^ abMarcus Mueller, Ulla Grauschopf, Timm Maier, Rudi Glockshuber & Nenad Ban (2009). “The structure of a cytolytic alpha-helical toxin pore reveals its assembly mechanism”. Nature459 (7247): 726–730. doi:10.1038/nature08026. PMID19421192.
^Langzhou Song, Michael R. Hobaugh, Christopher Shustak, Stephen Cheley, Hagan Bayley, J. Eric Gouaux (1996). “Structure of staphylococcal α-hemolysin, a heptameric transmembrane pore”. Science274 (5294): 1859–1866. doi:10.1126/science.274.5294.1859. PMID8943190.
^Valérie Guillet, Pierre Roblin, Sandra Werner, Manuela Coraiola, Gianfranco Menestrina, Henri Monteil, Gilles Prévost & Lionel Mourey (2004). “Crystal structure of leucotoxin S component: new insight into the Staphylococcal beta-barrel pore-forming toxin”. J. Biol. Chem.279 (39): 41028–41037. doi:10.1074/jbc.M406904200. PMID15262988.
^Parker MW, Buckley JT, Postma JP, Tucker AD, Leonard K, Pattus F, Tsernoglou D (1994). “Structure of the Aeromonas toxin proaerolysin in its water-soluble and membrane-channel states”. Nature367 (6460): 292–295. doi:10.1038/367292a0. PMID7510043.
^Cole, A. R., Gibert, M., Popoff, M., Moss, D. S., Titball, R. W., & Basak, A. K. (2004). “Clostridium perfringens ε-toxin shows structural similarity to the pore-forming toxin aerolysin”. Nat. Struct. Mol. Biol.11 (8): 797–798. doi:10.1038/nsmb804.
^Thanabalu T, Porter AG (1996). “A Bacillus sphaericus gene encoding a novel type of mosquitocidal toxin of 31.8 kDa”. Gene170 (1): 85–89. doi:10.1016/0378-1119(95)00836-5. PMID8621095.
^Berry C, Crickmore N (2017). “Structural classification of insecticidal proteins - Towards an in silico characterisation of novel toxins”. J. Invertebr. Pathol.142: 16–22. doi:10.1016/j.jip.2016.07.015. PMID27480403.
^Berry C, Crickmore N (2017). “Structural classification of insecticidal proteins - Towards an in silico characterisation of novel toxins”. J. Invertebr. Pathol.142: 16–22. doi:10.1016/j.jip.2016.07.015. PMID27480403.
^Oei C, Hindley J, Berry C (1990). “An analysis of the genes encoding the 51.4- and 41.9-kDa toxins of Bacillus sphaericus 2297 by deletion mutagenesis: the construction of fusion proteins”. FEMS Microbiol. Lett.60 (3): 265–273. doi:10.1111/j.1574-6968.1990.tb03900.x. PMID2083839.
^Jones GW, Nielsen-Leroux C, Yang Y, Yuan Z, Dumas VF, Monnerat RG, Berry C (2007). “A new Cry toxin with a unique two-component dependency from Bacillus sphaericus”. FASEB J.21 (14): 4112–4120. doi:10.1096/fj.07-8913com. PMID17646596.
^Guillet V, Roblin P, Werner S, Coraiola M, Menestrina G, Monteil H, Prévost G, Mourey L (2004). “Crystal structure of leucotoxin S component: new insight into the Staphylococcal beta-barrel pore-forming toxins”. J. Biol. Chem.279 (39): 41028–41037. doi:10.1074/jbc.M406904200. PMID15262988.
^Schwartz JL, Potvin L, Coux F, Charles JF, Berry C, Humphreys MJ, Jones AF, Bernhart I, Dalla Serra M, Menestrina (2001). “Permeabilization of model lipid membranes by Bacillus sphaericus mosquitocidal binary toxin and its individual components”. J. Membr. Biol.184 (2): 171–183. doi:10.1007/s00232-001-0086-1. PMID11719853.
^Cokmus C, Davidson EW, Cooper K (1997). “Electrophysiological effects of Bacillus sphaericus binary toxin on cultured mosquito cells”. J. Invertebr. Pathol.69 (3): 197–204. doi:10.1006/jipa.1997.4660. PMID9170345.
^Narva KE, Wang NX, Herman R (2017). “Safety considerations derived from Cry34Ab1/Cry35Ab1 structure and function”. J. Invertebr. Pathol.142: 27–33. doi:10.1016/j.jip.2016.07.019. PMID27480405.
^Fujita K, Katahira J, Horiguchi Y, Sonoda N, Furuse M, Tsukita S (2000). “Clostridium perfringens enterotoxin binds to the second extracellular loop of claudin-3, a tight junction integral membrane protein”. FEBS Lett.476 (3): 258–261. doi:10.1016/S0014-5793(00)01744-0. PMID10913624.
^ abSilva-Filha MH, Nielsen-LeRoux C, Charles JF (1999). “Identification of the receptor for Bacillus sphaericus crystal toxin in the brush border membrane of the mosquito Culex pipiens (Diptera: Culicidae)”. Insect Biochem. Mol. Biol.29 (8): 711–721. doi:10.1016/S0965-1748(99)00047-8. PMID10451923.
^Ferreira LM, Romão TP, de-Melo-Neto OP, Silva-Filha MH (2010). “The orthologue to the Cpm1/Cqm1 receptor in Aedes aegypti is expressed as a midgut GPI-anchored α-glucosidase, which does not bind to the insecticidal binary toxin”. Insect Biochem. Mol. Biol.40 (8): 604–610. doi:10.1016/j.ibmb.2010.05.007. PMID20685335.
^US 6248536B1 "Bacillus thuringiensis CryET33 and CryET34 compositions and uses thereof."
^Thanabalu, T. (2000). Cloning and characterisation of a gene encoding a 100 kDa toxin from Bacillus sphaericus SSII-1 and expresson of insecticidal toxins in Caulobacter crescentus (Ph.D. thesis). National University of Singapore.
^Treiber N, Reinert DJ, Carpusca I, Aktories K, Schulz GE (2008). “Structure and mode of action of a mosquitocidal holotoxin”. J. Mol. Biol.381 (1): 150–159. doi:10.1016/j.jmb.2008.05.067. PMID18586267.
^Rossjohn J, Feil SC, McKinstry WJ, Tweten RK, Parker MW (1997). “Structure of a cholesterol-binding, thiol-activated cytolysin and a model of its membrane form”. Cell89 (5): 685–692. doi:10.1016/S0092-8674(00)80251-2. PMID9182756.
^Tilley SJ, Orlova EV, Gilbert RJ, Andrew PW, Saibil HR (2005). “Structural basis of pore formation by the bacterial toxin pneumolysin”. Cell121 (2): 247–256. doi:10.1016/j.cell.2005.02.033. PMID15851031.
^Rosado CJ, Buckle AM, Law RH, Butcher RE, Kan WT, Bird CH, Ung K, Browne KA, Baran K, Bashtannyk-Puhalovich TA, Faux NG, Wong W, Porter CJ, Pike RN, Ellisdon AM, Pearce MC, Bottomley SP, Emsley J, Smith AI, Rossjohn J, Hartland EL, Voskoboinik I, Trapani JA, Bird PI, Dunstone MA, Whisstock JC (2007). “A common fold mediates vertebrate defense and bacterial attack”. Science317 (5844): 1548–51. doi:10.1126/science.1144706. PMID17717151.
^Tschopp J, Masson D, Stanley KK (1986). “Structural/functional similarity between proteins involved in complement- and cytotoxic T-lymphocyte-mediated cytolysis”. Nature322 (6082): 831–4. doi:10.1038/322831a0. PMID2427956.
^Bruce Alberts; Alexander Johnson; Julian Lewis; Martin Raff; Keith Roberts; Peter Walter (2002). Molecular Biology of the Cell (4th ed.). Routledge. ISBN0-8153-3218-1.