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Yavari, F.

Publications and source records attributed to Yavari, F..

4 recordsLinked to original sources

Plasticity induction in the ventromedial prefrontal cortex during REM sleep improves fear extinction memory consolidation

Anxiety disorders (ADs) are among the most prevalent mental health conditions, yet first-line treatments often yield only moderate effectiveness. The fear conditioning paradigm is commonly used to investigate fear and extinction learning, revealing deficits in these processes and dysfunctional activity in the ventromedial prefrontal cortex (vmPFC) and amygdala in individuals with ADs. The vmPFC plays a critical role in regulating activity of the amygdala and consolidation of fear extinction memory. Notably, transcranial direct current stimulation (tDCS) has shown promise in enhancing fear extinction by modulating vmPFC activity. Additionally, rapid eye movement (REM) sleep has been suggested to be crucial for fear extinction memory consolidation. This study investigated the role the vmPFC during REM sleep in fear extinction memory consolidation. Thirty-two participants underwent a 3-day differential fear conditioning paradigm, with tDCS or sham stimulation applied during REM sleep over the vmPFC. Outcome measures included skin conductance responses (SCR) and subjective ratings of arousal, fear, and valence. Results indicate that tDCS during REM sleep enhances fear extinction memory consolidation, as measured by SCR. Furthermore, participants reported an increased subjective arousal following tDCS. These findings suggest that tDCS during REM sleep may hold potential for improving exposure-based treatments for ADs by strengthening fear extinction memory.

neuroscience↗

Phase-synchronized 40 Hz transcranial electric and magnetic stimulation boosts gamma oscillations and working memory

Gamma oscillations play a crucial role in core cognitive functions such as memory processes. Enhancing gamma oscillatory activity, which is reduced in Alzheimers Disease, may have therapeutic potential, but effective interventions remain to be determined. Previous studies have shown that phase-synchronized electric and magnetic stimulation boosts brain oscillatory activities at theta, alpha, and delta frequency bands in different ways. The high-frequency gamma frequency band remains to be investigated. This study applies novel noninvasive brain stimulation techniques, namely phase-locked 40-Hz intermittent theta-burst stimulation (iTBS) and transcranial alternating current stimulation (tACS), and explores gamma oscillation changes in the brain. Thirty healthy young participants randomly underwent 40-Hz tACS (1), 40-Hz iTBS (2), two combined interventions (phase-locked iTBS to tACS peak sine wave or tACS trough sine wave) (3-4), and a sham condition (5). The target regions were the left and right dorsolateral prefrontal cortex and were stimulated by simultaneous tACS and iTBS. Gamma oscillatory activities (for 2 hours after intervention) were monitored following each intervention. Our results show that all stimulation protocols enhanced 40-Hz oscillatory power. The iTBS-tACS Peak shows the most significant and stable increase in gamma oscillatory activities (up to 2 hours), followed by 40-Hz tACS and 40-Hz iTBS. 40-Hz tACS and 40-Hz iTBS had the strongest acute effects (up to 30 min) on induced gamma oscillations, while 40-Hz tACS most consistently induced gamma oscillations for up to 2 hours in overall resting EEG data. Phase-synchronizing iTBS with tACS at 40 Hz and the 40 Hz tACS alone targeting the dorsolateral prefrontal cortex, may be a viable approach for inducing and stabilizing gamma oscillatory activity, particularly in conditions where endogenous gamma oscillatory is attenuated, such as Alzheimers Disease. Registration IDs:101017716 (CORDIS - European Union-funded project)

neuroscience↗

Cerebellar transcranial alternating current stimulation in the theta band facilitates extinction of learned fear responses

Fear extinction is a major component of exposure therapy for anxiety disorders. There is initial evidence that the cerebellum contributes to fear extinction learning, i.e., the ability to learn that certain stimuli are no longer associated with an aversive outcome. So far, however, knowledge of the cerebellums role in extinction is scarce. In the present study, 6 Hz cerebellar transcranial alternating current stimulation (ctACS) was used to modulate cerebellar function during extinction learning in young and healthy human participants in an MRI study. A two- day differential fear conditioning paradigm was used with acquisition and extinction training being performed on day 1, and fear extinction recall being tested on day 2. 6 Hz ctACS reduced spontaneous recovery of the initial fear association during recall, stabilizing extinction effects compared to sham ctACS. fMRI data during recall revealed significantly reduced activation in cortical areas involved in initial fear acquisition, such as the anterior cingulate and insula, in the verum ctACS group compared to the sham group. During extinction training, on the other hand, the verum group exhibited more widespread cerebral activation compared to the sham group. Group differences were significant in occipital cortical areas. Although direct stimulation effects cannot be excluded, increased activation in the visual cortex may reflect enhanced encoding and processing of visual information during fear extinction learning. The findings suggest that theta-range oscillatory interactions between the cerebellum and cortical areas support extinction processes and provide causal evidence of the cerebellar role in the human fear extinction network. Significance StatementWhile the cerebellum is well known for its role in associative learning, its contribution to fear extinction learning remains underexplored. This study used 6 Hz cerebellar transcranial alternating current stimulation (ctACS) to modulate cerebellar function during extinction training in healthy participants. The present data demonstrate that ctACS enhances cerebral cortical activation during extinction training which is followed by enhanced recall of the extinction memory and subsequently reduced activation of cerebral cortical areas associated to spontaneous recovery of fear memory. These findings provide causal evidence for the cerebelluar involvement in the human fear extinction network and suggest that enhancing cerebellar theta oscillations may be useful to support exposure therapy.

neuroscience↗

Modulating Prefrontal Cortex Activity to Alleviate Stress-Induced Working Memory Deficits: A Transcranial Direct Current (tDCS) Study

This study explores the impact of stress on working memory (WM) performance, and the potential mitigating effects of transcranial direct current stimulation (tDCS) over the left dorsolateral prefrontal cortex (dlPFC) and ventromedial prefrontal cortex (vmPFC). The study had a crossover, randomized, single-blind, sham-controlled design, with stress induction as within-subject and stimulation condition as between-subject factors. We assessed stress-induced WM deficits using aversive video clips to induce stress and a verbal n-back task to assess WM performance. We analyzed physiological (cortisol and heart rate), behavioral, and electroencephalographic (EEG) changes due to stress before, during, and after WM task performance and their modulation by tDCS. Stress impaired WM performance in the sham stimulation condition for the 3-back load, but not for 2-back or 4-back loads in the WM task, and was associated with elevated physiological stress markers. tDCS over the vmPFC led to better WM task performance while stimulation over the dlPFC did not. Active tDCS with both dlPFC and vmPFC stimulation blunted cortisol release in stress conditions compared to sham. The EEG analysis revealed potential mechanisms explaining the behavioral effects of vmPFC stimulation. vmPFC stimulation led to a decreased P200 event-related potential (ERP) component compared to the sham stimulation condition and resulted in higher task-related alpha desynchronization, indicating reduced distractions and better focus during task performance. This study thus shows that the vmPFC might be a potential target for mitigating the effects of stress on WM performance, and contributes to the development of targeted interventions for stress-related cognitive impairments. Significance StatementThis study investigates how stress impacts working memory performance and whether non-invasive brain stimulation can mitigate these effects. Using transcranial direct current stimulation (tDCS), we targeted specific brain areas in participants stressed by watching aversive videos. Stress reduced working memory performance and increased cortisol levels. However, tDCS applied to the ventromedial prefrontal cortex (vmPFC) improved task performance and blunted the cortisol response compared to a sham treatment. EEG data suggest that stimulation also enhanced focus during task performance and reduced emotional distraction. Our findings suggest that tDCS over the vmPFC could be a promising non-invasive brain stimulation method to counteract the negative effects of stress on cognitive functions.

neuroscience↗