Gibson Jay R, Bartley Aundrea F, Hays Seth A, Huber Kimberly M
Dept. of Neuroscience, University of Texas, Southwestern Medical Center, Box 9111, Dallas, TX 75390-9111, USA.
J Neurophysiol. 2008 Nov;100(5):2615-26. doi: 10.1152/jn.90752.2008. Epub 2008 Sep 10.
Despite the pronounced neurological deficits associated with mental retardation and autism, it is unknown if altered neocortical circuit function occurs in these prevalent disorders. Here we demonstrate specific alterations in local synaptic connections, membrane excitability, and circuit activity of defined neuron types in sensory neocortex of the mouse model of Fragile X Syndrome-the Fmr1 knockout (KO). Overall, these alterations result in hyperexcitability of neocortical circuits in the Fmr1 KO. Specifically, we observe a substantial deficit in local excitatory drive ( approximately 50%) targeting fast-spiking (FS) inhibitory neurons in layer 4 of somatosensory, barrel cortex. This persists until at least 4 wk of age suggesting it may be permanent. In contrast, monosynaptic GABAergic synaptic transmission was unaffected. Overall, these changes indicate that local feedback inhibition in neocortical layer 4 is severely impaired in the Fmr1 KO mouse. An increase in the intrinsic membrane excitability of excitatory neurons may further contribute to hyperexcitability of cortical networks. In support of this idea, persistent neocortical circuit activity, or UP states, elicited by thalamic stimulation was longer in duration in the Fmr1 KO mouse. In addition, network inhibition during the UP state was less synchronous, including a 14% decrease in synchrony in the gamma frequency range (30-80 Hz). These circuit changes may be involved in sensory stimulus hypersensitivity, epilepsy, and cognitive impairment associated with Fragile X and autism.
尽管智力迟钝和自闭症与明显的神经功能缺陷相关,但在这些常见疾病中是否发生新皮层回路功能改变尚不清楚。在此,我们证明了脆性X综合征小鼠模型——Fmr1基因敲除(KO)小鼠的感觉新皮层中特定神经元类型的局部突触连接、膜兴奋性和回路活动存在改变。总体而言,这些改变导致Fmr1 KO小鼠新皮层回路的兴奋性过高。具体而言,我们观察到体感桶状皮层第4层中靶向快突触发放(FS)抑制性神经元的局部兴奋性驱动存在显著缺陷(约50%)。这种缺陷至少持续到4周龄,提示其可能是永久性的。相比之下,单突触GABA能突触传递未受影响。总体而言,这些变化表明Fmr1 KO小鼠新皮层第4层的局部反馈抑制严重受损。兴奋性神经元内在膜兴奋性的增加可能进一步导致皮层网络兴奋性过高。支持这一观点的是,丘脑刺激引发的持续性新皮层回路活动或UP状态在Fmr1 KO小鼠中的持续时间更长。此外,UP状态期间的网络抑制同步性较低,包括γ频率范围(30 - 80 Hz)内的同步性降低了14%。这些回路变化可能与脆性X综合征和自闭症相关的感觉刺激过敏、癫痫和认知障碍有关。