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Betabox: A beta particle imaging system based on a position sensitive avalanche photodiode

机译:Betabox:基于位置敏感雪崩光电二极管的Beta粒子成像系统

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A beta camera has been developed that allows planar imaging of the spatial and temporal distribution of beta particles using a 14 × 14 mm2 position sensitive avalanche photodiode (PSAPD). This camera system, which we call Betabox, can be directly coupled to microfluidic chips designed for cell incubation or other biological applications. Betabox allows for imaging the cellular uptake of molecular imaging probes labeled with charged particle emitters such as 18F inside these chips. In this work, we investigate the quantitative imaging capabilities of Betabox for 18F beta particles, in terms of background rate, efficiency, spatial resolution, and count rate. Measurements of background and spatial resolution are considered both at room temperature (21 °C ± 1 °C) and at an elevated operating temperature (37 °C ± 1 °C), as is often required for biological assays. The background rate measured with a 4 keV energy cutoff is below 2 cph mm-2 at both 21 and 37 °C. The absolute efficiency of Betabox for the detection of 18F positron sources in contact with a PSAPD with the surface passivated from ambient light and damage is 46% ± 1%. The lower detection limit is estimated using the Rose Criterion to be 0.2 cps mm-2 for 1 min acquisitions and a 62 × 62 μm2 pixel size. The upper detection limit is approximately 21 000 cps. The spatial resolution at both 21 and 37 °C ranges from 0.4 mm FWHM at the center of the field of view (FOV), and degrades to 1 mm at a distance of 5 mm away from center yielding a useful FOV of approximately 10 × 10 mm2. We also investigate the effects on spatial resolution and sensitivity that result from the use of a polymer based microfluidic chip. For these studies we place varying layers of low-density polyethylene (LDPE) between the detector and the source and find that the spatial resolution degrades by ~180 μm for every 100 μm of LDPE film. Sensitivity is reduced by half with the inclusion of ~200 μm of additional LDPE film. Lastly, we demonstrate the practical utilization of Betabox, with an imaging test of its linearity, when coupled to a polydimethylsiloxane microfluidic chip designed for cell based assays.
机译:已经开发出一种β相机,它可以使用14×14 mm2位置敏感雪崩光电二极管(PSAPD)对β粒子的时空分布进行平面成像。这种相机系统(我们称为Betabox)可以直接与为细胞孵育或其他生物应用设计的微流体芯片耦合。 Betabox允许对这些芯片内部标有带电粒子发射器(例如18F)的分子成像探针的细胞摄取进行成像。在这项工作中,我们将研究背景箱,效率,空间分辨率和计数率方面Betabox对18F beta颗粒的定量成像能力。生物学测定通常需要在室温(21°C±1°C)和较高的工作温度(37°C±1°C)下考虑背景和空间分辨率的测量。在21和37°C下,通过4 keV能量截止测得的背景速率均低于2 cph mm-2。 Betabox用于检测与PSAPD接触且表面被环境光和损伤钝化的18F正电子源的绝对效率为46%±1%。使用Rose Criterion估计的下检测限为0.2 cps mm-2(1分钟采集)和62×62μm2像素大小。检测上限约为21000 cps。在21°C和37°C时的空间分辨率在视场中心(FOV)的范围为0.4 mm FWHM,在距中心5 mm的距离处下降至1 mm,从而产生约10×10的有用FOV平方毫米我们还研究了基于聚合物的微流控芯片对空间分辨率和灵敏度的影响。对于这些研究,我们在检测器和光源之间放置了不同的低密度聚乙烯(LDPE)层,发现每100μmLDPE膜的空间分辨率降低了约180μm。附加了约200μm的LDPE薄膜,灵敏度降低了一半。最后,当与设计用于基于细胞的测定法的聚二甲基硅氧烷微流体芯片偶联时,我们通过对其线性的成像测试证明了Betabox的实际利用。

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