ASBench: Benchmarking sets for allosteric discovery

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Abstract

Allostery allows for the fine-tuning of protein function. Targeting allosteric sites is gaining increasing recognition as a novel strategy in drug design. The key challenge in the discovery of allosteric sites has strongly motivated the development of computational methods and thus high-quality, publicly accessible standard data have become indispensable. Here, we report benchmarking data for experimentally determined allosteric sites through a complex process, including a 'Core set' with 235 unique allosteric sites and a 'Core-Diversity set' with 147 structurally diverse allosteric sites. These benchmarking sets can be exploited to develop efficient computational methods to predict unknown allosteric sites in proteins and reveal unique allosteric ligand-protein interactions to guide allosteric drug design.

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Huang, W., Wang, G., Shen, Q., Liu, X., Lu, S., Geng, L., … Zhang, J. (2015). ASBench: Benchmarking sets for allosteric discovery. Bioinformatics, 31(15), 2598–2600. https://doi.org/10.1093/bioinformatics/btv169

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