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Towards an Understanding of the Mode of Action of Human Aromatase Activity for Azoles through Quantum Chemical Descriptors-Based Regression and Structure Activity Relationship Modeling Analysis

机译:通过基于量子化学描述符的回归和结构活性关系建模分析来了解人类芳香酶对腈的作用方式

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摘要

Aromatase is an enzyme member of the cytochrome P450 superfamily coded by the CYP19A1 gene. Its main action is the conversion of androgens into estrogens, transforming androstenedione into estrone and testosterone into estradiol. This enzyme is present in several tissues and it has a key role in the maintenance of the balance of androgens and estrogens, and therefore in the regulation of the endocrine system. With regard to chemical safety and human health, azoles, which are used as agrochemicals and pharmaceuticals, are potential endocrine disruptors due to their agonist or antagonist interactions with the human aromatase enzyme. This theoretical study investigated the active agonist and antagonist properties of “chemical classes of azoles” to determine the relationships of azole interaction with CYP19A1, using stereochemical and electronic properties of the molecules through classification and multilinear regression (MLR) modeling. The antagonist activities for the same substituent on diazoles and triazoles vary with its chemical composition and its position and both heterocyclic systems require aromatic substituents. The triazoles require the spherical shape and diazoles have to be in proper proportion of the branching index and the number of ring systems for the inhibition. Considering the electronic aspects, triazole antagonist activity depends on the electrophilicity index that originates from interelectronic exchange interaction ( ) and the LUMO energy ( ), and the diazole antagonist activity originates from the penultimate orbital ( ) of diazoles. The regression models for agonist activity show that it is opposed by the static charges but favored by the delocalized charges on the diazoles and thiazoles. This study proposes that the electron penetration of azoles toward heme group decides the binding behavior and stereochemistry requirement for antagonist activity against CYP19A1 enzyme.
机译:芳香酶是由CYP19A1基因编码的细胞色素P450超家族的酶成员。其主要作用是将雄激素转化为雌激素,将雄烯二酮转化为雌酮,将睾丸酮转化为雌二醇。该酶存在于几个组织中,在维持雄激素和雌激素的平衡,从而调节内分泌系统中起关键作用。关于化学安全性和人类健康,由于其与人芳香酶的激动剂或拮抗剂相互作用,用作农药和药物的唑类是潜在的内分泌干扰物。这项理论研究使用分子的立体化学和电子特性,通过分类和多线性回归(MLR)建模,研究了“唑类化学类别”的活性激动剂和拮抗剂特性,以确定唑与CYP19A1的相互作用。二唑和三唑上相同取代基的拮抗剂活性随其化学组成和位置而变化,并且两个杂环系统均需要芳族取代基。三唑需要球形,二唑必须与支化指数和环系统数成适当比例才能被抑制。考虑到电子方面,三唑拮抗剂活性取决于源自电子间交换相互作用()和LUMO能量()的亲电指数,而二唑拮抗剂活性源自二唑的倒数第二个轨道()。激动剂活性的回归模型表明,它与静电荷相反,但对二唑和噻唑的离域电荷有利。这项研究提出,唑类对血红素基团的电子渗透决定了对CYP19A1酶的拮抗活性的结合行为和立体化学要求。

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