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1.
FEBS J ; 290(10): 2692-2705, 2023 05.
Artigo em Inglês | MEDLINE | ID: mdl-36560841

RESUMO

Pore forming toxins rely on oligomerization for membrane insertion to kill their targets. Bacillus thuringiensis produces insecticidal Cry-proteins composed of three domains that form pores that kill the insect larvae. Domain I is involved in oligomerization and membrane insertion, whereas Domains II and III participate in receptor binding and specificity. However, the structural changes involved in membrane insertion of these proteins remain unsolved. The most widely accepted model for membrane insertion, the 'umbrella model', proposed that the α-4/α-5 hairpin of Domain I swings away and is inserted into the membrane. To determine the topology of Cry1Ab in the membrane, disulfide bonds linking α-helices of Domain I were introduced to restrict their movement. Disulfide bonds between helices α-2/α-3 or α-3/α-4 lost oligomerization and toxicity, indicating that movement of these helices is needed for insecticidal activity. By contrast, disulfide bonds linking helices α-5/α-6 did not affect toxicity, which contradicts the 'umbrella model'. Additionally, Föster resonance energy transfer closest approach analyses measuring distances of different points in the toxin to the membrane plane and collisional quenching assays analysing the protection of specific fluorescent-labeled residues to the soluble potassium iodide quencher in the membrane inserted state were performed. Overall, the data show that Domain I from Cry1Ab may undergo a major conformational change during its membrane insertion, where the N-terminal region (helices α-1 to α-4) participates in oligomerization and toxicity, probably forming an extended helix. These data break a paradigm, showing a new 'folding white-cane model', which better explains the structural changes of Cry toxins during insertion into the membrane.


Assuntos
Bacillus thuringiensis , Inseticidas , Animais , Inseticidas/toxicidade , Bacillus thuringiensis/genética , Bacillus thuringiensis/química , Bacillus thuringiensis/metabolismo , Proteínas de Bactérias/metabolismo , Endotoxinas/química , Proteínas Hemolisinas/metabolismo , Dissulfetos/metabolismo , Larva/metabolismo
2.
Toxins (Basel) ; 12(10)2020 10 08.
Artigo em Inglês | MEDLINE | ID: mdl-33049917

RESUMO

Cry proteins produced by Bacillus thuringiensis are pore-forming toxins that disrupt the membrane integrity of insect midgut cells. The structure of such pore is unknown, but it has been shown that domain I is responsible for oligomerization, membrane insertion and pore formation activity. Specifically, it was proposed that some N-terminal α-helices are lost, leading to conformational changes that trigger oligomerization. We designed a series of mutants to further analyze the molecular rearrangements at the N-terminal region of Cry1Ab toxin that lead to oligomer assembly. For this purpose, we introduced Cys residues at specific positions within α-helices of domain I for their specific labeling with extrinsic fluorophores to perform Föster resonance energy transfer analysis to fluorescent labeled Lys residues located in Domains II-III, or for disulfide bridges formation to restrict mobility of conformational changes. Our data support that helix α-1 of domain I is cleaved out and swings away from the toxin core upon binding with Manduca sexta brush border membrane vesicles. That movement of helix α-2b is also required for the conformational changes involved in oligomerization. These observations are consistent with a model proposing that helices α-2b and α-3 form an extended helix α-3 necessary for oligomer assembly of Cry toxins.


Assuntos
Bacillus cereus/metabolismo , Toxinas de Bacillus thuringiensis/farmacologia , Endotoxinas/farmacologia , Proteínas Hemolisinas/farmacologia , Manduca/efeitos dos fármacos , Controle Biológico de Vetores , Animais , Bacillus cereus/genética , Toxinas de Bacillus thuringiensis/química , Toxinas de Bacillus thuringiensis/genética , Toxinas de Bacillus thuringiensis/metabolismo , Endotoxinas/química , Endotoxinas/genética , Endotoxinas/metabolismo , Proteínas Hemolisinas/química , Proteínas Hemolisinas/genética , Proteínas Hemolisinas/metabolismo , Manduca/metabolismo , Microvilosidades/efeitos dos fármacos , Microvilosidades/metabolismo , Mutação , Conformação Proteica em alfa-Hélice , Multimerização Proteica , Relação Estrutura-Atividade
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