Myeloperoxidase serves as a redox switch that regulates apoptosis in epithelial ovarian cancer

髓过氧化物酶 基因沉默 细胞凋亡 S-亚硝基化 一氧化氮合酶 癌症研究 细胞生物学 一氧化氮 化学 生物 分子生物学 免疫学 炎症 生物化学 基因 内分泌学 半胱氨酸
作者
Ghassan M. Saed,Rouba Ali-Fehmi,Zhong Jiang,Nicole M. Fletcher,Michael P. Diamond,Husam M. Abu-Soûd,Adnan Munkarah
出处
期刊:Gynecologic Oncology [Elsevier BV]
卷期号:116 (2): 276-281 被引量:57
标识
DOI:10.1016/j.ygyno.2009.11.004
摘要

Resistance to apoptosis is a key feature of cancer cells and is believed to be regulated by nitrosonium ion (NO(+))-induced S-nitrosylation of key enzymes. Nitric oxide (NO), produced by inducible nitric oxide synthase (iNOS), is utilized by MPO to generated NO(+). We sought to investigate the expression of myeloperoxidase (MPO) and iNOS in epithelial ovarian cancer (EOC) and determine their effect on S-nitrosylation of caspase-3 and its activity as well as apoptosis.MPO and iNOS expression were determined using immunofluorescence in SKOV-3 and MDAH-2774 and EOC tissue sections. S-nitrosylation of caspase-3 and its activity, levels of MPO and iNOS, as well as apoptosis, were evaluated in the EOC cells before and after silencing MPO or iNOS genes with specific siRNA probes utilizing real-time RT-PCR, ELISA, and TUNEL assays.MPO and iNOS are expressed in EOC cell lines and in over 60% of invasive EOC cases with no expression in normal ovarian epithelium. Indeed, silencing of MPO or iNOS gene expression resulted in decreased S-nitrosylation of caspase-3, increased caspase-3 activity, and increased apoptosis but with a more significant effect when silencing MPO.MPO and iNOS are colocalized to the same cells in EOC but not in the normal ovarian epithelium. Silencing of either MPO or iNOS significantly induced apoptosis, highlighting their role as a redox switch that regulates apoptosis in EOC. Understanding the mechanisms by which MPO functions as a redox switch in regulating apoptosis in EOC may lead to future diagnostic tools and therapeutic interventions.

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