Shallangwa Gideon A, Mahmud Aliyu W, Uzairu Adamu, Ibrahim Muhmmad T
Chemistry Department, Ahmadu Bello University, Zaria, Nigeria.
Department of Applied Chemistry, Kaduna Polytechnic, P.M.B 2021, Kaduna, Nigeria.
J Taibah Univ Med Sci. 2023 Nov 23;19(2):233-247. doi: 10.1016/j.jtumed.2023.11.006. eCollection 2024 Apr.
This work was designed to study 2,4-disubstituted 6-fluoroquinolines as antiplasmodial agents by using techniques, to aid in the design of novel analogs with high potency against malaria and high inhibition of translation elongation factor 2 (eEF2), a novel drug target.
Quantitative structure-activity relationships (QSAR) of 2,4-disubstituted 6-fluoroquinolines were studied with the genetic function approximation technique in Material Studio software. The 3D structure of eEF2 was modeled in the SWISS-MODEL workspace through homology modeling. A molecular docking study of the modeled eEF2 and 2,4-disubstituted 6-fluoroquinolines was conducted with Autodock Vina in Pyrx software. Furthermore, the pharmacokinetic properties of selected compounds were investigated.
A robust, reliable and predictive QSAR model was developed that related the chemical structures of 2,4-disubstituted 6-fluoroquinolines to their antiplasmodium activities. The model had an internal squared correlation coefficient R of 0.921, adjusted squared correlation coefficient R of 0.878, leave-one-out cross-validation coefficient Q of 0.801 and predictive squared correlation coefficient R of 0.901. The antiplasmodium activity of 6-fluoroquinolines was found to depend on the n5Ring, GGI9, TDB7u, TDB8u and RDF75i physicochemical properties: n5Ring, TDB8u and RDF75i were positively associated, whereas GGI9 and TDB7u were negatively associated, with the antiplasmodium activity of the compounds. Stable complexes formed between the compounds and modeled eEF2, with binding affinity ranging from -8.200 to -10.700 kcal/mol. Compounds 5, 11, 16, 22 and 24 had better binding affinities than quinoline-4-carboxamide (DDD107498), as well as good pharmacokinetic properties, and therefore may be better inhibitors of this novel target.
QSAR and docking studies provided insight into designing novel 2,4-disubstituted 6-fluoroquinolines with high antiplasmodial activity and good structural properties for inhibiting a novel antimalarial drug target.
本研究旨在通过相关技术研究2,4 - 二取代6 - 氟喹啉作为抗疟原虫药物,以辅助设计对疟疾具有高效力且对新型药物靶点翻译延伸因子2(eEF2)具有高抑制作用的新型类似物。
使用Material Studio软件中的遗传函数近似技术研究2,4 - 二取代6 - 氟喹啉的定量构效关系(QSAR)。通过同源建模在SWISS - MODEL工作区中对eEF2的三维结构进行建模。使用Pyrx软件中的Autodock Vina对建模的eEF2和2,4 - 二取代6 - 氟喹啉进行分子对接研究。此外,还研究了所选化合物的药代动力学性质。
建立了一个稳健、可靠且具有预测性的QSAR模型,该模型将2,4 - 二取代6 - 氟喹啉的化学结构与其抗疟原虫活性相关联。该模型的内部平方相关系数R为0.921,调整后的平方相关系数R为0.878,留一法交叉验证系数Q为0.801,预测平方相关系数R为0.901。发现6 - 氟喹啉的抗疟原虫活性取决于n5Ring、GGI9、TDB7u、TDB8u和RDF75i物理化学性质:n5Ring、TDB8u和RDF75i与化合物的抗疟原虫活性呈正相关,而GGI9和TDB7u与化合物的抗疟原虫活性呈负相关。化合物与建模的eEF2形成稳定的复合物,结合亲和力范围为 - 8.200至 - 10.700千卡/摩尔。化合物5、11、16、22和24具有比喹啉 - 4 - 甲酰胺(DDD107498)更好的结合亲和力以及良好的药代动力学性质,因此可能是该新型靶点的更好抑制剂。
QSAR和对接研究为设计具有高抗疟原虫活性和良好结构性质以抑制新型抗疟药物靶点的新型2,4 - 二取代6 - 氟喹啉提供了见解。