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实验模型中肿瘤氧合、生物能量状态与放射生物学缺氧之间的关系

Relationship between tumour oxygenation, bioenergetic status and radiobiological hypoxia in an experimental model.

作者信息

Nordsmark M, Grau C, Horsman M R, Jörgensen H S, Overgaard J

机构信息

Danish Cancer Society, Department of Experimental Clinical Oncology, Aarhus.

出版信息

Acta Oncol. 1995;34(3):329-34. doi: 10.3109/02841869509093984.

Abstract

Tumour oxygenation and bioenergetic status were measured in the same tumour and these results related to radiobiological hypoxia. A C3H mouse mammary carcinoma grown in the feet of CDF1 mice was used. Bioenergetic status was assessed by 31P MRS using a SISCO 7 Tesla magnet, oxygen measurements were done by a polarographic electrode and the hypoxic fraction was determined from direct analysis of the radiation dose-response data. During all examinations restrained, non-anaesthetized mice were allowed to breathe either 100% oxygen, carbogen, normal air, carbon monoxide (CO) at 75, 220, or 660 ppm or had blood flow occluded by clamping. Results showed a significant correlation between the radiobiological hypoxic fraction and % pO2 < or = 5 mmHg under the different treatment conditions, whereas no correlation was found between beta nucleosidetriphosphate/inorganic phosphate (beta-NTP/Pi) ratio and either the hypoxic fraction or the % of pO2 values < or = 5 mmHg under the different treatment conditions. In conclusion, oxygen electrode measurements were sensitive to changes in tumour hypoxia whereas the bioenergetic status alone seemed to be a less precise measure of hypoxia in this tumour model. Furthermore, the present study demonstrated that tumour cells in vivo can actually maintain the bioenergetic status during a period of severe hypoxia.

摘要

在同一肿瘤中测量肿瘤氧合和生物能量状态,并将这些结果与放射生物学缺氧相关联。使用在CDF1小鼠足部生长的C3H小鼠乳腺癌。使用SISCO 7特斯拉磁体通过31P MRS评估生物能量状态,通过极谱电极进行氧测量,并通过直接分析辐射剂量反应数据确定缺氧分数。在所有检查期间,对受约束的未麻醉小鼠,使其呼吸100%氧气、卡波金(carbogen)、正常空气、75、220或660 ppm的一氧化碳(CO),或通过夹闭阻断血流。结果显示,在不同治疗条件下,放射生物学缺氧分数与pO2≤5 mmHg的百分比之间存在显著相关性,而在不同治疗条件下,β核苷三磷酸/无机磷酸(β-NTP/Pi)比值与缺氧分数或pO2≤5 mmHg的百分比之间均未发现相关性。总之 在该肿瘤模型中,氧电极测量对肿瘤缺氧的变化敏感,而单独的生物能量状态似乎是对缺氧不太精确的测量指标。此外,本研究表明,体内肿瘤细胞在严重缺氧期间实际上可以维持生物能量状态。

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