PET Center, Department of Diagnostic Radiology, Yale University, New Haven, Connecticut, USA.
Synapse. 2012 Jun;66(6):489-500. doi: 10.1002/syn.21535. Epub 2012 Feb 24.
Although [¹¹C]-(+)-PHNO has enabled quantification of the dopamine-D3 receptor (D3R) in the human brain in vivo, its selectivity for the D3R is not sufficiently high to allow us to disregard its binding to the dopamine-D2 receptor (D2R). We quantified the affinity of [¹¹C]-(+)-PHNO for the D2R and D3R in the living primate brain. Two rhesus monkeys were examined on four occasions each, with [¹¹C]-(+)-PHNO administered in a bolus + infusion paradigm. Varying doses of unlabeled (+)-PHNO were coadministered on each occasion (total doses ranging from 0.09 to 5.61 μg kg⁻¹). The regional binding potential (BP(ND) ) and the corresponding doses of injected (+)-PHNO were used as inputs in a model that quantified the affinity of (+)-PHNO for the D2R and D3R, as well as the regional fractions of the [¹¹C]-(+)-PHNO signal attributable to D3R binding. (+)-PHNO in vivo affinity for the D3R (K(d)/f(ND) ~0.23-0.56 nM) was 25- to 48-fold higher than that for the D2R (K(d)/f(ND) ~11-14 nM). The tracer limits for (+)-PHNO (dose associated with D3R occupancy ~10%) were estimated at ~0.02-0.04 μg kg⁻¹ injected mass for anesthetized primate and at 0.01-0.02 μg kg⁻¹ for awake human positron emission tomography (PET) studies. Our data enabled a rational design and interpretation of future PET studies with [¹¹C]-(+)-PHNO.
虽然 [¹¹C]-(+)-PHNO 能够实现人类大脑中多巴胺-D3 受体 (D3R) 的定量,但它对 D3R 的选择性不够高,无法忽略其与多巴胺-D2 受体 (D2R) 的结合。我们在活体灵长类动物大脑中定量了 [¹¹C]-(+)-PHNO 对 D2R 和 D3R 的亲和力。两只恒河猴在每个试验中各进行了 4 次检查,通过静脉推注和持续输注方式给予 [¹¹C]-(+)-PHNO。在每次试验中,都给予了不同剂量的未标记 (+)-PHNO(总剂量范围为 0.09 至 5.61 μg/kg)。采用模型将区域结合潜能(BP(ND))和相应剂量的注入 (+)-PHNO 作为输入,对 (+)-PHNO 对 D2R 和 D3R 的亲和力以及归因于 D3R 结合的 [¹¹C]-(+)-PHNO 信号的区域分数进行了量化。(+)-PHNO 在体内对 D3R 的亲和力(K(d)/f(ND)0.23-0.56 nM)比 D2R 高 25-48 倍(K(d)/f(ND)11-14 nM)。用于 (+)-PHNO 的示踪剂限制(与 D3R 占有率相关的剂量10%)估计在麻醉灵长类动物中为0.02-0.04 μg/kg 注射质量,在清醒人类正电子发射断层扫描(PET)研究中为 0.01-0.02 μg/kg。我们的数据为未来使用 [¹¹C]-(+)-PHNO 的 PET 研究提供了合理的设计和解释。