Peptide Drug Design Using Alchemical Free Energy Calculation: An Application and Validation on Agonists of Ghrelin Receptor

肽 生长素 药物发现 灵活性(工程) 化学 能量(信号处理) 药品 计算生物学 计算机科学 受体 组合化学 生物系统 药理学 数学 生物化学 生物 统计
作者
Qin Zeng,Guangpeng Meng,Bingyu Zhao,Haodian Lin,Yuqing Guan,Xiaobin Qin,Yu Yuan,Yuanbo Li,Qiantao Wang
出处
期刊:Journal of Chemical Information and Modeling [American Chemical Society]
卷期号:64 (12): 4863-4876 被引量:1
标识
DOI:10.1021/acs.jcim.4c00414
摘要

With recent large-scale applications and validations, the relative binding free energy (RBFE) calculated using alchemical free energy methods has been proven to be an accurate measure to probe the binding of small-molecule drug candidates. On the other hand, given the flexibility of peptides, it is of great interest to find out whether sufficient sampling could be achieved within the typical time scale of such calculation, and a similar level of accuracy could be reached for peptide drugs. However, the systematic evaluation of such calculations on protein–peptide systems has been less reported. Most reported studies of peptides were restricted to a limited number of data points or lacking experimental support. To demonstrate the applicability of the alchemical free energy method for protein–peptide systems in a typical real-world drug discovery project, we report an application of the thermodynamic integration (TI) method to the RBFE calculation of ghrelin receptor and its peptide agonists. Along with the calculation, the synthesis and in vitro EC50 activity of relamorelin and 17 new peptide derivatives were also reported. A cost-effective criterion to determine the data collection time was proposed for peptides in the TI simulation. The average of three TI repeats yielded a mean absolute error of 0.98 kcal/mol and Pearson’s correlation coefficient (R) of 0.77 against the experimental free energy derived from the in vitro EC50 activity, showing good repeatability of the proposed method and a slightly better agreement than the results obtained from the arbitrary time frames up to 20 ns. Although it is limited by having one target and a deduced binding pose, we hope that this study can add some insights into alchemical free energy calculation of protein–peptide systems, providing theoretical assistance to the development of peptide drugs.
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