He Yongxiang, Li Jiong, Zheng Wei, Liu Junhong, Dong Zhaojun, Yang Lu, Tang Shuting, Zou Yanping, Gao Tianyu, Yang Yuqian, Mo Zhenpeng, Wang Shuming, He Yuehua, Tang Changyong, Luo Jianhong, Zhao Jingwei, Guo Guoqing, Li Huiliang, Xiao Lin
Key Laboratory of Brain, Cognition and Education Sciences of Ministry of Education, Institute for Brain Research and Rehabilitation, Guangdong Key Laboratory of Mental Health and Cognitive Science, and Center for Studies of Psychological Application, South China Normal University, Guangzhou, China.
Neuroscience Laboratory for Cognitive and Developmental Disorders, Department of Anatomy, Medical College of Jinan University, Guangzhou, China.
Nat Commun. 2025 Jul 10;16(1):6382. doi: 10.1038/s41467-025-61455-0.
Whether and how myelin plasticity, an emerging new form of brain plasticity, is involved in autism spectrum disorder (ASD) remains unknown. Here, we identify deficits in oligodendrocyte (OL) generation and myelination in the barrel cortex (BC) of the male NL3-R451C-KI mouse model of ASD. These mice also show impaired texture recognition, disrupted gamma neuronal oscillations, and reduced excitability and myelination level in the BC-PV interneuron. These abnormalities can be rescued by a promyelinating strategy and are recapitulated by genetic blockade of myelination in Myrf-cKO mice. Furthermore, OL progenitor-specific conditional NL3 knockout mice show similar deficits in BC-PV interneuron myelination and excitability, as well as neuronal oscillation and texture recognition, closely resembling the NL3-R451C-KI phenotype. Collectively, these results demonstrate that NL3 mutations commonly cause hypomyelination and reduced excitability in BC-PV interneurons, disrupting neuronal oscillation and contributing to ASD-like sensory dysfunction. Our finding reveals a mechanism underlying ASD and highlights OLs/myelin as potential therapeutic targets for ASD.
髓鞘可塑性作为一种新出现的脑可塑性形式,是否以及如何参与自闭症谱系障碍(ASD)尚不清楚。在此,我们在ASD的雄性NL3-R451C-KI小鼠模型的桶状皮质(BC)中发现少突胶质细胞(OL)生成和髓鞘形成存在缺陷。这些小鼠还表现出纹理识别受损、γ神经元振荡紊乱,以及BC-PV中间神经元的兴奋性和髓鞘形成水平降低。这些异常可通过促髓鞘形成策略得到挽救,并且在Myrf-cKO小鼠中通过髓鞘形成的基因阻断得以重现。此外,OL祖细胞特异性条件性NL3基因敲除小鼠在BC-PV中间神经元的髓鞘形成和兴奋性方面表现出类似缺陷,以及神经元振荡和纹理识别方面的缺陷,与NL3-R451C-KI表型极为相似。总体而言,这些结果表明,NL3突变通常会导致BC-PV中间神经元髓鞘形成不足和兴奋性降低,破坏神经元振荡并导致类似ASD的感觉功能障碍。我们的发现揭示了ASD的一种潜在机制,并突出了OLs/髓鞘作为ASD潜在治疗靶点的重要性。