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Pharmacological evidence is consistent with a prominent role of spatial memory in complex navigation

机译:药理学证据与空间记忆在复杂导航中的突出作用相一致

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摘要

The ability to learn about the spatial environment plays an important role in navigation, migration, dispersal, and foraging. However, our understanding of both the role of cognition in the development of navigation strategies and the mechanisms underlying these strategies is limited. We tested the hypothesis that complex navigation is facilitated by spatial memory in a population of Chrysemys picta that navigate with extreme precision (±3.5 m) using specific routes that must be learned prior to age three. We used scopolamine, a muscarinic acetylcholine receptor antagonist, to manipulate the cognitive spatial abilities of free-living turtles during naturally occurring overland movements. Experienced adults treated with scopolamine diverted markedly from their precise navigation routes. Naive juveniles lacking experience (and memory) were not affected by scopolamine, and thereby served as controls for perceptual or non-spatial cognitive processes associated with navigation. Further, neither adult nor juvenile movement was affected by methylscopolamine, a form of scopolamine that does not cross the blood–brain barrier, a control for the peripheral effects of scopolamine. Together, these results are consistent with a role of spatial cognition in complex navigation and highlight a cellular mechanism that might underlie spatial cognition. Overall, our findings expand our understanding of the development of complex cognitive abilities of vertebrates and the neurological mechanisms of navigation.
机译:了解空间环境的能力在导航,迁移,散布和觅食中起着重要作用。但是,我们对认知在导航策略发展中的作用以及这些策略背后的机制的理解是有限的。我们测试了以下假设:复杂的导航是由一群Chrysemys picta的空间记忆所促进的,这些种群使用必须在三岁之前学习的特定路线以极高的精度(±3.5 m)进行导航。我们使用东pol碱,一种毒蕈碱型乙酰胆碱受体拮抗剂,在自然发生的陆上移动过程中,操纵自由生活乌龟的认知空间能力。用东pol碱治疗的有经验的成年人明显偏离了他们的精确航行路线。缺乏经验(和记忆)的幼稚少年不受东pol碱的影响,因此可作为与航行有关的知觉或非空间认知过程的对照。此外,成年人运动和青少年运动都不受甲基sco碱的影​​响,甲基sco碱是一种不穿越血脑屏障的东pol碱形式,是控制pol碱外围作用的一种手段。总之,这些结果与空间认知在复杂导航中的作用一致,并突出了可能是空间认知基础的细胞机制。总的来说,我们的发现扩大了我们对脊椎动物复杂的认知能力发展和航行神经机制的理解。

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