自闭症相关 Shank3 突变体狗神经敏感性降低的神经机制

IF 9.6 1区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Qi Shi, Baolong Ren, Xuejing Lu, Libo Zhang, Liang Wu, Li Hu, Yong Q. Zhang
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引用次数: 0

摘要

据报道,携带 SHANK3(编码一种突触支架蛋白)突变的自闭症患者对疼痛的敏感性会降低。然而,疼痛处理受损的神经机制仍不清楚。为了研究 SHANK3 在疼痛处理中的作用,我们在 Shank3 突变狗模型中进行了痛觉刺激时的行为学、电生理学和药理学测试。在行为学上,与野生型(WT)狗相比,Shank3突变体狗的痛觉敏感性降低。在电生理学上,Shank3突变体狗表现出Aδ纤维和C纤维痛觉感受器激活引起的神经反应减弱。此外,Shank3突变体的非周期性指数水平较低,而非周期性指数是神经活动兴奋-抑制平衡的标志。非周期性指数介导了基因型与痛觉敏感性之间的关系,以及基因型与痛觉刺激引起的神经反应之间的关系。在药理学上,GABAAR拮抗剂戊四氮唑可挽救神经痛敏感性降低和非典型兴奋-抑制平衡。这些发现凸显了Shank3在疼痛处理过程中的关键作用,并表明兴奋-抑制平衡受损可能是自闭症患者痛觉反应性降低的原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Neural mechanisms underlying reduced nocifensive sensitivity in autism-associated Shank3 mutant dogs

Neural mechanisms underlying reduced nocifensive sensitivity in autism-associated Shank3 mutant dogs

Autistic individuals carrying mutations in SHANK3 (encoding a synaptic scaffolding protein) have been consistently reported to exhibit reduced pain sensitivity. However, the neural mechanisms underlying impaired pain processing remain unclear. To investigate the role of SHANK3 in pain processing, we conducted behavioral, electrophysiological, and pharmacological tests upon nociceptive stimulation in a Shank3 mutant dog model. Behaviorally, Shank3 mutant dogs showed reduced nocifensive sensitivity compared to wild-type (WT) dogs. Electrophysiologically, Shank3 mutant dogs exhibited reduced neural responses elicited by the activations of both Aδ- and C-fiber nociceptors. Additionally, Shank3 mutants showed a lower level of aperiodic exponents, which serve as a marker for the excitatory-inhibitory balance of neural activity. The aperiodic exponents mediated the relationship between genotype and nocifensive sensitivity as well as between genotype and neural responses elicited by nociceptive stimuli. Pharmacologically, the reduced nocifensive sensitivity and atypical excitatory-inhibitory balance were rescued by a GABAAR antagonist pentylenetetrazole. These findings highlight the critical role of Shank3 in pain processing and suggest that an impaired excitatory-inhibitory balance may be responsible for the reduced nocifensive reactivity in autism.

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来源期刊
Molecular Psychiatry
Molecular Psychiatry 医学-精神病学
CiteScore
20.50
自引率
4.50%
发文量
459
审稿时长
4-8 weeks
期刊介绍: Molecular Psychiatry focuses on publishing research that aims to uncover the biological mechanisms behind psychiatric disorders and their treatment. The journal emphasizes studies that bridge pre-clinical and clinical research, covering cellular, molecular, integrative, clinical, imaging, and psychopharmacology levels.
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