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雌激素代谢与乳腺癌:一种风险模型。

Estrogen metabolism and breast cancer: a risk model.

作者信息

Parl Fritz F, Dawling Sheila, Roodi Nady, Crooke Philip S

机构信息

Department of Pathology, Vanderbilt University, Nashville, Tennessee 37232, USA.

出版信息

Ann N Y Acad Sci. 2009 Feb;1155:68-75. doi: 10.1111/j.1749-6632.2008.03676.x.

Abstract

Oxidative metabolites of estrogens have been implicated in the development of breast cancer, yet relatively little is known about the metabolism of estrogens in the normal breast. We developed an experimental in vitro model of mammary estrogen metabolism in which we combined purified, recombinant phase I enzymes CYP1A1 and CYP1B1 with the phase II enzymes COMT and GSTP1 to determine how 17beta-estradiol (E(2)) is metabolized. We employed both gas and liquid chromatography with mass spectrometry to measure the parent hormone E(2) as well as eight metabolites, that is, the catechol estrogens, methoxyestrogens, and estrogen-GSH conjugates. We used these experimental data to develop an in silico model, which allowed the kinetic simulation of converting E(2) into eight metabolites. The simulations showed excellent agreement with experimental results and provided a quantitative assessment of the metabolic interactions. Using rate constants of genetic variants of CYP1A1, CYP1B1, and COMT, the model further allowed examination of the kinetic impact of enzyme polymorphisms on the entire metabolic pathway, including the identification of those haplotypes producing the largest amounts of catechols and quinones. Application of the model to a breast cancer case-control population defined the estrogen quinone E(2)-3,4-Q as a potential risk factor and identified a subset of women with an increased risk of breast cancer based on their enzyme haplotypes and consequent E(2)-3,4-Q production. Our in silico model integrates diverse types of data and offers the exciting opportunity for researchers to combine metabolic and genetic data in assessing estrogenic exposure in relation to breast cancer risk.

摘要

雌激素的氧化代谢产物与乳腺癌的发生有关,但对于正常乳腺中雌激素的代谢情况却知之甚少。我们构建了一个乳腺雌激素代谢的体外实验模型,将纯化的重组I相酶CYP1A1和CYP1B1与II相酶COMT和GSTP1相结合,以确定17β-雌二醇(E₂)是如何代谢的。我们采用气相色谱和液相色谱联用质谱法来测定母体激素E₂以及八种代谢产物,即儿茶酚雌激素、甲氧基雌激素和雌激素-GSH缀合物。我们利用这些实验数据构建了一个计算机模拟模型,该模型能够对E₂转化为八种代谢产物的过程进行动力学模拟。模拟结果与实验结果高度吻合,并对代谢相互作用进行了定量评估。利用CYP1A1、CYP1B1和COMT基因变体的速率常数,该模型进一步允许研究酶多态性对整个代谢途径的动力学影响,包括识别产生大量儿茶酚和醌的单倍型。将该模型应用于乳腺癌病例对照人群,确定雌激素醌E₂-3,4-Q为潜在风险因素,并根据酶单倍型及由此产生的E₂-3,4-Q水平,识别出乳腺癌风险增加的女性亚组。我们的计算机模拟模型整合了多种类型的数据,为研究人员在评估与乳腺癌风险相关雌激素暴露时,将代谢数据和遗传数据相结合提供了令人兴奋的机会。

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