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Persistent nature of alterations in cognition and neuronal circuit excitability after exposure to simulated cosmic radiation in mice

机译:暴露于小鼠模拟宇宙辐射后认知和神经元电流兴奋性改变的持续性质

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Of the many perils associated with deep space travel to Mars, neurocognitive complications associated with cosmic radiation exposure are of particular concern. Despite these realizations, whether and how realistic doses of cosmic radiation cause cognitive deficits and neuronal circuitry alterations several months after exposure remains unclear. In addition, even less is known about the temporal progression of cosmic radiation-induced changes transpiring over the duration of a time period commensurate with a flight to Mars. Here we show that rodents exposed to the second most prevalent radiation type in space (i.e. helium ions) at low, realistic doses, exhibit significant hippocampal and cortical based cognitive decrements lasting 1 year after exposure. Cosmic radiation-induced impairments in spatial, episodic and recognition memory were temporally coincident with deficits in cognitive flexibility and reduced rates of fear extinction, elevated anxiety and depression like behavior. At the circuit level, irradiation caused significant changes in the intrinsic properties (resting membrane potential, input resistance) of principal cells in the perirhinal cortex, a region of the brain implicated by our cognitive studies. Irradiation also resulted in persistent decreases in the frequency and amplitude of the spontaneous excitatory postsynaptic currents in principal cells of the perirhinal cortex, as well as a reduction in the functional connectivity between the CAl of the hippocampus and the perirhinal cortex. Finally, increased numbers of activated microglia revealed significant elevations in neuroinflammation in the perirhinal cortex, in agreement with the persistent nature of the perturbations in key neuronal networks after cosmic radiation exposure. These data provide new insights into cosmic radiation exposure, and reveal that even sparsely ionizing particles can disrupt the neural circuitry of the brain to compromise cognitive function over surprisingly protracted post-irradiation intervals.
机译:在与宇宙辐射暴露相关的深度空间与火星相关的许多危险中,与宇宙辐射曝光相关的神经认知并发症是特别关注的。尽管有这些实现,是否以及如何以及如何在暴露后几个月导致认知缺陷和神经元电路改变。此外,甚至较少是关于宇宙辐射诱导的变化传递在与火星飞行的时间段的持续时间内的变化传递的时间进展所知的。在这里,我们显示在低,现实剂量下暴露于空间(即氦离子)的第二个最普遍的辐射型的啮齿动物,表现出显着的海马和皮质基于基于的认知递减持续1年。宇宙辐射诱导的空间,焦虑和识别记忆中的损伤在时间上与认知灵活性的缺陷略有一致,并且减少恐惧灭绝的速度降低,焦虑率和抑郁等行为。在电路水平下,辐照引起了Perirhinal皮质中主细胞的内在特性(静息膜电位,输入电阻)的显着变化,通过我们的认知研究涉及的大脑区域。在Perirhinal皮质的主要细胞中,辐照也导致持续的兴奋性突触电流的频率和幅度降低,以及海马CAL与PILILHINAL皮质之间的功能连通性的减少。最后,随着宇宙辐射暴露后关键神经元网络中扰动的持续性,增加了活化的微胶质细胞的数量越来越大显示出神经引发中的显着升高。这些数据对宇宙辐射曝光提供了新的见解,并揭示了甚至稀疏电离颗粒可以破坏大脑的神经电路,以损害认知功能在令人惊讶的辐射后的照射间隔内。

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