Division of Structural Glycobiology, Institute of Molecular Biomembrane and Glycobiology, Tohoku Medical and Pharmaceutical University, 4-4-1 Komatsushima, Aoba-ku, Sendai, Miyagi, 981-8558, Japan.
Kobelco Eco-Solutions Co., Ltd., 1-1-4 Murotani, Nishi-ku, Kobe, Hyogo, 651-2241, Japan.
Carbohydr Res. 2024 Feb;536:109041. doi: 10.1016/j.carres.2024.109041. Epub 2024 Jan 17.
β-Glucan is a homopolymer with a backbone of β-1,3-linked glucose residues. The solubility and biological activity of β-glucan can be influenced by the length of the backbone and the length/interval of the β-1,6 branches. Dectin-1 is crucial in innate immunity through its binding to exogenous β-glucans. However, there are few quantitative binding affinities available and there is no comprehensive comparative analysis of the binding of Dectin-1 to insoluble β-glucans. Here, we have developed a simple binding assay for the interaction between Dectin-1 lectin domain (Dectin-1 CTLD) and insoluble β-glucans. We utilized the paramylon particle as a model of insoluble β-glucans. Dectin-1 CTLD bound to paramylon (particle size 3.1 μm) was separated from unbound Dectin-1 CTLD by centrifugation using a membrane filter (pore size 0.2 μm). The protein in the filtrate was quantified by SDS-PAGE and densitometry. The amount decreased in proportion to the amount of paramylon in the mixture. A control experiment using the Dectin-1 CTLD inactive mutant W221A showed that the mutant passes through the filter without binding paramylon. These results are evidence of site-specific binding of Dectin-1 CTLD to paramylon and demonstrate that the separation of paramylon-bound/unbound Dectin-1 CTLD is achievable through centrifugation using a filter. The assay was extended to other insoluble β-glucans including curdlan. Additionally, it can be utilized in competitive inhibition experiments with soluble short-chain β-glucans such as laminarin. The assay system allows for quantitative comparison of the affinities between insoluble and soluble β-glucans and Dectin-1 CTLD, and should be useful because of its low-tech convenience.
β-葡聚糖是一种由β-1,3 连接的葡萄糖残基组成的均聚物。β-葡聚糖的溶解度和生物活性可以受到主链长度和β-1,6 分支的长度/间隔的影响。Dectin-1 通过与外源性β-葡聚糖结合在先天免疫中起着至关重要的作用。然而,可用的定量结合亲和力很少,并且没有对 Dectin-1 与不溶性β-葡聚糖结合的全面比较分析。在这里,我们开发了一种用于 Dectin-1 凝集素结构域(Dectin-1 CTLD)与不溶性β-葡聚糖相互作用的简单结合测定法。我们利用假丝酵母淀粉粒作为不溶性β-葡聚糖的模型。通过离心用膜过滤器(孔径 0.2μm)将 Dectin-1 CTLD 与假丝酵母淀粉粒(粒径 3.1μm)分离。用 SDS-PAGE 和密度计定量测定滤出液中的蛋白质。该量与混合物中假丝酵母淀粉粒的量成比例减少。使用 Dectin-1 CTLD 无活性突变体 W221A 的对照实验表明,突变体在不结合假丝酵母淀粉粒的情况下通过过滤器。这些结果证明了 Dectin-1 CTLD 与假丝酵母淀粉粒的特异性结合,并表明通过用过滤器离心可以实现假丝酵母淀粉粒结合/未结合的 Dectin-1 CTLD 的分离。该测定法扩展到其他不溶性β-葡聚糖,包括几丁质。此外,它可以与可溶性短链β-葡聚糖(如昆布多糖)一起用于竞争性抑制实验。该测定系统允许对不溶性和可溶性β-葡聚糖与 Dectin-1 CTLD 之间的亲和力进行定量比较,并且由于其技术简单,应该是有用的。