AI Article Synopsis

  • Transcranial electrical stimulation (tES) shows promise in enhancing cerebral blood flow and cerebrovascular reactivity, which are vital for treating cognitive issues like mild cognitive impairment and dementia.
  • The study utilizes a physiological modeling approach to simulate how tES affects the neurovascular unit, revealing potential vascular responses driven by electric fields, local metabolic demands, and autonomic regulation.
  • Findings highlight the therapeutic potential of tES in optimizing neurovascular coupling and cognitive function, suggesting future research should refine tES parameters using computational methods and test these in clinical environments for better management of cognitive disorders.

Article Abstract

Transcranial electrical stimulation (tES) is increasingly recognized for its potential to modulate cerebral blood flow (CBF) and evoke cerebrovascular reactivity (CVR), which are crucial in conditions like mild cognitive impairment (MCI) and dementia. This study explores the impact of tES on the neurovascular unit (NVU), employing a physiological modeling approach to simulate the vascular response to electric fields generated by tES. Utilizing the FitzHugh-Nagumo model for neuroelectrical activity, we demonstrate how tES can initiate vascular responses such as vasoconstriction followed by delayed vasodilation in cerebral arterioles, potentially modulated by a combination of local metabolic demands and autonomic regulation (pivotal locus coeruleus). Here, four distinct pathways within the NVU were modeled to reflect the complex interplay between synaptic activity, astrocytic influences, perivascular potassium dynamics, and smooth muscle cell responses. Modal analysis revealed characteristic dynamics of these pathways, suggesting that oscillatory tES may finely tune the vascular tone by modulating the stiffness and elasticity of blood vessel walls, possibly by also impacting endothelial glycocalyx function. The findings underscore the therapeutic potential vis-à-vis blood-brain barrier safety of tES in modulating neurovascular coupling and cognitive function needing the precise modulation of NVU dynamics. This technology review supports the human-in-the-loop integration of tES leveraging digital health technologies for the personalized management of cerebral blood flow, offering new avenues for treating vascular cognitive disorders. Future studies should aim to optimize tES parameters using computational modeling and validate these models in clinical settings, enhancing the understanding of tES in neurovascular health.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11201600PMC
http://dx.doi.org/10.3390/brainsci14060591DOI Listing

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