coli triggers adaptation analogous to antimicrobial resistance. Microbial Cell Factories, 20(1), Article 13. https://doi.org/10.1186/s12934-020-01462-6

Knowles, B. H., White, P. J., Nicholls, C. N., & Ellar, D. J. (1992). A broad-spectrum cytolytic toxin from Bacillus thuringiensis var. kyushuensis. Proceedings, Biological Sciences, 248(1321), 1-7. https://doi.org/10.1098/rspb.1992.0035

Koni, P. A., & Ellar, D. J. (1994). Biochemical characterization of Bacillus thuringiensis cytolytic delta-endotoxins. Microbiology, 140(8), 1869-1880. https://doi.org/10.1099/13500872-140-8-1869

Li, J., Derbyshire, D. J., Promdonkoy, B., & Ellar, D. J. (2001). Structural implications for the transformation of the Bacillus thuringiensis delta-endotoxins from water-soluble to membrane-inserted forms. Biochemical Society Transactions, 29(4), 571-577. https://doi.org/10.1042/bst0290571

Li, J., Koni, P. A., & Ellar, D. J. (1996). Structure of the mosquitocidal delta-endotoxin CytB from Bacillus thuringiensis sp. kyushuensis and implications for membrane pore formation. Journal of Molecular Biology, 257(1), 129-152. https://doi.org/10.1006/jmbi.1996.0152

Li, J. D., Carroll, J., & Ellar, D. J. (1991). Crystal structure of insecticidal delta-endotoxin from Bacillus thuringiensis at 2.5 Å resolution. Nature, 353(6347), 815-821. https://doi.org/10.1038/353815a0

Maddrell, S. H., Overton, J. A., Ellar, D. J., & Knowles, B. H. (1989). Action of activated 27,000 Mr toxin from Bacillus thuringiensis var. israelensis on Malpighian tubules of the insect, Rhodnius prolixus. Journal of Cell Science, 94(3), 601-608. https://doi.org/10.1242/jcs.94.3.601

Manasherob, R., Zaritsky, A., Metzler, Y., Ben-Dov, E., Itsko, M., & Fishov, I. (2003). Compaction of the Escherichia coli nucleoid caused by Cyt1Aa. Microbiology, 149(12), 3553-3564. https://doi.org/10.1099/mic.0.26271-0

Manceva, S. D., Pusztai-Carey, M., Russo, P. S., & Butko, P. (2005). A detergent-like mechanism of action of the cytolytic toxin Cyt1A from Bacillus thuringiensis var. israelensis. Biochemistry, 44(2), 589-597. https://doi.org/10.1021/bi048493y

Onofre, J., Pacheco, S., Torres-Quintero, M. C., Gill, S. S., Soberon, M., & Bravo, A. (2020). The Cyt1Aa toxin from Bacillus thuringiensis inserts into target membranes via different mechanisms in insects, red blood cells, and lipid liposomes. The Journal of Biological Chemistry, 295(28), 9606-9617. https://doi.org/10.1074/jbc.RA120.013869

Pigott, C. R., & Ellar, D. J. (2007). Role of receptors in Bacillus thuringiensis crystal toxin activity.

Microbiology and Molecular Biology Reviews, 71(2), 255-281. https://doi.org/10.1128/MMBR.00034-06

Promdonkoy, B., Chewawiwat, N., Tanapongpipat, S., Luxananil, P., & Panyim, S. (2003). Cloning and characterization of a cytolytic and mosquito larvicidal delta-endotoxin from Bacillus thuringiensis subsp. darmstadiensis. Current Microbiology, 46(2), 94-98. https://doi.org/10.1007/s00284-002-3823-5

Promdonkoy, B., & Ellar, D. J. (2000). Membrane pore architecture of a cytolytic toxin from Bacillus thuringiensis. Biochemical Journal, 350(Pt 1), 275-282.

Promdonkoy, B., & Ellar, D. J. (2005). Structure-function relationships of a membrane pore forming toxin revealed by reversion mutagenesis. Molecular Membrane Biology, 22(4), 327-337. https://doi.org/10.1080/09687860500166192

Sazhenskiy, V., Zaritsky, A., & Itsko, M. (2010). Expression in Escherichia coli of the native cyt1Aa from Bacillus thuringiensis subsp. israelensis. Applied and Environmental Microbiology, 76(10), 3409-3411. https://doi.org/10.1128/AEM.03068-09

Schnepf, E., Crickmore, N., Van Rie, J., Lereclus, D., Baum, J., Feitelson, J., Zeigler, D. R., & Dean, D. H. (1998). Bacillus thuringiensis and its pesticidal crystal proteins. Microbiology and Molecular Biology Reviews, 62(3), 775-806. https://doi.org/10.1128/MMBR.62.3.775-806.1998

Thammachat, S., Pathaichindachote, W., Krittanai, C., & Promdonkoy, B. (2008). Amino acids at N- and C-termini are required for the efficient production and folding of a cytolytic delta-endotoxin from Bacillus thuringiensis. BMB Reports, 41(11), 820-825. https://doi.org/10.5483/bmbrep.2008.41.11.820

Tharad, S., Iturri, J., Moreno-Cencerrado, A., Mittendorfer, M., Promdonkoy, B., Krittanai, C., & Toca-Herrera, J. L. (2015). Effect of the concentration of cytolytic protein Cyt2Aa2 on the binding mechanism on lipid bilayers studied by QCM-D and AFM. Langmuir, 31(38), 10477-10483. https://doi.org/10.1021/acs.langmuir.5b02849

Thomas, W. E., & Ellar, D. J. (1983). Mechanism of action of Bacillus thuringiensis var israelensis insecticidal delta-endotoxin. FEBS Letters, 154(2), 362-368. https://doi.org/10.1016/0014-5793(83)80183-5

Visick, J. E., & Whiteley, H. R. (1991). Effect of a 20-kilodalton protein from Bacillus thuringiensis subsp. israelensis on production of the CytA protein by Escherichia coli. J Bacteriol, 173(5), 1748-1756. https://doi.org/10.1128/jb.173.5.1748-1756.1991