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Ultrastable cellulosome-adhesion complex tightens under load

机译:超稳定的纤维素脂质体-复合物在负荷下收紧

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Challenging environments have guided nature in the development of ultrastable protein complexes. Specialized bacteria produce discrete multi-component protein networks called cellulosomes to effectively digest lignocellulosic biomass. While network assembly is enabled by protein interactions with commonplace affinities, we show that certain cellulosomal ligand-receptor interactions exhibit extreme resistance to applied force. Here, we characterize the ligand-receptor complex responsible for substrate anchoring in the Ruminococcus flavefaciens cellulosome using single-molecule force spectroscopy and steered molecular dynamics simulations. The complex withstands forces of 600-750 pN, making it one of the strongest bimolecular interactions reported, equivalent to half the mechanical strength of a covalent bond. Our findings demonstrate force activation and inter-domain stabilization of the complex, and suggest that certain network components serve as mechanical effectors for maintaining network integrity. This detailed understanding of cellulosomal network components may help in the development of biocatalysts for production of fuels and chemicals from renewable plant-derived biomass.
机译:具有挑战性的环境已指导了超稳定蛋白质复合物的开发。专门细菌产生离散的多组分蛋白质网络,称为纤维素体,以有效消化木质纤维素生物质。虽然通过具有常见亲和力的蛋白质相互作用使网络装配成为可能,但我们表明某些纤维素配体-受体相互作用对施加的力表现出极大的抵抗力。在这里,我们使用单分子力谱和分子动力学模拟来表征配体-受体复合物,其负责将基质锚定在黄褐球菌纤维素体中。该复合物可承受600-750 pN的力,使其成为所报道的最强的双分子相互作用之一,相当于共价键机械强度的一半。我们的发现证明了复合物的作用力激活和域间稳定作用,并表明某些网络组件充当维持网络完整性的机械效应器。对纤维素网络组件的详细了解可能有助于开发生物催化剂,以从可再生植物衍生的生物质生产燃料和化学品。

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