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在行为中的狒狒身上用正电子发射断层扫描(PET)绘制视觉识别记忆网络。

Mapping the visual recognition memory network with PET in the behaving baboon.

作者信息

Blaizot X, Landeau B, Baron J C, Chavoix C

机构信息

INSERM U320, Cyceron, Caen, France.

出版信息

J Cereb Blood Flow Metab. 2000 Feb;20(2):213-9. doi: 10.1097/00004647-200002000-00001.

Abstract

By means of a novel 18F-fluoro-deoxyglucose PET method designed for cognitive activation imaging in the baboon, the large-scale neural network involved in visual recognition memory in the nonhuman primate was mapped for the first time. In this method, the tracer is injected in the awake, unanesthetized, and unrestrained baboon performing the memory task, and brain imaging is performed later under light anesthesia. Brain maps obtained during a computerized trialunique delayed matching-to-sample task (lists of meaningless geometrical patterns and delay > 9 seconds) were statistically compared pixel-by-pixel to maps obtained during a specially designed visuomotor control task. When displayed onto the baboon's own anatomic magnetic resonance images, foci of significant activation were distributed along the ventral occipitotemporal pathway, the inferomedial temporal lobe (especially the perirhinal cortex and posterior hippocampal region), and the orbitofrontal cortex, consistent with lesion, single-unit, and autoradiographic studies in monkeys, as well as with activation studies in healthy humans. Additional activated regions included the nucleus basalis of Meynert, the globus pallidus and the putamen. The results also document an unexpected left-sided advantage, suggesting hemispheric functional specialization for recognition of figural material in nonhuman primates.

摘要

通过一种专为狒狒认知激活成像设计的新型18F-氟脱氧葡萄糖正电子发射断层扫描(PET)方法,首次绘制了非人类灵长类动物视觉识别记忆中涉及的大规模神经网络。在该方法中,将示踪剂注入正在执行记忆任务的清醒、未麻醉且未受约束的狒狒体内,随后在轻度麻醉下进行脑成像。将在计算机化的独特延迟样本匹配任务(无意义几何图案列表且延迟>9秒)期间获得的脑图谱与在专门设计的视觉运动控制任务期间获得的图谱逐像素进行统计比较。当显示在狒狒自身的解剖磁共振图像上时,显著激活灶分布在枕颞腹侧通路、颞叶内下侧(尤其是鼻周皮质和海马后区)以及眶额皮质,这与对猴子的损伤、单神经元和放射自显影研究一致,也与对健康人类的激活研究一致。其他激活区域包括迈内特基底核、苍白球和壳核。结果还证明了出人意料的左侧优势,表明非人类灵长类动物在识别图形材料方面存在半球功能特化。

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