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タイトル
和文: 
英文:Quantitative Estimate Index for Early-Stage Screening of Compounds Targeting Protein-Protein Interactions 
著者
和文: 小杉 孝嗣, 大上 雅史.  
英文: Takatsugu Kosugi, Masahito Ohue.  
言語 English 
掲載誌/書名
和文: 
英文:International Journal of Molecular Sciences 
巻, 号, ページ Volume 22    Issue 20   
出版年月 2021年10月10日 
出版者
和文: 
英文:MDPI 
会議名称
和文: 
英文: 
開催地
和文: 
英文: 
公式リンク https://www.mdpi.com/1422-0067/22/20/10925
 
DOI https://doi.org/10.3390/ijms222010925
アブストラクト Drug-likeness quantification is useful for screening drug candidates. Quantitative estimates of drug-likeness (QED) are commonly used to assess quantitative drug efficacy but are not suitable for screening compounds targeting protein-protein interactions (PPIs), which have recently gained attention. Therefore, we developed a quantitative estimate index for compounds targeting PPIs (QEPPI), specifically for early-stage screening of PPI-targeting compounds. QEPPI is an extension of the QED method for PPI-targeting drugs that models physicochemical properties based on the information available for drugs/compounds, specifically those reported to act on PPIs. FDA-approved drugs and compounds in iPPI-DB, which comprise PPI inhibitors and stabilizers, were evaluated using QEPPI. The results showed that QEPPI is more suitable than QED for early screening of PPI-targeting compounds. QEPPI was also considered an extended concept of the “Rule-of-Four” (RO4), a PPI inhibitor index. We evaluated the discriminatory performance of QEPPI and RO4 for datasets of PPI-target compounds and FDA-approved drugs using F-score and other indices. The F-scores of RO4 and QEPPI were 0.451 and 0.501, respectively. QEPPI showed better performance and enabled quantification of drug-likeness for early-stage PPI drug discovery. Hence, it can be used as an initial filter to efficiently screen PPI-targeting compounds.

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