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首页> 外文期刊>MBio >An Intermolecular π-Stacking Interaction Drives Conformational Changes Necessary to β-Barrel Formation in a Pore-Forming Toxin
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An Intermolecular π-Stacking Interaction Drives Conformational Changes Necessary to β-Barrel Formation in a Pore-Forming Toxin

机译:分子间π-堆积相互作用驱动形成孔的毒素中β-桶形成所需的构象变化。

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A unique feature of the CDC/MACPF/SNTX (cholesterol-dependent cytolysin/membrane attack complex perforin/stonefish toxin) superfamily of pore-forming toxins is that the β-strands that comprise the β-barrel pore are derived from a pair of α-helical bundles. These studies reveal the molecular basis by which the formation of intermolecular interactions within the prepore complex drive the disruption of intramolecular interactions within each monomer of the prepore to trigger the α-helical–to–β-strand transition and formation of the β-barrel pore. ABSTRACT The crystal structures of the soluble monomers of the pore-forming cholesterol-dependent cytolysins (CDCs) contain two α-helical bundles that flank a twisted core β-sheet. This protein fold is the hallmark of the CDCs, as well as of the membrane attack complex/perforin immune defense proteins and the stonefish toxins. To form the β-barrel pore, a core β-sheet is flattened to align the membrane-spanning β-hairpins. Concomitantly with this conformational change, the two α-helical bundles that flank the core β-sheet break their restraining contacts and refold into two membrane-spanning β-hairpins of the β-barrel pore. The studies herein show that in the monomer structure of the archetype CDC perfringolysin O (PFO), a conserved Met-Met-Phe triad simultaneously contributes to maintaining the twist in this core β-sheet, as well as restricting the α-helical–to–β-strand transition necessary to form one of two membrane-spanning β-hairpins. A previously identified intermolecular π-stacking interaction is now shown to disrupt the interactions mediated by this conserved triad. This is required to establish the subsequent intermolecular electrostatic interaction, which has previously been shown to drive the final conformational changes necessary to form the β-barrel pore. Hence, these studies show that the intermolecular π-stacking and electrostatic interactions work in tandem to flatten the core β-sheet and initiate the α-helical–to–β-strand transitions to form the β-barrel pore.
机译:成孔毒素CDC / MACPF / SNTX(胆固醇依赖性细胞溶素/膜攻击复合物穿孔素/石鱼毒素)超家族的独特之处在于,构成β-桶孔的β链衍生自一对α -螺旋束。这些研究揭示了分子基础,通过该分子基础,前孔复合物中的分子间相互作用的形成驱使前孔中每个单体的分子内相互作用的破坏,从而触发α-螺旋向β-链的转变以及β-桶孔的形成。摘要成孔的胆固醇依赖性溶血素(CDC)的可溶性单体的晶体结构包含两个α-螺旋束,位于螺旋核心β-折叠的侧面。这种蛋白质的折叠是CDC,膜攻击复合物/穿孔素免疫防御蛋白和石鱼毒素的标志。为了形成β-桶状孔,将β-核心片弄平以对齐跨膜的β-发夹。伴随这种构象变化,位于核心β-折叠侧面的两个α-螺旋束破坏了它们的约束接触,并重新折叠成β-桶状孔的两个跨膜的β-发夹。本文的研究表明,在原型CDC穿孔球菌溶血素O(PFO)的单体结构中,保守的Met-Met-Phe三联体同时有助于维持该核心β-折叠的扭曲,并限制了α-螺旋- -β链过渡是形成两个跨膜β-发夹之一所必需的。现在显示出先前确定的分子间π-堆叠相互作用破坏了这个保守三联体介导的相互作用。这是建立随后的分子间静电相互作用所必需的,先前已证明该分子间静电相互作用会驱动形成β-桶孔所需的最终构象变化。因此,这些研究表明,分子间的π堆积和静电相互作用共同作用,使核心β-折叠变平,并引发了从α螺旋到β链的过渡,从而形成了β桶孔。

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