Neuromodulation with intermittent theta-burst stimulation (iTBS) is a clinical treatment for major depression. One postulated mechanism of iTBS is to strengthen the synaptic connections which activate the prefrontal cortex to regulate mood. With ex vivo electrical stimulation and neuronal calcium imaging, we demonstrate that a common, clinical iTBS pattern (600-stimuli, ∼3-minutes) reliably strengthens the synaptic recruitment of the adult mouse prefrontal cortex. This synaptic potentiation, however, becomes less reliable in the depressive-like mouse model of prolonged social isolation. To better understand this change, we examine the impact of social isolation on the complex pattern of calcium elevation during clinical iTBS. In social isolation, the calcium peaks rise more prominently, but the induction peak no longer predicts the synaptic potentiation outcome. To better regulate calcium dynamics during induction, we test a paradigm with fewer iTBS episodes, separated by longer intervals. This spaced iTBS (90-stimuli, ∼10-minutes) in the adult prefrontal cortex limits calcium elevation during induction and yields reliable long-term potentiation (LTP) following either juvenile- or adult-onset social isolation. This research illustrates new strategies to interrogate and to enhance synaptic plasticity in the vulnerable prefrontal cortex. Significance Statement Neuromodulation therapy in major depression aims to boost synaptic potentiation in the prefrontal cortex. Since this region lacks simple behavioral readouts, preclinical studies using rodent brain slices are valuable to test and refine stimulus patterns. Here, we demonstrate that ex vivo neuronal calcium imaging reliably captures the strength and spatial spread of synaptic plasticity in the mouse prefrontal cortex in response to a common, clinical protocol (intermittent theta-burst stimulation, iTBS). This approach is sufficiently sensitive to detect problems in synaptic potentiation associated with social isolation and to identify translationally relevant changes to improve prefrontal plasticity in the vulnerable brain.
Intermittent theta burst stimulation (iTBS) is a widely used form of brain stimulation, developed on the premise that it promotes long-term potentiation (LTP) and neural excitation. However, this is not validated in higher-order neocortex, and evidence suggests its excitatory properties may have been overstated. To add...
E. Solomon, U. Hassan, C. W. Dickey et al.· medRxiv· 0 citations
Abstract Background Stanford Neuromodulation Therapy (SNT) has achieved rapid remission in treatment-resistant depression through an accelerated, high-dose iTBS schedule. While this implies a cumulative induction of synaptic plasticity, the acute neurophysiological mechanisms of a single session (1800 pulses)—the funda...
S.-X. Wang, W. Chau, V.-W.-M. Lam et al.· International Journal of Neu...· 0 citations
The dentate gyrus (DG) is a critical regulator of cortical input processing in the hippocampus, supporting spatial navigation and memory processing. In epilepsy, the DG undergoes extensive structural and functional reorganization that diminishes its ability to filter afferent inputs, resulting in enhanced hippocampal h...
D. Subramanian, Shivakeshavan R. Giridharan, Aayma Irfan et al.· bioRxiv· 0 citations
Learning requires the brain to link experience to lasting changes in neural activity, yet most experiences unfold over timescales far longer than those of classical synaptic plasticity mechanisms. Behavioral timescale synaptic plasticity (BTSP) has emerged as a candidate mechanism that bridges this gap by enabling rapi...
L. Wilmerding, Fox Gourianova, Christine Grienberger· Current Research in Neurobio...· 0 citations
High-frequency (∼90Hz) ripple oscillations may promote integrative processing in mammalian brains. Previous work has demonstrated that the co-occurrence of these ripple oscillations is associated with enhanced temporal binding of neural activity between nearby human cortical neurons. However, it remains unclear whether...
I. A. Verzhbinsky, J. Daume, Sophia Cheng et al.· bioRxiv· 1 citation
Gamma oscillations (30–90 Hz) are a prominent signature of cortical network state, but whether they facilitate or hinder inter-areal communication remains unresolved. The communication-through-coherence hypothesis posits that gamma enhances transmission between areas, whereas recent computational work suggests that hig...
Faycal Rezaig, Wyna Gagliano, G. Lazcano et al.· bioRxiv· 0 citations
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