Child Study Center.
Department of Neuroscience.
Cereb Cortex. 2018 Oct 1;28(10):3399-3413. doi: 10.1093/cercor/bhx173.
The GABAergic system is regulated by the brain-derived neurotrophic factor (BDNF)/Tropomyosin-related kinase B (TrkB) pathway, but the cell-intrinsic role of TrkB signaling in parvalbumin cortical interneuron development and function is unclear. We performed conditional ablation of the TrkB receptor in parvalbumin-expressing (PV) interneurons to study whether postnatal loss of TrkB in parvalbumin cells affects their survival, connectivity, spontaneous and evoked neuronal activity and behavior. Using in vivo recordings of local field potentials, we found reduced gamma oscillations in the sensory cortex of PVcre+; TrkBF/F conditional knockout mice (TrkB cKO), along with increased firing of putative excitatory neurons. There was a significant downregulation in parvalbumin neuron number in cerebral and cerebellar cortices of TrkB cKO mice. In addition, inhibitory synaptic connections between basket cells and pyramidal neurons were profoundly reduced in the neocortex of TrkB cKO mice and there was a loss of cortical volume. TrkB cKO mice also showed profound hyperactivity, stereotypies, motor deficits and learning/memory defects. Our findings demonstrate that the targeting and/or synapse formation of PV-expressing basket cells with principal excitatory neurons require TrkB signaling in parvalbumin cells. Disruption of this signaling has major consequences for parvalbumin interneuron connectivity, network dynamics, cognitive and motor behavior.
GABA 能系统受脑源性神经营养因子 (BDNF)/原肌球蛋白相关激酶 B (TrkB) 途径调控,但 TrkB 信号在小脑浦肯野细胞中间神经元发育和功能中的细胞内固有作用尚不清楚。我们对表达小脑浦肯野蛋白 (PV) 的中间神经元中的 TrkB 受体进行了条件性缺失,以研究小脑浦肯野细胞中 TrkB 的后天缺失是否会影响其存活、连接、自发性和诱发的神经元活动以及行为。通过对局部场电位的体内记录,我们发现 PVcre+; TrkBF/F 条件性敲除小鼠 (TrkB cKO) 感觉皮层中的伽马振荡减少,同时兴奋性神经元的放电增加。TrkB cKO 小鼠大脑和小脑皮质中的小脑浦肯野神经元数量显著减少。此外,TrkB cKO 小鼠大脑皮质中篮状细胞和锥体神经元之间的抑制性突触连接显著减少,皮质体积丢失。TrkB cKO 小鼠还表现出明显的过度活跃、刻板行为、运动缺陷和学习/记忆缺陷。我们的研究结果表明,小脑浦肯野细胞表达的篮状细胞与主要兴奋性神经元之间的靶向和/或突触形成需要 TrkB 信号在小脑浦肯野细胞中。这种信号的破坏对小脑浦肯野中间神经元的连接、网络动力学、认知和运动行为有重大影响。