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高压下氮介导的氧化应激抑制非小细胞肺癌生长。

Oxidative stress mediated by nitrogen at elevated pressure inhibits non-small cell lung cancer growth.

作者信息

Thom Stephen R, Ma Mark, Bhopale Veena M, Zhou Cindy, Mao Li

机构信息

a Department of Emergency Medicine , University of Maryland School of Medicine , Baltimore , Maryland , USA.

出版信息

Exp Lung Res. 2017 May-Jun;43(4-5):175-180. doi: 10.1080/01902148.2017.1331478. Epub 2017 Jun 21.

Abstract

UNLABELLED

Purpose/Aim: High pressures of gases such as nitrogen enhance production of singlet oxygen. Therefore, we hypothesized that growth of non-small cell lung cancer (NSCLC) A549 cells and a human-derived NSCLC explant could be inhibited by an oxidative stress mechanism using high-pressure nitrogen.

MATERIALS AND METHODS

Growth of human NSCLC explants and A549 cells in Matrigel were assessed after implantation into nude mice who were exposed to elevated pressures.

RESULTS

Subcutaneous implant growth of NSCLC in nude mice was inhibited by a daily 78-minute protocol using nitrogen/oxygen breathing mixture such that at the maximum pressure of 2.78 atmospheres over ambient, mice breathed oxygen at normal atmospheric pressure. In vivo growth inhibition of A549 cells by high-pressure nitrogen could be abrogated in subcutaneous Matrigel implants when supplemented with 10-mM N-acetylcysteine as an antioxidant. Ex vivo A549 cell exposures exhibited elevated singlet oxygen production, and reactive oxygen species were produced for up to 4 hours after short-term high-pressure nitrogen exposure.

CONCLUSIONS

This pilot study demonstrates that elevated normoxic nitrogen pressure can exacerbate oxidative stress in NSCLC to inhibit growth.

摘要

未标记

目的/目标:诸如氮气等气体的高压会增强单线态氧的产生。因此,我们假设使用高压氮气通过氧化应激机制可以抑制非小细胞肺癌(NSCLC)A549细胞和人源NSCLC外植体的生长。

材料与方法

将人NSCLC外植体和A549细胞接种于基质胶中,植入暴露于高压环境的裸鼠体内后,评估其生长情况。

结果

使用氮/氧呼吸混合气,每天进行78分钟的方案可抑制裸鼠体内NSCLC的皮下植入生长,即在高于环境压力2.78个大气压的最大压力下,小鼠在正常大气压下呼吸氧气。当在皮下基质胶植入物中补充10 mM N-乙酰半胱氨酸作为抗氧化剂时,高压氮气对A549细胞的体内生长抑制作用可被消除。体外A549细胞暴露显示单线态氧产生增加,短期高压氮气暴露后活性氧产生可持续长达4小时。

结论

这项初步研究表明,常压下升高氮气压力可加剧NSCLC中的氧化应激以抑制生长。

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