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Control of CA3 Output by Feedforward Inhibition Despite Developmental Changes in the Excitation–Inhibition Balance

机译:尽管前驱抑制平衡发生了变化但通过前馈抑制控制CA3的输出

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摘要

In somatosensory cortex, the relative balance of excitation and inhibition determines how effectively feedforward inhibition enforces the temporal fidelity of action potentials. Within the CA3 region of the hippocampus, glutamatergic mossy fiber (MF) synapses onto CA3 pyramidal cells (PCs) provide strong monosynaptic excitation that exhibit prominent facilitation during repetitive activity. We demonstrate in the juvenile CA3 that MF-driven polysynaptic IPSCs facilitate to maintain a fixed EPSC-IPSC ratio during short-term plasticity. In contrast, in young adult mice this MF-driven polysynaptic inhibitory input can facilitate or depress in response to short trains of activity. Transgenic mice lacking the feedback inhibitory loop continue to exhibit both facilitating and depressing polysynaptic IPSCs, indicating that this robust inhibition is not caused by the secondary engagement of feedback inhibition. Surprisingly, eliminating MF-driven inhibition onto CA3 pyramidal cells by blockade of GABAA receptors did not lead to a loss of temporal precision of the first action potential observed after a stimulus but triggered in many cases a long excitatory plateau potential capable of triggering repetitive action potential firing. These observations indicate that, unlike other regions of the brain, the temporal precision of single MF-driven action potentials is dictated primarily by the kinetics of MF EPSPs, not feedforward inhibition. Instead, feedforward inhibition provides a robust regulation of CA3 PC excitability across development to prevent excessive depolarization by the monosynaptic EPSP and multiple action potential firings.
机译:在体感皮层中,激发和抑制的相对平衡决定了前馈抑制如何有效地增强动作电位的时间保真度。在海马的CA3区域内,谷氨酸能苔藓纤维(MF)突触到CA3锥体细胞(PC)上,可提供强烈的单突触兴奋,在重复活动中表现出明显的促进作用。我们在少年CA3中证明,MF驱动的多突触IPSC有助于在短期可塑性期间维持固定的EPSC-IPSC比。相反,在成年小鼠中,这种由MF驱动的多突触抑制输入可以促进或抑制短时间的活动。缺少反馈抑制环的转基因小鼠继续表现出促进和抑制多突触性IPSCs,表明这种强大的抑制作用不是由反馈抑制的二次参与引起的。出人意料的是,通过阻断GABAA受体消除MF驱动的对CA3锥体细胞的抑制作用不会导致在刺激后观察到的第一个动作电位的时间精度下降,但在许多情况下会触发能够触发重复动作电位的长期兴奋性高原电位射击。这些观察结果表明,与大脑其他区域不同,单个MF驱动的动作电位的时间精度主要由MF EPSP的动力学决定,而不是前馈抑制。相反,前馈抑制可在整个发育过程中对CA3 PC兴奋性提供有力的调节,以防止单突触EPSP和多重动作电位触发引起的过度去极化。

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