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The Feasibility of Performing Longitudinal Measurements in Mice Using Small Animal PET Imaging and a Microfluidic Blood Sampling Device

机译:使用小动物宠物成像和微流体血液采样装置进行小鼠纵向测量的可行性

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To minimize blood loss in a mouse during quantitative PET imaging, we developed an automated blood sampling device using microfluidic technology. The integrated technology was proven reliable in measuring the cerebral glucose metabolism. In this study, we validated the performance of the microfluidic device using in vivo mouse studies. We examined the stability of the mouse in sequential PET scans to access the feasibility of acquiring multiple measurements from the same mouse over time. Methods: Cardiac output and body temperature were chosen as physiological indicators of mouse stability. Three control and three tumor-bearing mice were studied. Sixty minutes of PET data were acquired for each mouse following a bolus injection of 3'-deoxy-3'-[F-18]fluorothymidine (FLT; ~250 μCi). 18 serial blood samples, 0.25 μl each, were taken from the femoral artery using the microfluidic device. Body temperatures were monitored before and after the scan. Immediately following the FLT scan, a 40-minute quantitative FDG (~300 μCi) PET scan was performed on the tumor-bearing mouse. Using a previously described first-pass angiographic method, we calculated two cardiac outputs for each mouse using the first 15-second data of the FLT and FDG scans respectively. Results: The FLT data showed that the image-derived blood curve correlated (R squares > 0.95) well with the blood curve derived from the 18 arterial blood samples. The body temperatures (mean: 32.1°C) of the animal varied < 1% after the FLT studies. The cardiac outputs of the three tumor-bearing mice before the 18 blood samples were taken were 19.2, 15.7, 18.3 and were 18.7, 16.3, 18.9 ml/min afterward (i.e. < 4% change). Conclusions: We validated the performance of the microfluidic device using in vivo FLT-PET imaging. The physiology of the animal remained stable after the imaging and blood sampling procedure. Reliable longitudinal measurements using PET imaging are expected to be feasible with a protected arterial catheter.
机译:为了在定量宠物成像期间最小化老鼠中的血液损失,我们使用微流体技术开发了一种自动血液采样装置。综合技术在测量脑葡萄糖新陈代谢时得到可靠的可靠性。在这项研究中,我们验证了使用体内小鼠研究的微流体装置的性能。我们检查了鼠标在顺序PET扫描中的稳定性,以获得随时间从同一鼠标获取多重测量的可行性。方法:选择心输出和体温作为小鼠稳定性的生理指标。研究了三只对照和三只肿瘤小鼠。在注射3'-脱氧-3' - [F15]氟脱氨酸(FLT;〜250μCI)后,为每只小鼠获得六十分钟的宠物数据。 18使用微流体装置从股动脉中取出0.25μl的连续血液样品。在扫描之前和之后监测身体温度。在FLT扫描后立即,在携带肿瘤小鼠上进行40分钟的定量FDG(〜300μCI)PET扫描。使用先前描述的一键血管造影方法,我们使用FLT和FDG扫描的前15秒数据计算了每只鼠标的两个心输出。结果:FLT数据显示,图像衍生的血液曲线与源自18个动脉血样的血液曲线均匀相关(R正方形> 0.95)。在FLT研究后,动物的身体温度(平均:32.1°C)变化<1%。服用18型血样的三个肿瘤小鼠的心脏输出为19.2,15.7,18.3,并且之后18.7,16.3,18.9ml / min(即<4%的变化)。结论:我们在体内FLT-PET成像中验证了微流体装置的性能。在成像和血液采样程序后,动物的生理学保持稳定。使用PET成像的可靠纵向测量预计将与受保护的动脉导管可行。

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