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February 23, 2026NeuroImage0 citationsOpen Access

Brain Stimulation Prevents Neural Downregulation and Optimizes Learning

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FCF. ContòGEGiulia EllenaGEGrace Edwards

Key Points

  • This research aims to investigate how brain stimulation affects learning and neural activity during cognitive training.
  • Used transcranial random noise stimulation (tRNS) over the bilateral intraparietal sulcus (IPS) during a multi-session functional MRI study.
  • Sample population included 37 participants aged 18-35 years.
  • Compared active tRNS conditions with sham conditions to assess impact on attention network.
  • tRNS prevented declines in task-evoked BOLD activity after training, unlike the sham condition.
  • Increased BOLD responses were particularly noted in key nodes of the dorsa-ventral attention network.
  • Improved performance correlated with enhanced neural activity in task-related areas.

Abstract

• tRNS promotes learning by preventing functional downregulation • tRNS over IPS enhances BOLD responses in task-selective cortical networks • Strongest BOLD modulation induced by tRNS was observed in functionally critical DVAN nodes Non-invasive brain stimulation, such as transcranial random noise stimulation (tRNS), has been shown to enhance cortical excitability and facilitate perceptual learning. However, the neural mechanisms underlying these effects remain poorly understood. Here, we demonstrate that tRNS over the bilateral intraparietal sulcus (IPS) optimizes learning by preventing the decline in neural activity that occurs during short, high-load attentional training, thereby sustaining excitability and enhancing behavioral performance. Using a multi-session tRNS-fMRI paradigm, we investigated how tRNS modulates learning-related plasticity in the attention network during cognitive training (N=37, age range=18-35 years old). In the sham condition we observed a significant decline in task-evoked BOLD activity within the attention network after the training and no behavioral improvement, suggesting crucial neural changes associated with cognitive training that are not evident in the behavioral data. Conversely, in the active parietal tRNS condition, stimulation prevented the early decline in task-evoked BOLD activity, resulting in a sustained BOLD response. This increase was observed particularly within key nodes of the dorsa-ventral attention network, including the bilateral anterior and posterior IPS and frontal eye field (FEF). These effects were statistically significant at both the network and ROI level (p<.05, FDR-corrected) and were specific to the visuospatial task. This increased BOLD activity correlated with improved performance. This suggests that tRNS counteracts early neural adaptation during short training protocols by sustaining activity in task-relevant cortical regions to enable learning that would otherwise fail. Our study provides the first direct evidence that tRNS mitigates early neural downregulation and preserves functional response dynamics during learning in crucial task-related cortical areas. This demonstrates that, in parietal cortex, training-induced plasticity is not accompanied by the efficiency-driven reductions in activation, like typically seen in sensory areas. Instead, we propose that sustaining neural excitability through tRNS prolongs plasticity and optimizes cognitive performance in higher order attentional areas. These findings highlight tRNS as a powerful tool for enhancing attentional learning and modulating neuroplasticity in both healthy and clinical populations.

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Cite This Study

Contò et al. (2026) studied this question.

synapsesocial.com/papers/699ba07072792ae9fd8701c2https://doi.org/10.1016/j.neuroimage.2026.121824
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