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Protein Folding Determinants: Structural Features Determining Alternative Disulfide Pairing in α- and χ/λ-Conotoxins

机译:蛋白质折叠决定簇:决定α-和χ/λ-Conotoxins中二硫键替代的结构特征

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摘要

α-Conotoxins isolated from Conus venoms contain 11–19 residues and preferentially fold into the globular conformation that possesses a specific disulfide pairing pattern (C1–3, C2–4). We and others isolated a new family of χ-conotoxins (also called λ conotoxins) with the conserved cysteine framework of α-conotoxins but with alternative disulfide pairing (C1–4, C2–3) resulting in the ribbon conformation. In both families, disulfide pairing and hence folding are important for their biological potency. By comparing the structural differences, we identified potential structural determinants responsible for the folding tendencies of these conotoxins. We examined the role of conserved proline in the first intercysteine loop and the conserved C-terminal amide on folding patterns of synthetic analogues of ImI conotoxin by comparing the isoforms with the regiospecifically synthesized conformers. Deamidation at the C-terminus and substitution of proline in the first intercysteine loop switch the folding pattern from the globular form of α-conotoxins to the ribbon form of χ/λ-conotoxins. The findings are corroborated by reciprocal folding of CMrVIA χ/λ-conotoxins. Substitution of Lys-6 from the first intercysteine loop of CMrVIA conotoxin with proline, as well as the inclusion of an amidated C-terminal shifted the folding preference of CMrVIA conotoxin from its native ribbon conformation toward the globular conformation. Binding assays of ImI conotoxin analogues with Aplysia and Bulinus acetylcholine binding protein indicate that both these substitutions and their consequent conformational change substantially impact the binding affinity of ImI conotoxin. These results strongly indicate that the first intercysteine loop proline and C-terminal amidation act as conformational switches in α- and χ/λ-conotoxins.
机译:从圆锥蛇毒中分离出的α-芋螺毒素含有11-19个残基,并优先折叠成具有特定二硫键配对模式(C1-3,C2-4)的球形构象。我们和其他人分离了一个新的χ-芋螺毒素家族(也称为λ芋螺毒素),具有保守的半胱氨酸α-芋螺毒素框架,但具有二硫键配对(C1-4,C2-3),从而形成了带状构象。在两个家族中,二硫键配对以及因此折叠对于它们的生物学效力都是重要的。通过比较结构差异,我们确定了导致这些芋螺毒素折叠趋势的潜在结构决定因素。我们通过比较同工型与区域特异性合成的构象异构体,检查了脯氨酸在第一个半胱氨酸间环中的作用和保守的C末端酰胺对ImI毒素的合成类似物折叠模式的作用。 C末端的脱酰胺作用和脯氨酸在第一个半胱氨酸环中的取代将折叠模式从球状形式的α-芋螺毒素转变为带状的χ/λ-芋螺毒素。 CMrVIAχ/λ-芋螺毒素的相互折叠证实了这一发现。从CMrVIA芋螺毒素的第一个半胱氨酸环上用脯氨酸取代Lys-6,以及包含酰胺化的C端,将CMrVIA芋螺毒素的折叠偏好从其天然的带状构象转移到球状构象。 ImI毒素的类似物与Aplysia和Bulinus乙酰胆碱结合蛋白的结合试验表明,这些取代及其随之而来的构象变化都实质上影响了ImI毒素的结合亲和力。这些结果强烈表明,第一半胱氨酸环脯氨酸和C-末端酰胺化作用是α-和χ/λ-芋螺毒素中的构象转换。

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