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首页> 外文期刊>The Journal of Nuclear Medicine >Real-Time Microfluidic Blood-Counting System for PET and SPECT Preclinical Pharmacokinetic Studies
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Real-Time Microfluidic Blood-Counting System for PET and SPECT Preclinical Pharmacokinetic Studies

机译:用于PET和SPECT临床前药代动力学研究的实时微流式血细胞计数系统

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id="p-2">Small-animal nuclear imaging modalities have become essential tools in the development process of new drugs, diagnostic procedures, and therapies. Quantification of metabolic or physiologic parameters is based on pharmacokinetic modeling of radiotracer biodistribution, which requires the blood input function in addition to tissue images. Such measurements are challenging in small animals because of their small blood volume. In this work, we propose a microfluidic counting system to monitor rodent blood radioactivity in real time, with high efficiency and small detection volume (a??1 ??L). >Methods: A microfluidic channel is built directly above unpackaged p-i-n photodiodes to detect ?2-particles with maximum efficiency. The device is embedded in a compact system comprising dedicated electronics, shielding, and pumping unit controlled by custom firmware to enable measurements next to small-animal scanners. Data corrections required to use the input function in pharmacokinetic models were established using calibrated solutions of the most common PET and SPECT radiotracers. Sensitivity, dead time, propagation delay, dispersion, background sensitivity, and the effect of sample temperature were characterized. The system was tested for pharmacokinetic studies in mice by quantifying myocardial perfusion and oxygen consumption with 11C-acetate (PET) and by measuring the arterial input function using 99mTcO4a?’ (SPECT). >Results: Sensitivity for PET isotopes reached 20%-47%, a 2- to 10-fold improvement relative to conventional catheter-based geometries. Furthermore, the system detected 99mTc-based SPECT tracers with an efficiency of 4%, an outcome not possible through a catheter. Correction for dead time was found to be unnecessary for small-animal experiments, whereas propagation delay and dispersion within the microfluidic channel were accurately corrected. Background activity and sample temperature were shown to have no influence on measurements. Finally, the system was successfully used in animal studies. >Conclusion: A fully operational microfluidic blood-counting system for preclinical pharmacokinetic studies was developed. Microfluidics enabled reliable and high-efficiency measurement of the blood concentration of most common PET and SPECT radiotracers with high temporal resolution in small blood volume.
机译:id =“ p-2”>小动物核成像方法已成为新药,诊断程序和疗法开发过程中的重要工具。代谢或生理参数的量化基于放射性示踪剂生物分布的药代动力学模型,该模型除了组织图像外还需要血液输入功能。由于小动物的血液量小,因此此类测量具有挑战性。在这项工作中,我们提出了一种微流体计数系统,该系统可以实时,高效且检测体积小(a ?? 1?L)来监测啮齿动物的血液放射性。 >方法:直接在未包装的 p-i-n 光电二极管上方建立微流控通道,以最大效率检测α2-粒子。该设备被嵌入到一个紧凑的系统中,该系统包括专用电子设备,屏蔽和由定制固件控制的泵浦单元,可在小动物扫描仪旁边进行测量。使用最常见的PET和SPECT放射性示踪剂的校准溶液,可以建立在药代动力学模型中使用输入功能所需的数据校正。表征了灵敏度,死区时间,传播延迟,色散,背景灵敏度以及样品温度的影响。通过定量使用 11 C-乙酸酯(PET)定量心肌灌注和耗氧量以及使用 99m TcO 4 a?'(SPECT)。 >结果:PET同位素的灵敏度达到20%-47%,相对于传统的基于导管的几何结构提高了2到10倍。此外,该系统以4%的效率检测到了基于 99m Tc的SPECT示踪剂,通过导管无法实现这一结果。发现对于小动物实验而言,死区时间的校正是不必要的,而微流体通道内的传播延迟和扩散则得到了准确校正。显示背景活性和样品温度对测量没有影响。最终,该系统成功用于动物研究。 >结论:开发了用于临床前药代动力学研究的功能完备的微流控血液计数系统。微流控技术能够以小体积的高时间分辨率可靠,高效地测量最常见的PET和SPECT放射性示踪剂的血药浓度。

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