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Probing Heteromultivalent Protein-Glycosphingolipid Interactions using Native Mass Spectrometry and Nanodiscs

机译:使用天然质谱和纳米锰探测异组维生素蛋白 - 糖磷脂相互作用

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摘要

Interactions between glycosphingolipids (GSLs) on the surfaces of cells and glycan-binding proteins (GBPs) mediate a wide variety of essential and pathological processes. Despite the biological importance of these interactions, the GSL ligands of most GBPs remain to be identified and the mechanisms controlling recognition of GSLs are incompletely understood. Recently, it was suggested that, when present together with high affinity ligands, low affinity GSL ligands can contribute significantly to the binding of GBPs with multiple binding sites through a process called heteromultivalent binding. Here, with goal of directly establishing the existence of heteromultivalent GSL interactions and elucidating the mechanism underlying their formation, we investigated cholera toxin B subunit homopentamer (CTB5) binding to ganglioside mixtures in model membranes (nanodiscs) using native mass spectrometry (MS) and competitive ligand binding. Electrospray ionization (ESI)-MS analysis revealed that the presence of the high affinity ligand GM1 (at substoichiometric amounts relative to binding sites) in the nanodisc promotes GD1b binding to CTB5; no GD1b binding was detected in the absence of GM1. No direct ESI-MS evidence of CTB 5 binding to the other five gangliosides tested, alone or present together with GM1 in the nanodiscs, was observed. Affinity measurements, carried out using the proxy ligand ESI-MS binding assay, confirmed that GD1b binding to CTB5 is dramatically enhanced (>1000-times higher affinity compared to the GD1b oligosaccharide affinity) when present with GM1. NDs containing GM1 and GM2, GD1a, or GT1b also exhibited enhanced CTB5 binding, however, the effect was smaller. The results of molecular dynamics simulations performed on ganglioside-containing nanodiscs suggest that the participation of low affinity ligands in heteromultivalent binding with GM1 may be regulated by the positions of the internal Gal-linked Neu5Ac residues of the gangliosides relative to the membrane surface.
机译:糖磷脂(GSL)在细胞表面和聚糖结合蛋白(GBPS)之间的相互作用介导各种必要和病理过程。尽管这些相互作用的生物学意义,但大多数GBP的GSL配体仍有待鉴定,并且控制控制GSL的机制被不完全理解。最近,提出,当与高亲和力配体一起存在时,低亲和力GS1配体可以通过称为异载体结合的方法对Gbps与多个结合位点的结合显着贡献。这里,目的,目的是直接建立异载体GSL相互作用并阐明其形成的机制,我们研究了使用天然质谱(MS)和竞争力的模型膜(NANODISC)中的霍乱毒素混合物与神经节苷脂混合物结合的霍乱毒素。配体结合。电喷雾电离(ESI) - 分析显示,纳米频义中的高亲和力配体Gm1(相对于结合位点的含量相对于结合位点)的存在促进了Gd1b与CTB5结合;在没有GM1的情况下检测到GD1B结合。没有直接esi-MS证据表明CTB 5与在纳米DISC中单独或与GM1一起测试的其他五个神经节苷脂的结合。使用Proxy配体ESI-MS结合测定进行的亲和测量,证实GD1B与CTB5结合的GD1B与GM1存在时显着增强(与GD1B寡糖亲和力相比的亲和力较高)。 NDS包含GM1和GM2,GD1A或GT1B也表现出增强的CTB5结合,然而,效果较小。对含神经节苷脂的纳米DISC进行的分子动力学模拟结果表明,低亲和力配体在与GM1中的异载结合中的参与可以通过神经神经节和膜表面的内部GAL连接的NU5AC残基的位置调节。

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