Impairment in the homeostatic recruitment of layer 5/6 neurons following whisker stimulation in Fmr1 KO mice

IF 5.6 2区 医学 Q1 NEUROSCIENCES Neurobiology of Disease Pub Date : 2025-04-01 Epub Date: 2025-02-10 DOI:10.1016/j.nbd.2025.106837
Alishah Lakhani , Washington Huang , Chris C. Rodgers , Peter Wenner
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Abstract

Mouse models of Fragile X Syndrome (FXS) have demonstrated impairments in sensory-evoked neuronal firing of excitatory and inhibitory neurons. Homeostatic plasticity does not compensate for these changes in activity. Previous work has shown that impairments in homeostatic plasticity mechanisms are observed in FXS, including deficits in synaptic scaling and intrinsic excitability. Here, we aimed to examine how sensory integration changes in vivo following a homeostatic perturbation, unilateral whisker deprivation (WD), in an Fmr1 knock out (KO) mouse model. We used multi-electrode array recordings of neurons in the lightly anesthetized juvenile mouse somatosensory cortex, and found that whisker-evoked responses in layer 5/6 (L5/6) excitatory neurons were weaker in the KO compared to the wild-type (WT). We show that WD in the WT leads to a compensatory increase in the proportion of L5/6 somatosensory neurons that were recruited following whisker stimulation, but this did not occur in the KO. On the other hand, certain compensatory responses were observed in the KO following WD; the firing rate of the whisker-responsive neurons was increased following both a 2- and 7-day WD. Similar to excitatory neurons, we observed increased recruitment of fast spiking (presumed inhibitory) neurons following WD in the WT, but not KO. Our results suggest that certain homeostatic mechanisms are impaired in the KO, while others appear to remain intact. Compromised homeostatic plasticity in development could influence adult sensory processing and long-term cortical organization.

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Fmr1 KO小鼠须刺激后5/6层神经元稳态募集的损害。
脆性X综合征(FXS)小鼠模型显示,兴奋性和抑制性神经元的感觉诱发神经元放电受损。体内平衡可塑性不能补偿这些活动的变化。先前的研究表明,在FXS中观察到稳态可塑性机制的损伤,包括突触缩放和内在兴奋性的缺陷。在这里,我们的目的是研究在Fmr1敲除(KO)小鼠模型中,体内感觉统合如何在稳态扰动,单侧须剥夺(WD)后发生变化。我们使用多电极阵列记录轻度麻醉的幼鼠体感觉皮层神经元,发现与野生型(WT)相比,KO的5/6层(L5/6)兴奋性神经元的须诱发反应较弱。我们发现,WT中的WD导致在须刺激后招募的L5/6体感神经元比例代偿性增加,但这种情况并未发生在KO中。另一方面,在WD后的KO中观察到一定的代偿反应;2天和7天后,须反应神经元的放电率均有所增加。与兴奋性神经元类似,我们观察到WT中WD后快速尖峰(假定为抑制性)神经元的募集增加,但KO中没有。我们的研究结果表明,某些稳态机制在KO中受损,而其他机制似乎完好无损。发育过程中的内稳态可塑性受损可能影响成人的感觉加工和长期皮层组织。
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来源期刊
Neurobiology of Disease
Neurobiology of Disease 医学-神经科学
CiteScore
11.20
自引率
3.30%
发文量
270
审稿时长
76 days
期刊介绍: Neurobiology of Disease is a major international journal at the interface between basic and clinical neuroscience. The journal provides a forum for the publication of top quality research papers on: molecular and cellular definitions of disease mechanisms, the neural systems and underpinning behavioral disorders, the genetics of inherited neurological and psychiatric diseases, nervous system aging, and findings relevant to the development of new therapies.
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