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利用近红外光谱和19F磁共振成像在大鼠体内同时测量肿瘤氧动力学。

Tumour oxygen dynamics measured simultaneously by near-infrared spectroscopy and 19F magnetic resonance imaging in rats.

作者信息

Xia Mengna, Kodibagkar Vikram, Liu Hanli, Mason Ralph P

机构信息

Joint Biomedical Engineering Graduate Program, University of Texas at Arlington, TX 76019, USA.

出版信息

Phys Med Biol. 2006 Jan 7;51(1):45-60. doi: 10.1088/0031-9155/51/1/004. Epub 2005 Dec 15.

Abstract

Simultaneous near-infrared spectroscopy (NIRS) and magnetic resonance imaging (MRI) were used to investigate the correlation between tumour vascular oxygenation and tissue oxygen tension dynamics in rat breast 13762NF tumours with respect to hyperoxic gas breathing. NIRS directly detected global variations in the oxygenated haemoglobin concentration (Delta[HbO(2)]) within tumours and oxygen tension (pO(2)) maps were achieved using (19)F MRI of the reporter molecule hexafluorobenzene. Multiple correlations were examined between rates and magnitudes of vascular (Delta[HbO(2)]) and tissue (pO(2)) responses. Significant correlations were found between response to oxygen and carbogen breathing using either modality. Comparison of results for the two methods showed a correlation between the vascular perfusion rate ratio and the mean pO(2) values (R(2) > 0.7). The initial rates of increase of Delta[HbO(2)] and the slope of dynamic pO(2) response, d(pO(2))/dt, of well-oxygenated voxels in response to hyperoxic challenge were also correlated. These results demonstrate the feasibility of simultaneous measurements using NIRS and MRI. As expected, the rate of pO(2) response to oxygen is primarily dependent upon the well perfused rather than poorly perfused vasculature.

摘要

采用同步近红外光谱(NIRS)和磁共振成像(MRI)技术,研究大鼠乳腺13762NF肿瘤在高氧气体呼吸状态下肿瘤血管氧合与组织氧张力动态变化之间的相关性。NIRS直接检测肿瘤内氧合血红蛋白浓度(Δ[HbO₂])的整体变化,并通过报告分子六氟苯的¹⁹F MRI获得氧张力(pO₂)图谱。研究了血管(Δ[HbO₂])和组织(pO₂)反应的速率与幅度之间的多重相关性。两种方法在对氧气和卡波金呼吸的反应之间均发现了显著相关性。两种方法的结果比较显示,血管灌注率比值与平均pO₂值之间存在相关性(R² > 0.7)。在高氧刺激下,氧合良好的体素中Δ[HbO₂]的初始增加速率与动态pO₂反应的斜率d(pO₂)/dt也具有相关性。这些结果证明了同时使用NIRS和MRI进行测量的可行性。正如预期的那样,pO₂对氧气的反应速率主要取决于灌注良好而非灌注不良的血管系统。

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