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脆性 X 综合征认知缺陷的靶向治疗。

Targeted therapy of cognitive deficits in fragile X syndrome.

机构信息

Nencki Institute of Experimental Biology of Polish Academy of Sciences, Warsaw, Poland.

Yale School of Medicine, Department of Neuroscience, New Haven, CT, USA.

出版信息

Mol Psychiatry. 2022 Jun;27(6):2766-2776. doi: 10.1038/s41380-022-01527-5. Epub 2022 Mar 30.

Abstract

Breaking an impasse in finding mechanism-based therapies of neuropsychiatric disorders requires a strategic shift towards alleviating individual symptoms. Here we present a symptom and circuit-specific approach to rescue deficits of reward learning in Fmr1 knockout mice, a model of Fragile X syndrome (FXS), the most common monogenetic cause of inherited mental disability and autism. We use high-throughput, ecologically-relevant automated tests of cognition and social behavior to assess effectiveness of the circuit-targeted injections of designer nanoparticles, loaded with TIMP metalloproteinase inhibitor 1 protein (TIMP-1). Further, to investigate the impact of our therapeutic strategy on neuronal plasticity we perform long-term potentiation recordings and high-resolution electron microscopy. We show that central amygdala-targeted delivery of TIMP-1 designer nanoparticles reverses impaired cognition in Fmr1 knockouts, while having no impact on deficits of social behavior, hence corroborating symptom-specificity of the proposed approach. Moreover, we elucidate the neural correlates of the highly specific behavioral rescue by showing that the applied therapeutic intervention restores functional synaptic plasticity and ultrastructure of neurons in the central amygdala. Thus, we present a targeted, symptom-specific and mechanism-based strategy to remedy cognitive deficits in Fragile X syndrome.

摘要

要打破寻找神经精神疾病的基于机制疗法的僵局,需要朝着缓解个体症状的战略方向转变。在这里,我们提出了一种针对症状和回路的方法,以挽救脆性 X 综合征(FXS)模型中 Fmr1 敲除小鼠的奖励学习缺陷,这是最常见的遗传性智力残疾和自闭症的单基因原因。我们使用高通量、具有生态相关性的认知和社会行为自动测试来评估负载 TIMP 金属蛋白酶抑制剂 1 蛋白(TIMP-1)的设计纳米颗粒的回路靶向注射的有效性。此外,为了研究我们的治疗策略对神经元可塑性的影响,我们进行了长时程增强记录和高分辨率电子显微镜检查。我们表明,TIMP-1 设计纳米颗粒的杏仁核中央靶向传递可逆转 Fmr1 敲除小鼠的认知障碍,而对社会行为缺陷没有影响,因此证实了所提出方法的症状特异性。此外,我们通过显示应用的治疗干预恢复了杏仁核中央神经元的功能突触可塑性和超微结构,阐明了高度特异性行为挽救的神经相关性。因此,我们提出了一种针对脆性 X 综合征的靶向、症状特异性和基于机制的策略来纠正认知缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b82b/7612812/bce063bb085d/EMS143939-f001.jpg

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