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Maximizing the Impact of Neuroplasticity Using Transcranial Electrical Stimulation Study 1

Increased Thalamocortical Connectivity in Tdcs-potentiated Generalization of Cognitive Training

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03896425
Acronym
MINUTES
Enrollment
73
Registered
2019-04-01
Start date
2019-04-01
Completion date
2024-04-30
Last updated
2024-08-07

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Healthy, Transcranial Direct Current Stimulation

Keywords

tDCS, cognitive training, functional connectivity, non-invasive brain stimulation

Brief summary

Non-invasive neuromodulation, such as transcranial direct current stimulation ( tDCS) , is emerging as an important therapeutic tool with documented effects on brain circuitry, yet little is understood about h ow it changes cognition. In particular, tDCS may have a critical role to play in generalization, that is how training in one domain generalizes to unlearned or unpracticed domains. This problem has resonance for disorders with cognitive deficits, such as schizophrenia. Understanding how tDCS affects brain circuity is critical to the design and application of effective interventions, especially if the effects are different for healthy vs. psychiatric populations. In previous research, one clue to the mechanism underlying increased learning and generalization with tDCS was provided by neuroimaging data from subjects with schizophrenia undergoing cognitive training where increases in thalamocortical (prefrontal) functional connectivity (FC) predicted greater generalization. The premise of this proposal is that increases in thalamocortical FC are associated with the generalization of cognitive training, and tDCS facilitates these increases. The overarching goals of this proposal are to deploy neuroimaging and cognitive testing to understand how tDCS with cognitive training affect thalamocortical circuitry in individuals with and without psychosis and to examine variability in response within both groups. Study 1 will compare right prefrontal, left prefrontal and sham tDCS during concurrent cognitive training over 12 weeks in 90 healthy controls. Study 2 (NCT03896438) will be similar in all aspects but will examine 90 patients with schizophrenia or schizoaffective disorder and include clinical assessments. Results of the study will provide crucial information about location of stimulation, length of treatment, modeled dosage, trajectory and durability needed to guide future research and interventions for cognitive impairments.

Interventions

DEVICETranscranial direct current stimulation (tDCS)

Three different stimulation montages will be programmed: right, left and sham. During the Ramp periods, 2 mA current will be delivered to both AF3 and AF4 with an ascending (RampUp) and descending ramp (RampDown) over 30 sec via two saline soaked electrode sponges (\ 25cm²; current density = 0.08 mA/cm²). In this way, all subjects experience the same sensation on both sides to blind them to condition. During the Constant period, current will be set based on the Condition: Right - 2mA AF4 anode-AF3 cathode; Left - 2mA applied to AF3 anode-AF4 cathode; Sham - current turned off.

Sponsors

National Institute of Mental Health (NIMH)
CollaboratorNIH
University of Minnesota
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
TRIPLE (Subject, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
18 Years to 60 Years
Healthy volunteers
Yes

Inclusion criteria

1. Ability to provide consent and comply with study procedures. 2. Age 18 - 60 years old. 3. Estimated IQ range within the range: 70 ≤ IQ ≤ 115. 4. No Serious and Persistent Mental Illness (SPMI) or addictive disorder diagnosis as measured by the MINI (Mini International Neuropsychiatric Interview), or sleep disorder; 5. Ability to participate in three weekly 45' training sessions over 12 weeks and participate in four assessments.

Exclusion criteria

1. Any medical condition or treatment with neurological sequelae (e.g. stroke, tumor, loss of consciousness \> 30 min, HIV). 2. Contraindications for tDCS or MRI scanning (tDCS contraindication: history of seizures; MRI contraindications: The research team will utilize the CMRR Center's screening tools and adhere to the screening SOP during enrollment of all research participants in this protocol. The CMRR Center's screening tools and SOP are IRB approved under the CMRR Center Grant (HSC# 1406M51205) and information regarding screening procedures is publicly available on the CMRR website (CMRR Policies / Procedures).

Design outcomes

Primary

MeasureTime frameDescription
Changes in Thalamocortical Functional Connectivity (FC)baselineMost participants completed MRI sessions on a 3T scanner located in the Center for Magnetic Resonance Research (CMRR) at the University of Minnesota. FC measures how different brain regions change in activation together. We characterized FC using global connectivity from graph theory analysis. We extracted the fMRI time courses from 454 parcellations defined by the 400 S4 Schaefer Atlas (Schaefer et al., 2018) combined with the Melbourne Subcortex Atlas (Tian et al., 2020). We computed the absolute value of the Pearson's correlation for all possible pairs of time series, creating a 454x454 (N x N) connectivity matrix, which was then reduced to 10% most significant connections by subject. We estimated the FC by calculating the node strength for each parcellation, which is the weighted mean of all significant connections, from these connectivity matrices. Finally, we averaged node strength across parcellations to calculate global node strength. Higher values indicate more brain-wide FC.
Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.baselineTask-dependent thalamocortical connectivity associated with the N-back task was calculated by modeling the block task design together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. The primary analysis focused on the 2-back conditions alone. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during 2-back trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the 2-back choices. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).
Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.baselineTask-dependent thalamocortical connectivity associated with the Dot Pattern Expectancy (DPX) task demands will be identified by analyzing cue and probe events together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. We examined B-cue related connectivity. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during B-cue trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the B-cue responses. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).
D-prime ScorebaselineThe n-back task measures working memory capacity. The participant is presented with a series of stimuli and instructed to indicate with a button press when the current stimulus matches the stimulus that appeared a pre-determined number (n) of trials before. d' (d prime) will be calculated as a measure of signal detection, which indicates the normalized rate of hits to false positives (d' = z(H) - z(F)). Increase in d' signifies improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.
Changes in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite ScorebaselineIntends to provide a relatively brief evaluation of key cognitive domains relevant to schizophrenia and related disorders. The composite score is reported as a T-score, with a mean of 50 and standard deviation of 10. Higher values indicate greater cognitive functioning.
Changes in DPX Task Performancemid-test (week 6)The Dot Pattern Expectancy (DPX) task is an adaptation of the expectancy AX task that uses pairs of simple dot patterns rather than letter pairs as stimuli. The DPX task will be performed in 3 blocks. Each trial consists of a cue dot pattern followed by a probe dot pattern. Different combinations of cues and probes enable the identification of a specific deficit in a subject's ability to maintain goal-relevant information throughout a trial. Timing will be jittered and each block of the DPX task will consist of 40 trials: 24 AX (60%), 6 AY (15%), 6 BX (15%) and 4 BY (10%). Each block will last 6 minutes. d'-context will be calculated as a measure of signal detection, which indicates the normalized rate of AX hits to BX false positives (d' = z(H) - z(F)). Increase in d' -context signified improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Countries

United States

Participant flow

Participants by arm

ArmCount
Right Active-tDCS
2-3 times/week for 12 weeks: ramp-up for 30 seconds, 2mA right (AF4 anode - AF3 cathode) for 20 min, and then ramp-down for 30 seconds. Transcranial direct current stimulation (tDCS): Three different stimulation montages will be programmed: right, left and sham. During the Ramp periods, 2 mA current will be delivered to both AF3 and AF4 with an ascending (RampUp) and descending ramp (RampDown) over 30 sec via two saline soaked electrode sponges (\ 25cm²; current density = 0.08 mA/cm²). In this way, all subjects experience the same sensation on both sides to blind them to condition. During the Constant period, current will be set based on the Condition: Right - 2mA AF4 anode-AF3 cathode; Left - 2mA applied to AF3 anode-AF4 cathode; Sham - current turned off.
20
Left Active-tDCS
2-3 times/week for 12 weeks: ramp-up for 30 seconds, 2mA left (AF3 anode - AF4 cathode) for 20 min, and then ramp-down for 30 seconds. Transcranial direct current stimulation (tDCS): Three different stimulation montages will be programmed: right, left and sham. During the Ramp periods, 2 mA current will be delivered to both AF3 and AF4 with an ascending (RampUp) and descending ramp (RampDown) over 30 sec via two saline soaked electrode sponges (\ 25cm²; current density = 0.08 mA/cm²). In this way, all subjects experience the same sensation on both sides to blind them to condition. During the Constant period, current will be set based on the Condition: Right - 2mA AF4 anode-AF3 cathode; Left - 2mA applied to AF3 anode-AF4 cathode; Sham - current turned off.
18
Sham tDCS
Current will be turned off immediately after the initial 30-second ramp-up period. Transcranial direct current stimulation (tDCS): Three different stimulation montages will be programmed: right, left and sham. During the Ramp periods, 2 mA current will be delivered to both AF3 and AF4 with an ascending (RampUp) and descending ramp (RampDown) over 30 sec via two saline soaked electrode sponges (\ 25cm²; current density = 0.08 mA/cm²). In this way, all subjects experience the same sensation on both sides to blind them to condition. During the Constant period, current will be set based on the Condition: Right - 2mA AF4 anode-AF3 cathode; Left - 2mA applied to AF3 anode-AF4 cathode; Sham - current turned off.
20
Total58

Baseline characteristics

CharacteristicRight Active-tDCSLeft Active-tDCSSham tDCSTotal
Age, Categorical
<=18 years
0 Participants0 Participants0 Participants0 Participants
Age, Categorical
>=65 years
0 Participants0 Participants0 Participants0 Participants
Age, Categorical
Between 18 and 65 years
20 Participants18 Participants20 Participants58 Participants
Age, Continuous22.9 YEARS
STANDARD_DEVIATION 5.3
26.6 YEARS
STANDARD_DEVIATION 8.2
24.9 YEARS
STANDARD_DEVIATION 8.9
24.7 YEARS
STANDARD_DEVIATION 7.6
Race (NIH/OMB)
American Indian or Alaska Native
0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
Asian
4 Participants0 Participants4 Participants8 Participants
Race (NIH/OMB)
Black or African American
1 Participants1 Participants0 Participants2 Participants
Race (NIH/OMB)
More than one race
0 Participants2 Participants2 Participants4 Participants
Race (NIH/OMB)
Native Hawaiian or Other Pacific Islander
0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
Unknown or Not Reported
0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
White
15 Participants15 Participants14 Participants44 Participants
Sex/Gender, Customized
Female
7 Participants9 Participants6 Participants22 Participants
Sex/Gender, Customized
Male
13 Participants8 Participants14 Participants35 Participants
Sex/Gender, Customized
Nonbinary
0 Participants1 Participants0 Participants1 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
EG002
affected / at risk
deaths
Total, all-cause mortality
2 / 200 / 180 / 20
other
Total, other adverse events
2 / 200 / 180 / 20
serious
Total, serious adverse events
0 / 200 / 180 / 20

Outcome results

Primary

Changes in DPX Task Performance

The Dot Pattern Expectancy (DPX) task is an adaptation of the expectancy AX task that uses pairs of simple dot patterns rather than letter pairs as stimuli. The DPX task will be performed in 3 blocks. Each trial consists of a cue dot pattern followed by a probe dot pattern. Different combinations of cues and probes enable the identification of a specific deficit in a subject's ability to maintain goal-relevant information throughout a trial. Timing will be jittered and each block of the DPX task will consist of 40 trials: 24 AX (60%), 6 AY (15%), 6 BX (15%) and 4 BY (10%). Each block will last 6 minutes. d'-context will be calculated as a measure of signal detection, which indicates the normalized rate of AX hits to BX false positives (d' = z(H) - z(F)). Increase in d' -context signified improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in DPX Task Performance2.92 arbitrary unitsStandard Deviation 0.91
Left Active-tDCSChanges in DPX Task Performance3.72 arbitrary unitsStandard Deviation 0.81
Sham tDCSChanges in DPX Task Performance2.91 arbitrary unitsStandard Deviation 1.12
Primary

Changes in DPX Task Performance

The Dot Pattern Expectancy (DPX) task is an adaptation of the expectancy AX task that uses pairs of simple dot patterns rather than letter pairs as stimuli. The DPX task will be performed in 3 blocks. Each trial consists of a cue dot pattern followed by a probe dot pattern. Different combinations of cues and probes enable the identification of a specific deficit in a subject's ability to maintain goal-relevant information throughout a trial. Timing will be jittered and each block of the DPX task will consist of 40 trials: 24 AX (60%), 6 AY (15%), 6 BX (15%) and 4 BY (10%). Each block will last 6 minutes. d'-context will be calculated as a measure of signal detection, which indicates the normalized rate of AX hits to BX false positives (d' = z(H) - z(F)). Increase in d' -context signified improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in DPX Task Performance2.90 arbitrary unitsStandard Deviation 1.02
Left Active-tDCSChanges in DPX Task Performance3.71 arbitrary unitsStandard Deviation 0.45
Sham tDCSChanges in DPX Task Performance2.84 arbitrary unitsStandard Deviation 1.04
Primary

Changes in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score

Intends to provide a relatively brief evaluation of key cognitive domains relevant to schizophrenia and related disorders. The composite score is reported as a T-score, with a mean of 50 and standard deviation of 10. Higher values indicate greater cognitive functioning.

Time frame: follow up (week 24)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score60.8 T-scoreStandard Deviation 6.6
Left Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score61.1 T-scoreStandard Deviation 8.2
Sham tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score63.3 T-scoreStandard Deviation 8.1
Primary

Changes in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score

Intends to provide a relatively brief evaluation of key cognitive domains relevant to schizophrenia and related disorders. The composite score is reported as a T-score, with a mean of 50 and standard deviation of 10. Higher values indicate greater cognitive functioning.

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score59.1 T-scoreStandard Deviation 9.7
Left Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score62.2 T-scoreStandard Deviation 6.22
Sham tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score60.2 T-scoreStandard Deviation 11.2
Primary

Changes in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score

Intends to provide a relatively brief evaluation of key cognitive domains relevant to schizophrenia and related disorders. The composite score is reported as a T-score, with a mean of 50 and standard deviation of 10. Higher values indicate greater cognitive functioning.

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score57.9 T-scoreStandard Deviation 9.9
Left Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score57.8 T-scoreStandard Deviation 8.04
Sham tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score56.1 T-scoreStandard Deviation 10.8
Primary

Changes in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score

Intends to provide a relatively brief evaluation of key cognitive domains relevant to schizophrenia and related disorders. The composite score is reported as a T-score, with a mean of 50 and standard deviation of 10. Higher values indicate greater cognitive functioning.

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score53.3 T-scoreStandard Deviation 11.1
Left Active-tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score53.6 T-scoreStandard Deviation 6.01
Sham tDCSChanges in Measurement and Treatment Research to Improve Cognition in Schizophrenia (MATRICS) Consensus Cognitive Battery (MCCB) Composite Score54 T-scoreStandard Deviation 11.9
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.

Task-dependent thalamocortical connectivity associated with the Dot Pattern Expectancy (DPX) task demands will be identified by analyzing cue and probe events together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. We examined B-cue related connectivity. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during B-cue trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the B-cue responses. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.13 z-scoreStandard Deviation 0.49
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.14 z-scoreStandard Deviation 0.32
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.18 z-scoreStandard Deviation 0.36
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.

Task-dependent thalamocortical connectivity associated with the Dot Pattern Expectancy (DPX) task demands will be identified by analyzing cue and probe events together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. We examined B-cue related connectivity. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during B-cue trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the B-cue responses. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.16 z-scoreStandard Deviation 0.52
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.25 z-scoreStandard Deviation 0.36
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.25 z-scoreStandard Deviation 0.24
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.

Task-dependent thalamocortical connectivity associated with the Dot Pattern Expectancy (DPX) task demands will be identified by analyzing cue and probe events together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. We examined B-cue related connectivity. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during B-cue trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the B-cue responses. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.25 z-scoreStandard Deviation 0.42
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.09 z-scoreStandard Deviation 0.57
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the DPX Task.-0.44 z-scoreStandard Deviation 0.29
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.

Task-dependent thalamocortical connectivity associated with the N-back task was calculated by modeling the block task design together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. The primary analysis focused on the 2-back conditions alone. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during 2-back trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the 2-back choices. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.24 z-scoreStandard Deviation 0.48
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.38 z-scoreStandard Deviation 0.42
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.4 z-scoreStandard Deviation 0.49
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.

Task-dependent thalamocortical connectivity associated with the N-back task was calculated by modeling the block task design together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. The primary analysis focused on the 2-back conditions alone. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during 2-back trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the 2-back choices. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.58 z-scoreStandard Deviation 0.58
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.27 z-scoreStandard Deviation 0.48
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.29 z-scoreStandard Deviation 0.34
Primary

Changes in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.

Task-dependent thalamocortical connectivity associated with the N-back task was calculated by modeling the block task design together with the thalamic regressor using psychophysiological interaction analysis (PPI). The thalamic regressor is the time series of the mediodorsal thalamus from the Melbourne atlas. The primary analysis focused on the 2-back conditions alone. The PPI analysis calculates the functional connectivity between the mediodorsal thalamus and all other brain regions specifically during 2-back trials. Neural activation related to the thalamic regressor was compared to neural activation during the fixation (no choices made) to normalize the relative activation (z-score). Positive values indicate increased functional connectivity with the thalamus during the 2-back choices. A z-score of zero represents no difference compared to the fixation cross (no choices). We report the average z-score of the PPI regressor within the control network (Yeo et al., 2011).

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.33 z-scoreStandard Deviation 0.51
Left Active-tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.0.09 z-scoreStandard Deviation 0.54
Sham tDCSChanges in Task-dependent Thalamocortical Functional Connectivity (fMRI) During the N-back Task.-0.44 z-scoreStandard Deviation 0.44
Primary

Changes in Thalamocortical Functional Connectivity (FC)

Most participants completed MRI sessions on a 3T scanner located in the Center for Magnetic Resonance Research (CMRR) at the University of Minnesota. FC measures how different brain regions change in activation together. We characterized FC using global connectivity from graph theory analysis. We extracted the fMRI time courses from 454 parcellations defined by the 400 S4 Schaefer Atlas (Schaefer et al., 2018) combined with the Melbourne Subcortex Atlas (Tian et al., 2020). We computed the absolute value of the Pearson's correlation for all possible pairs of time series, creating a 454x454 (N x N) connectivity matrix, which was then reduced to 10% most significant connections by subject. We estimated the FC by calculating the node strength for each parcellation, which is the weighted mean of all significant connections, from these connectivity matrices. Finally, we averaged node strength across parcellations to calculate global node strength. Higher values indicate more brain-wide FC.

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)23.1 arbitrary unitsStandard Deviation 4.7
Left Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)19.8 arbitrary unitsStandard Deviation 4
Sham tDCSChanges in Thalamocortical Functional Connectivity (FC)24.2 arbitrary unitsStandard Deviation 3.5
Primary

Changes in Thalamocortical Functional Connectivity (FC)

Most participants completed MRI sessions on a 3T scanner located in the Center for Magnetic Resonance Research (CMRR) at the University of Minnesota. FC measures how different brain regions change in activation together. We characterized FC using global connectivity from graph theory analysis. We extracted the fMRI time courses from 454 parcellations defined by the 400 S4 Schaefer Atlas (Schaefer et al., 2018) combined with the Melbourne Subcortex Atlas (Tian et al., 2020). We computed the absolute value of the Pearson's correlation for all possible pairs of time series, creating a 454x454 (N x N) connectivity matrix, which was then reduced to 10% most significant connections by subject. We estimated the FC by calculating the node strength for each parcellation, which is the weighted mean of all significant connections, from these connectivity matrices. Finally, we averaged node strength across parcellations to calculate global node strength. Higher values indicate more brain-wide FC.

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)22.7 arbitrary unitsStandard Deviation 4
Left Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)20.5 arbitrary unitsStandard Deviation 4
Sham tDCSChanges in Thalamocortical Functional Connectivity (FC)21.9 arbitrary unitsStandard Deviation 2.8
Primary

Changes in Thalamocortical Functional Connectivity (FC)

Most participants completed MRI sessions on a 3T scanner located in the Center for Magnetic Resonance Research (CMRR) at the University of Minnesota. FC measures how different brain regions change in activation together. We characterized FC using global connectivity from graph theory analysis. We extracted the fMRI time courses from 454 parcellations defined by the 400 S4 Schaefer Atlas (Schaefer et al., 2018) combined with the Melbourne Subcortex Atlas (Tian et al., 2020). We computed the absolute value of the Pearson's correlation for all possible pairs of time series, creating a 454x454 (N x N) connectivity matrix, which was then reduced to 10% most significant connections by subject. We estimated the FC by calculating the node strength for each parcellation, which is the weighted mean of all significant connections, from these connectivity matrices. Finally, we averaged node strength across parcellations to calculate global node strength. Higher values indicate more brain-wide FC.

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)23 arbitrary unitsStandard Deviation 4.3
Left Active-tDCSChanges in Thalamocortical Functional Connectivity (FC)20.3 arbitrary unitsStandard Deviation 2.8
Sham tDCSChanges in Thalamocortical Functional Connectivity (FC)23.8 arbitrary unitsStandard Deviation 3.5
Primary

D-prime Score

The n-back task measures working memory capacity. The participant is presented with a series of stimuli and instructed to indicate with a button press when the current stimulus matches the stimulus that appeared a pre-determined number (n) of trials before. d' (d prime) will be calculated as a measure of signal detection, which indicates the normalized rate of hits to false positives (d' = z(H) - z(F)). Increase in d' signifies improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: post-test (week 12)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSD-prime Score3.22 arbitrary unitsStandard Deviation 0.88
Left Active-tDCSD-prime Score3.37 arbitrary unitsStandard Deviation 0.75
Sham tDCSD-prime Score3.18 arbitrary unitsStandard Deviation 1.27
Primary

D-prime Score

The n-back task measures working memory capacity. The participant is presented with a series of stimuli and instructed to indicate with a button press when the current stimulus matches the stimulus that appeared a pre-determined number (n) of trials before. d' (d prime) will be calculated as a measure of signal detection, which indicates the normalized rate of hits to false positives (d' = z(H) - z(F)). Increase in d' signifies improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSD-prime Score2.45 arbitrary unitsStandard Deviation 0.95
Left Active-tDCSD-prime Score2.34 arbitrary unitsStandard Deviation 0.58
Sham tDCSD-prime Score2.66 arbitrary unitsStandard Deviation 0.93
Primary

D-prime Score

The n-back task measures working memory capacity. The participant is presented with a series of stimuli and instructed to indicate with a button press when the current stimulus matches the stimulus that appeared a pre-determined number (n) of trials before. d' (d prime) will be calculated as a measure of signal detection, which indicates the normalized rate of hits to false positives (d' = z(H) - z(F)). Increase in d' signifies improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: mid-test (week 6)

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSD-prime Score3.24 arbitrary unitsStandard Deviation 0.74
Left Active-tDCSD-prime Score3.07 arbitrary unitsStandard Deviation 0.52
Sham tDCSD-prime Score3 arbitrary unitsStandard Deviation 1.05
Primary

D-prime Score

The Dot Pattern Expectancy (DPX) task is an adaptation of the expectancy AX task that uses pairs of simple dot patterns rather than letter pairs as stimuli. The DPX task will be performed in 3 blocks. Each trial consists of a cue dot pattern followed by a probe dot pattern. Different combinations of cues and probes enable the identification of a specific deficit in a subject's ability to maintain goal-relevant information throughout a trial. Timing will be jittered and each block of the DPX task will consist of 40 trials: 24 AX (60%), 6 AY (15%), 6 BX (15%) and 4 BY (10%). Each block will last 6 minutes. d'-context will be calculated as a measure of signal detection, which indicates the normalized rate of AX hits to BX false positives (d' = z(H) - z(F)). Increase in d' -context signified improved signal detection, i.e. a better outcome. A d' near zero indicates a performance at chance, i.e., a poor performance.

Time frame: baseline

ArmMeasureValue (MEAN)Dispersion
Right Active-tDCSD-prime Score3.47 arbitrary unitsStandard Deviation 0.88
Left Active-tDCSD-prime Score3.36 arbitrary unitsStandard Deviation 0.75
Sham tDCSD-prime Score3.10 arbitrary unitsStandard Deviation 0.91

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026