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Binding Cooperativity Matters: A GM1-Like Ganglioside-Cholera Toxin B Subunit Binding Study Using a Nanocube-Based Lipid Bilayer Array

机译:绑定协同性的问题:使用基于纳米立方体的脂质双层阵列的GM1样神经节苷脂-霍乱毒素B亚基结合研究。

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摘要

Protein-glycan recognition is often mediated by multivalent binding. These multivalent bindings can be further complicated by cooperative interactions between glycans and individual glycan binding subunits. Here we have demonstrated a nanocube-based lipid bilayer array capable of quantitatively elucidating binding dissociation constants, maximum binding capacity, and binding cooperativity in a high-throughput format. Taking cholera toxin B subunit (CTB) as a model cooperativity system, we studied both GM1 and GM1-like gangliosides binding to CTB. We confirmed the previously observed CTB-GM1 positive cooperativity. Surprisingly, we demonstrated fucosyl-GM1 has approximately 7 times higher CTB binding capacity than GM1. In order to explain this phenomenon, we hypothesized that the reduced binding cooperativity of fucosyl-GM1 caused the increased binding capacity. This was unintuitive, as GM1 exhibited higher binding avidity (16 times lower dissociation constant). We confirmed the hypothesis using a theoretical stepwise binding model of CTB. Moreover, by taking a mixture of fucosyl-GM1 and GM2, we observed the mild binding avidity fucosyl-GM1 activated GM2 receptors enhancing the binding capacity of the lipid bilayer surface. This was unexpected as GM2 receptors have negligible binding avidity in pure GM2 bilayers. These unexpected discoveries demonstrate the importance of binding cooperativity in multivalent binding mechanisms. Thus, quantitative analysis of multivalent protein-glycan interactions in heterogeneous glycan systems is of critical importance. Our user-friendly, robust, and high-throughput nanocube-based lipid bilayer array offers an attractive method for dissecting these complex mechanisms.
机译:蛋白质-聚糖识别通常由多价结合介导。聚糖与单个聚糖结合亚基之间的协同相互作用可使这些多价结合进一步复杂化。在这里,我们已经证明了一种基于纳米立方体的脂质双层阵列,能够以高通量形式定量阐明结合解离常数,最大结合能力和结合协同性。以霍乱毒素B亚基(CTB)为模型协同系统,我们研究了与CTB结合的GM1和GM1类神经节苷脂。我们确认了先前观察到的CTB-GM1阳性协同作用。令人惊讶地,我们证明岩藻糖基-GM1的CTB结合能力比GM1高约7倍。为了解释这种现象,我们假设岩藻糖基-GM1的结合协同作用降低导致结合能力增加。这是不直观的,因为GM1表现出较高的结合亲和力(较低的解离常数16倍)。我们使用CTB的理论逐步绑定模型证实了这一假设。此外,通过采取岩藻糖基-GM1和GM2的混合物,我们观察到轻度结合亲和力岩藻糖基-GM1激活的GM2受体增强了脂质双层表面的结合能力。这是出乎意料的,因为GM2受体在纯GM2双层中的结合亲合力可忽略不计。这些意外的发现证明了在多价结合机制中结合协同作用的重要性。因此,定量分析异质聚糖系统中的多价蛋白质-聚糖相互作用至关重要。我们的用户友好,强大且高通量的基于纳米立方体的脂质双层阵列为剖析这些复杂机制提供了一种有吸引力的方法。

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