Sekulić Vladislav, Skinner Frances K
Krembil Research Institute, University Health Network, Toronto, Ontario, Canada.
Department of Physiology, University of Toronto, Toronto, Ontario, Canada.
Elife. 2017 Mar 20;6:e22962. doi: 10.7554/eLife.22962.
Although biophysical details of inhibitory neurons are becoming known, it is challenging to map these details onto function. Oriens-lacunosum/moleculare (O-LM) cells are inhibitory cells in the hippocampus that gate information flow, firing while phase-locked to theta rhythms. We build on our existing computational model database of O-LM cells to link model with function. We place our models in high-conductance states and modulate inhibitory inputs at a wide range of frequencies. We find preferred spiking recruitment of models at high (4-9 Hz) or low (2-5 Hz) theta depending on, respectively, the presence or absence of h-channels on their dendrites. This also depends on slow delayed-rectifier potassium channels, and preferred theta ranges shift when h-channels are potentiated by cyclic AMP. Our results suggest that O-LM cells can be differentially recruited by frequency-modulated inputs depending on specific channel types and distributions. This work exposes a strategy for understanding how biophysical characteristics contribute to function.
尽管抑制性神经元的生物物理细节正逐渐为人所知,但将这些细节与功能对应起来仍具有挑战性。海马体中的腔隙-分子层(O-LM)细胞是抑制性细胞,它们控制信息流,在与θ节律锁相时放电。我们基于现有的O-LM细胞计算模型数据库,将模型与功能联系起来。我们将模型置于高电导状态,并在广泛的频率范围内调节抑制性输入。我们发现,根据模型树突上是否存在h通道,模型在高(4-9赫兹)或低(2-5赫兹)θ频率下有优先的尖峰发放募集。这也取决于缓慢延迟整流钾通道,当h通道被环磷酸腺苷增强时,优先的θ频率范围会发生变化。我们的结果表明,根据特定的通道类型和分布,O-LM细胞可以通过频率调制输入进行差异募集。这项工作揭示了一种理解生物物理特征如何影响功能的策略。