Purpose

This project optimizes high-resolution transcranial Alternating Current Stimulation (tACS) to improve memory in healthy older adults, advancing drug-free approaches for Alzheimer's disease and related dementia (ADRD). We test stimulation schedules and develop an adaptive, brain-guided tACS system to strengthen memory-supporting networks.

Conditions

Eligibility

Eligible Ages
Over 65 Years
Eligible Sex
All
Accepts Healthy Volunteers
Yes

Inclusion Criteria

  • 65 years of age or older - normal or corrected-to-normal vision - color vision

Exclusion Criteria

  • pregnant - metal implants in head - implanted electronic devices - history of neurological problems or head injury - skin sensitivity - claustrophobia - dementia (normal Montreal Cognitive Assessment > 25) - depression (normal Geriatric Depression Scale < 10) - history of psychosis - cognitive deficits (MoCA>25) - any psychoactive medication

Study Design

Phase
N/A
Study Type
Interventional
Allocation
Randomized
Intervention Model
Crossover Assignment
Primary Purpose
Basic Science
Masking
Double (Participant, Outcomes Assessor)

Arm Groups

ArmDescriptionAssigned Intervention
Experimental
1-day patterned tACS
  • Device: 1-day patterned tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.
Experimental
3-day patterned tACS
  • Device: 3-day patterned tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.
Experimental
5-day patterned tACS
  • Device: 5-day patterned tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.
Experimental
1-day continuous tACS
  • Device: 1-day continuous tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.
Experimental
3-day continuous tACS
  • Device: 3-day continuous tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.
Experimental
5-day continuous tACS
  • Device: 5-day continuous tACS
    Device: High definition transcranial electrical current stimulation Low-intensity, noninvasive application of electrical current to the human scalp with the goal of modulating levels of neuronal excitability.

Recruiting Locations

111 Cummington Mall
Boston, Massachusetts 02215
Contact:
Robert Reinhart, PhD
617-353-9481
rmgr@bu.edu

More Details

Status
Recruiting
Sponsor
Boston University Charles River Campus

Study Contact

Robert Reinhart, PhD
(617) 353-9481
rmgr@bu.edu

Detailed Description

Cognitive decline, especially in memory and executive control, poses an escalating public health challenge as the population ages, contributing to loss of independence, reduced quality of life, and increased healthcare costs associated with Alzheimer's disease and related dementias (ADRD). Despite decades of research, there are few effective, non-pharmacological interventions capable of slowing or reversing these cognitive losses. Transcranial alternating current stimulation (tACS) has recently emerged as a promising, safe, and non-invasive technique for modulating neural rhythms that support memory. However, existing approaches remain limited by one-size-fits-all stimulation schedules that fail to account for individual brain connectivity patterns or dynamic fluctuations in cognitive state. This project aims to advance precision neuromodulation for cognitive aging by optimizing and personalizing high-resolution tACS protocols to enhance memory in older adults. Building on strong pilot data demonstrating the feasibility of personalized and adaptive stimulation, we will use multimodal imaging (EEG and fMRI) to track changes in frontotemporal synchrony, specifically theta-gamma phase-amplitude coupling and theta phase synchronization, that are known to support memory formation and retrieval. Aim 1 will establish how stimulation pattern (patterned vs. continuous waveforms) and schedule (one, three, or five consecutive days) shape the durability of memory enhancement. By comparing six systematically varied dosing protocols, we will determine the optimal pattern and repetition schedule that maximize and sustain improvements in working memory capacity, interference control, and long-term memory recognition over one month. By integrating behavioral, electrophysiological, and neuroimaging measures with adaptive control algorithms, this research will identify reliable biomarkers of responsiveness, elucidate causal mechanisms linking neural synchrony to memory, and yield a new class of personalized, connectivity-guided interventions for cognitive decline. The findings will lay a foundation for scalable, non-invasive, and mechanism-driven treatments for ADRD and age-related memory loss, advancing the broader NIH mission of promoting healthy cognitive aging.

Notice

Study information shown on this site is derived from ClinicalTrials.gov (a public registry operated by the National Institutes of Health). The listing of studies provided is not certain to be all studies for which you might be eligible. Furthermore, study eligibility requirements can be difficult to understand and may change over time, so it is wise to speak with your medical care provider and individual research study teams when making decisions related to participation.