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1型神经纤维瘤病小鼠模型中学习缺陷的机制

Mechanism for the learning deficits in a mouse model of neurofibromatosis type 1.

作者信息

Costa Rui M, Federov Nikolai B, Kogan Jeff H, Murphy Geoffrey G, Stern Joel, Ohno Masuo, Kucherlapati Raju, Jacks Tyler, Silva Alcino J

机构信息

Departments of Neurobiology, Psychiatry and Psychology, BRI, University of California at Los Angeles, Los Angeles, California 90095-1761, USA.

出版信息

Nature. 2002 Jan 31;415(6871):526-30. doi: 10.1038/nature711. Epub 2002 Jan 16.

Abstract

Neurofibromatosis type I (NF1) is one of the most common single-gene disorders that causes learning deficits in humans. Mice carrying a heterozygous null mutation of the Nfl gene (Nfl(+/-) show important features of the learning deficits associated with NF1 (ref. 2). Although neurofibromin has several known properties and functions, including Ras GTPase-activating protein activity, adenylyl cyclase modulation and microtubule binding, it is unclear which of these are essential for learning in mice and humans. Here we show that the learning deficits of Nf1(+/-) mice can be rescued by genetic and pharmacological manipulations that decrease Ras function. We also show that the Nf1(+/-) mice have increased GABA (gamma-amino butyric acid)-mediated inhibition and specific deficits in long-term potentiation, both of which can be reversed by decreasing Ras function. Our results indicate that the learning deficits associated with NF1 may be caused by excessive Ras activity, which leads to impairments in long-term potentiation caused by increased GABA-mediated inhibition. Our findings have implications for the development of treatments for learning deficits associated with NF1.

摘要

I型神经纤维瘤病(NF1)是导致人类学习缺陷的最常见单基因疾病之一。携带Nfl基因杂合无效突变的小鼠(Nfl(+/-))表现出与NF1相关的学习缺陷的重要特征(参考文献2)。尽管神经纤维瘤蛋白具有多种已知特性和功能,包括Ras GTP酶激活蛋白活性、腺苷酸环化酶调节和微管结合,但尚不清楚这些特性和功能中哪些对小鼠和人类的学习至关重要。在此,我们表明,通过降低Ras功能的基因和药理学操作,可以挽救Nf1(+/-)小鼠的学习缺陷。我们还表明,Nf1(+/-)小鼠的GABA(γ-氨基丁酸)介导的抑制作用增强,且在长时程增强方面存在特定缺陷,而这两者均可通过降低Ras功能得到逆转。我们的结果表明,与NF1相关的学习缺陷可能是由过度的Ras活性引起的,这会导致GABA介导的抑制作用增强,进而损害长时程增强。我们的发现对开发与NF1相关的学习缺陷的治疗方法具有启示意义。

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