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Understanding How Noncatalytic Carbohydrate Binding Modules Can Display Specificity for Xyloglucan

机译:了解非催化碳水化合物结合模块如何显示木葡聚糖的特异性

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摘要

Plant biomass is central to the carbon cycle and to environmentally sustainable industries exemplified by the biofuel sector. Plant cell wall degrading enzymes generally contain noncatalytic carbohydrate binding modules (CBMs) that fulfil a targeting function, which enhances catalysis. CBMs that bind β-glucan chains often display broad specificity recognizing β1,4-glucans (cellulose), β1,3-β1,4-mixed linked glucans and xyloglucan, a β1,4-glucan decorated with α1,6-xylose residues, by targeting structures common to the three polysaccharides. Thus, CBMs that recognize xyloglucan target the β1,4-glucan backbone and only accommodate the xylose decorations. Here we show that two closely related CBMs, CBM65A and CBM65B, derived from EcCel5A, a Eubacterium cellulosolvens endoglucanase, bind to a range of β-glucans but, uniquely, display significant preference for xyloglucan. The structures of the two CBMs reveal a β-sandwich fold. The ligand binding site comprises the β-sheet that forms the concave surface of the proteins. Binding to the backbone chains of β-glucans is mediated primarily by five aromatic residues that also make hydrophobic interactions with the xylose side chains of xyloglucan, conferring the distinctive specificity of the CBMs for the decorated polysaccharide. Significantly, and in contrast to other CBMs that recognize β-glucans, CBM65A utilizes different polar residues to bind cellulose and mixed linked glucans. Thus, Gln106 is central to cellulose recognition, but is not required for binding to mixed linked glucans. This report reveals the mechanism by which β-glucan-specific CBMs can distinguish between linear and mixed linked glucans, and show how these CBMs can exploit an extensive hydrophobic platform to target the side chains of decorated β-glucans.
机译:植物生物质对于碳循环以及生物燃料行业所代表的环境可持续产业至关重要。植物细胞壁降解酶通常包含非靶向碳水化合物结合模块(CBM),可实现靶向功能,从而增强催化作用。结合β-葡聚糖链的CBM通常表现出广泛的特异性,可识别β1,4-葡聚糖(纤维素),β1,3-β1,4-混合连接的葡聚糖和木葡聚糖(一种由α1,6-木糖残基修饰的β1,4-葡聚糖),通过靶向三种多糖共有的结构。因此,识别木葡聚糖的CBM靶向β1,4-葡聚糖主链并且仅容纳木糖装饰。在这里,我们显示了两个紧密相关的CBM,即源自EcCel5A(一种真杆菌纤维素内切葡聚糖酶)的CBM65A和CBM65B,与一系列β-葡聚糖结合,但唯一地表现出对木葡聚糖的显着偏好。两个煤层气的结构揭示了β-三明治折叠。配体结合位点包含形成蛋白质凹面的β-折叠。与β-葡聚糖的主链的结合主要由五个芳族残基介导,所述五个芳族残基也与木葡聚糖的木糖侧链发生疏水相互作用,从而赋予了CBM对修饰的多糖独特的特异性。与识别β-葡聚糖的其他CBM明显不同,CBM65A利用不同的极性残基结合纤维素和混合连接的葡聚糖。因此,Gln 106 对纤维素的识别至关重要,但对于与混合连接的葡聚糖结合并不是必需的。该报告揭示了β-葡聚糖特异性CBM可以区分线性和混合连接的葡聚糖的机制,并展示了这些CBM如何利用广泛的疏水平台靶向修饰的β-葡聚糖的侧链。

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