谷胱甘肽
活性氧
氧化应激
癌症研究
细胞内
癌细胞
细胞外
抗氧化剂
医学
癌症
生物
化学
酶
生物化学
内科学
作者
Shira Cramer,Achinto Saha,Jinyun Liu,Surendar Tadi,Stefano Tiziani,Wupeng Yan,Kendra Triplett,Candice Lamb,Susan E. Alters,Scott W. Rowlinson,Yan Zhang,Michael J. Keating,Peng Huang,John DiGiovanni,George Georgiou,Everett Stone
出处
期刊:Nature Medicine
[Springer Nature]
日期:2016-11-21
卷期号:23 (1): 120-127
被引量:453
摘要
By reducing the availability of extracellular L-cyst(e)ine, an engineered enzyme inhibits glutathione production and cripples antioxidant defenses of tumors in a variety of mouse models. Cancer cells experience higher oxidative stress from reactive oxygen species (ROS) than do non-malignant cells because of genetic alterations and abnormal growth; as a result, maintenance of the antioxidant glutathione (GSH) is essential for their survival and proliferation1,2,3. Under conditions of elevated ROS, endogenous L-cysteine (L-Cys) production is insufficient for GSH synthesis. This necessitates uptake of L-Cys that is predominantly in its disulfide form, L-cystine (CSSC), via the xCT(−) transporter. We show that administration of an engineered and pharmacologically optimized human cyst(e)inase enzyme mediates sustained depletion of the extracellular L-Cys and CSSC pool in mice and non-human primates. Treatment with this enzyme selectively causes cell cycle arrest and death in cancer cells due to depletion of intracellular GSH and ensuing elevated ROS; yet this treatment results in no apparent toxicities in mice even after months of continuous treatment. Cyst(e)inase suppressed the growth of prostate carcinoma allografts, reduced tumor growth in both prostate and breast cancer xenografts and doubled the median survival time of TCL1-Tg:p53−/− mice, which develop disease resembling human chronic lymphocytic leukemia. It was observed that enzyme-mediated depletion of the serum L-Cys and CSSC pool suppresses the growth of multiple tumors, yet is very well tolerated for prolonged periods, suggesting that cyst(e)inase represents a safe and effective therapeutic modality for inactivating antioxidant cellular responses in a wide range of malignancies4,5.
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