Duncan L, Purohit A, Howarth N M, Potter B V, Reed M J
Unit of Metabolic Medicine, St. Mary's Hospital Medical School, Imperial College of Science, Technology and Medicine, London, United Kingdom.
Cancer Res. 1993 Jan 15;53(2):298-303.
Many breast tumors are hormone dependent, and there is evidence that hydrolysis of estrone sulfate (E1S) to estrone, by estrone sulfatase, is an important source of the estrogen which is found in tumors. In this study, we have developed a novel pathway for the synthesis of estrone-3-methylthiophosphonate (E1-3-MTP) and examined its ability to inhibit estrone sulfatase activity in MCF-7 breast cancer cells and human placental and breast tumor preparations. In MCF-7 breast cancer cells, E1-3-MTP, 100 nM and 10 microM, inhibited estrone sulfatase activity by 52 and > 98%, respectively. The apparent Km and Vmax for E1S were 4.8 microM and 148 pmol/min/mg for placental and 16.9 microM and 38 pmol/min/mg for breast tumor preparations. Kinetic studies revealed that E1-3-MTP inhibited estrone sulfatase in a competitive manner with the Ki values for placental and tumor preparations being 14.6 and 32.8 microM, respectively. A comparison of the metabolism of [3H]E1S and [3H]E1-3-MTP by human placenta or rat liver revealed that, whereas 50-60% of [3H]E1S was converted to [3H]estrone, < 3% of [3H]E1-3-MTP was hydrolyzed. The development of an efficient inhibitor of estrone sulfatase, which is resistant to metabolism, will allow the importance of the estrone sulfatase pathway of estrogen formation in breast tumors to be assessed and such an inhibitor may have considerable potential as a therapeutic agent.
许多乳腺肿瘤是激素依赖性的,并且有证据表明,硫酸雌酮(E1S)通过雌酮硫酸酯酶水解为雌酮,是肿瘤中雌激素的重要来源。在本研究中,我们开发了一种合成雌酮-3-甲基硫代膦酸酯(E1-3-MTP)的新途径,并研究了其抑制MCF-7乳腺癌细胞以及人胎盘和乳腺肿瘤制剂中雌酮硫酸酯酶活性的能力。在MCF-7乳腺癌细胞中,100 nM和10 μM的E1-3-MTP分别抑制雌酮硫酸酯酶活性52%和>98%。胎盘制剂中E1S的表观Km和Vmax分别为4.8 μM和148 pmol/min/mg,乳腺肿瘤制剂中分别为16.9 μM和38 pmol/min/mg。动力学研究表明,E1-3-MTP以竞争性方式抑制雌酮硫酸酯酶,胎盘制剂和肿瘤制剂的Ki值分别为14.6和32.8 μM。人胎盘或大鼠肝脏对[3H]E1S和[3H]E1-3-MTP代谢的比较显示,虽然50-60%的[3H]E1S转化为[3H]雌酮,但<3%的[3H]E1-3-MTP被水解。开发一种对代谢具有抗性的高效雌酮硫酸酯酶抑制剂,将有助于评估乳腺癌中雌激素形成的雌酮硫酸酯酶途径的重要性,并且这种抑制剂作为治疗剂可能具有相当大的潜力。