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选择性调节芳香酶表达以用于药物发现。

Selective regulation of aromatase expression for drug discovery.

机构信息

College of Pharmacy, The Ohio State University, Columbus, OH 43210, USA.

出版信息

J Steroid Biochem Mol Biol. 2010 Feb 28;118(4-5):207-10. doi: 10.1016/j.jsbmb.2009.11.009. Epub 2009 Dec 1.

Abstract

Aromatase is a particularly attractive drug target in the treatment of hormone-responsive breast cancer, and aromatase activity in breast cancer patients is greater in or near the tumor tissue compared with the normal breast tissue. Complex regulation of aromatase expression in human tissues involves alternative promoter sites that provide tissue-specific control. Previous studies in our laboratories suggested a strong association between aromatase (CYP19) gene expression and the expression of cyclooxygenase (COX) genes. Additionally, COX selective inhibitors can suppress CYP19 gene expression and decrease aromatase activity. Our current hypothesis is that pharmacological regulation of aromatase can act locally to decrease the biosynthesis of estrogen and may provide additional therapy options for patients with hormone-dependent breast cancer. Two pharmacological approaches are being developed, one approach utilizing small molecule drug design and the second approach involving mRNA silencing technology. The small molecule drug design approach focuses on the synthesis and biological evaluation of a novel series of sulfonanilide analogs derived from COX-2 selective inhibitors. Combinatorial chemistry approaches were used to generate diversely substituted novel sulfonanilides. The compounds suppress aromatase enzyme activity in SK-BR-3 breast cancer cells in a dose and time dependent manner, and structure activity analysis does not find a correlation between aromatase suppression and COX inhibition. Real-time PCR analysis demonstrates that the sulfonanilide analogs decrease aromatase gene transcription in breast cells. Furthermore, the sulfonanilide compounds selectively decrease aromatase gene expression in several breast cancer cells, without exhibiting cytotoxic or apoptotic effects at low micromole concentrations. A ligand-based pharmacophore model for selective aromatase modulation (SAM) by the novel sulfonanilides identified an aromatic ring, two hydrogen bond acceptors, and a hydrophobic function as four key chemical features. In the second approach, short interfering RNAs (siRNA) were designed targeting human aromatase mRNA. Treatment of breast cancer cells with siRNAs targeting aromatase (siAROMs) completely masked the aromatase enzyme activity and resulted in suppression of CYP19 mRNA. Thus, these results suggest that the novel sulfonanilides and the siRNAs targeting aromatase expression may be valuable tools for selective regulation of aromatase in breast cancer.

摘要

芳香酶是治疗激素反应性乳腺癌的一个特别有吸引力的药物靶点,与正常乳腺组织相比,乳腺癌患者的肿瘤组织内或附近的芳香酶活性更高。在人体组织中,芳香酶表达的复杂调控涉及到提供组织特异性控制的替代启动子位点。我们实验室的先前研究表明,芳香酶(CYP19)基因表达与环氧化酶(COX)基因的表达之间存在很强的关联。此外,COX 选择性抑制剂可以抑制 CYP19 基因表达并降低芳香酶活性。我们目前的假设是,芳香酶的药理学调节可以局部作用以降低雌激素的生物合成,并为激素依赖性乳腺癌患者提供额外的治疗选择。目前正在开发两种药理学方法,一种方法利用小分子药物设计,另一种方法涉及 mRNA 沉默技术。小分子药物设计方法侧重于 COX-2 选择性抑制剂衍生的新型磺酰胺类似物的合成和生物学评价。组合化学方法用于生成各种取代的新型磺酰胺。这些化合物以剂量和时间依赖的方式抑制 SK-BR-3 乳腺癌细胞中的芳香酶酶活性,并且结构活性分析未发现芳香酶抑制与 COX 抑制之间的相关性。实时 PCR 分析表明磺酰胺类似物降低了乳腺细胞中的芳香酶基因转录。此外,磺酰胺化合物在几种乳腺癌细胞中选择性地降低芳香酶基因表达,而在低微摩尔浓度下没有表现出细胞毒性或凋亡作用。新型磺酰胺对选择性芳香酶调节(SAM)的基于配体的药效团模型确定了四个关键化学特征:一个芳环、两个氢键受体和一个疏水性功能。在第二种方法中,设计了针对人芳香酶 mRNA 的短干扰 RNA(siRNA)。用针对芳香酶的 siRNA(siAROMs)处理乳腺癌细胞完全掩盖了芳香酶酶活性,并导致 CYP19 mRNA 的抑制。因此,这些结果表明,新型磺酰胺和针对芳香酶表达的 siRNA 可能是选择性调节乳腺癌中芳香酶的有价值的工具。

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本文引用的文献

1
Synthesis and biological evaluation of novel sulfonanilide compounds as antiproliferative agents for breast cancer.
J Comb Chem. 2008 May-Jun;10(3):475-83. doi: 10.1021/cc700138n. Epub 2008 Apr 2.
3
Aromatase and COX in breast cancer: enzyme inhibitors and beyond.
J Steroid Biochem Mol Biol. 2007 Aug-Sep;106(1-5):16-23. doi: 10.1016/j.jsbmb.2007.05.021. Epub 2007 May 25.
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Synthesis and biological evaluation of selective aromatase expression regulators in breast cancer cells.
J Med Chem. 2007 Apr 5;50(7):1635-44. doi: 10.1021/jm061133j. Epub 2007 Feb 22.
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