R. F. D. Jalandoni, C. Todrineau, H. Qiu, E. Cook, A. Krishnaswamy, R. Sharif-Naeini, A. Khadra
Parvalbumin-expressing interneurons (PVINs) in the spinal dorsal horn play a key role in preventing touch inputs from engaging nociceptive pathways through fast inhibitory control. Although most PVINs are typically quiescent and require external input to fire, a subset of these neurons exhibits spontaneous activity, including isolated spikes and bursts. The mechanisms underlying this behavior in spontaneously active PVINs (spPVINs) remain unclear. To address this, we developed a stochastic two-compartment Hodgkin-Huxley (HH) type model, consisting of a soma and an axon initial segment (AIS), to investigate the effects of synaptic noise and intrinsic electrical properties of spPVINs in driving their spontaneous firing. The model incorporates two subthreshold currents: the M-type K+ current (Im) and the hyperpolarization-activated current (Ih). The model revealed that, in the presence of Ornstein-Uhlenbeck noise, Ih promotes spontaneous firing by enhancing noise-driven depolarizations. Model simulations closely reproduced the firing patterns of spPVINs observed experimentally, including irregular spiking and bursting. Bifurcation analysis showed that varying the applied current can lead to transitions between quiescent, tonic, and elliptic bursting regimes, allowing stochastic fluctuations to switch between these states, which gives rise to irregular spontaneous activity. Reducing the conductance of Im and increasing the conductance of the fast Na+ current (INa) both enlarge the elliptic bursting regime, thereby enabling noise to promote bursting. Interestingly, when the model was incorporated into a circuit, the downstream inhibitory effects of spPVINs were enhanced by the expression of Ih. Taken together, these results demonstrate how intrinsic electrical properties of spPVINs shape their firing dynamics and circuit activity.