Virtual screening and library enumeration of new hydroxycinnamates based antioxidant compounds: A complete framework

被引:28
作者
Bhutto, Jameel Ahmed [1 ]
Mubashir, Tayyaba [2 ]
Tahir, Mudassir Hussain [3 ]
Hafsa [4 ]
Ahmad, Farooq [5 ]
Sayed, Shaban R. M. [6 ]
El-ansary, Hosam O. [7 ]
Ishfaq, Muhammad [1 ]
机构
[1] Huanggang Normal Univ, Coll Comp Sci, Huanggang 438000, Peoples R China
[2] Univ Sargodha, Inst Chem, Sargodha 40100, Pakistan
[3] Hokkaido Univ, Res Fac Agr, Field Sci Ctr Northern Biosphere, Sapporo, Hokkaido 0608589, Japan
[4] Super Univ, Dept Biol Sci, Lahore 54800, Pakistan
[5] Xinjiang Univ, Coll Chem, State Key Lab Chem & Utilizat Carbon Based Energy, Urumqi, Peoples R China
[6] King Saud Univ, Coll Sci, Dept Bot & Microbiol, POB 2455, Riyadh 11451, Saudi Arabia
[7] King Saud Univ, Coll Food & Agr Sci, Plant Prod Dept, POB 2455, Riyadh 11451, Saudi Arabia
关键词
Machine learning; Antioxidants; Cheminformatics; Inverse design; ORGANIC SOLAR-CELLS; SINGLE-CRYSTAL XRD; DYES; DERIVATIVES; ACCEPTORS; QSAR;
D O I
10.1016/j.jscs.2023.101670
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Designing of molecules for drugs is important topic from many decades. The search of new drugs is very hard, and it is expensive process. Computer assisted framework can provide the fastest way to design and screen drug-like compounds. In present work, a multidimensional approach is introduced for the designing and screening of antioxidant compounds. Antioxidants play a crucial role in ensuring that the body's oxidizing and reducing species are kept in the proper balance, minimizing oxidative stress. Machine learning models are used to predict antioxidant activity. Three hydroxycinnamates are selected as standard antioxidants. Similar compounds are searched from ChEMBL database using chemical structural similarity method. The libraries of new compounds are generated using evolutionary method. New compounds are also designed using automatic decomposition and construction building blocks. The antioxidant activity of all designed and searched compounds is predicted using machine learning models. The chemical space of searched and generated compounds is envisioned using t-distributed stochastic neighbor embedding (t-SNE) method. Best compounds are shortlisted, and their synthetic accessibility is predicted to compounds is also studied using fingerprints and heatmap.
引用
收藏
页数:15
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