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NCT Number: NCT05440955

tDCS for Cognitive Impairment Associated With Recent-onset Schizophrenia

Background: In parallel to the traditional symptomatology, deficits in cognition (memory, attention, reasoning, social functioning) contribute significantly to disability and suffering in individuals with schizophrenia. Cognitive deficits have been closely linked to alterations in early auditory processes (EAP) that occur in auditory cortical areas. Preliminary evidence indicates that cognitive deficits in schizophrenia can be improved with a reliable and safe non-invasive brain stimulation technique called tDCS (transcranial Direct Current Stimulation). However, a significant proportion of patients derive no cognitive benefits after tDCS treatment. Further, the neurobiological mechanisms of cognitive changes after tDCS have been poorly explored in trials and are thus still unclear.

Method: The study is designed as a randomized, double-blind, 2-arm parallel-group, sham controlled, 4-centers trial. Sixty participants with recent-onset schizophrenia and cognitive impairment will be randomly allocated to receive either active (n=30) or sham (n=30) tDCS (20-min, 2-mA, 10 sessions during 5 consecutive weekdays). The anode will be placed over the left dorsolateral prefrontal cortex and the cathode over the left auditory cortex. Cognition, tolerance, symptoms, general outcome and EAP (measured with EEG and multimodal MRI) will be assessed prior to tDCS (baseline), after the 10 sessions, and at 1- and 3-month follow-up. The primary outcome will be the number of responders, defined as participants demonstrating a cognitive improvement ≥Z=0.5 from baseline on the MATRICS Consensus Cognitive Battery total score at 1-month follow-up. Additionally, we will measure how differences in EAP modulate individual cognitive benefits from active tDCS and whether there are changes in EAP measures in responders after active tDCS.

Discussion: Besides proposing a new fronto-temporal tDCS protocol by targeting the auditory cortical areas, we aim to conduct an RCT with follow-up assessments up to 3-months and a large sample size. In addition, this study will allow identifying and assessing the value of a wide range of neurobiological EAP measures for predicting and explaining cognitive deficits improvement after tDCS. The results of this trial will constitute a step toward the use of tDCS as a therapeutic tool for the treatment of cognitive impairment in recent-onset schizophrenia.

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Key information

Age range

18 year–35 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

CHU Grenoble Alpes, La Tronche, Auvergne-Rhône-Alpes, France

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Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

The inclusion criteria include:

  • subjects of both genders, diagnosed with recent-onset schizophrenia (first 3 years of illness), confirmed through the Structured Clinical Interview for the American Psychiatric Association Diagnostic and Statistical Manual of Mental Disorders, 5th edition (SCID-5);
  • aged 18-35 years;
  • intelligence quotient (IQ) > 55;
  • cognitive deficit confirmed by a MCCB (MATRICS Cognitive Consensus Battery) total score T-score < 40;
  • the subjects should be receiving stable doses of antipsychotics for ≥ 4 weeks;
  • the subjects are covered by a public health insurance.

The exclusion criteria include:

  • pregnant (controlled by urine pregnancy test in females of childbearing age) or breastfeeding women;
  • unstable or acute medical conditions;
  • subjects who receive involuntary treatment or guardianship;
  • history of cranioencephalic trauma with loss of consciousness or central nervous system diseases that affect the brain;
  • use of drugs that affect cognitive performance such as anticholinergic agents and benzodiazepines;
  • current diagnosis of substance abuse or history of substance dependence in the last 6 months, except nicotine;
  • MRI (Magnetic Resonance Imaging), PET (Positron Emission Tomography) or tDCS (transcranial Direct Current Stimulation) contraindications

Treatment and study plan

left fronto-temporal transcranial Direct Current Stimulation (tDCS)

Device

The study intervention consists of ten 20-minutes sessions of active or sham tDCS. Sessions will be delivered twice daily and separated by at least 2 hours for 5 consecutive weekdays. The electric current will be generated by an electric stimulator (class IIa medical device). During the entire tDCS session, the subject is at "rest", comfortably seated in a chair in a quiet room. A clinician will be present for the entire session duration. The current will be applied via a pair of rubber electrodes (35 cm²) placed on the surface of the scalp. The anode will be placed over the left dorsolateral prefrontal cortex. The cathode will be placed over the left auditory cortex. The stimulation parameters will be set at 2-mA for 20 minutes, with a progressive increase during the first 30-sec and a progressive decrease during the last 30-sec of each session. The impedance of the applied current is monitored by the stimulator during each session.

Primary outcomes

  1. Cognitive response

    Time frame: at 1-month follow-up

    Number of responders at 1-month after tDCS, defined as the proportion of patients demonstrating a cognitive improvement greater than or equal to Z=0.5 from baseline on the MATRICS Consensus Cognitive Battery total score (MCCB). The MCCB is a gold-standard standardized test battery to assess cognitive functions in patients with schizophrenia. This criterion has been used and validated in both antipsychotic and cognitive remediation trials in schizophrenia.

Secondary outcomes

  1. Long term cognitive response

    Time frame: at inclusion; at 3-months follow-up

    Number of responders at 3-months after tDCS, defined as the proportion of patients demonstrating a cognitive improvement greater than or equal to Z=0.5 from baseline on the MATRICS Consensus Cognitive Battery total score (MCCB). The MCCB is a gold-standard standardized test battery to assess cognitive functions in patients with schizophrenia. This criterion has been used and validated in both antipsychotic and cognitive remediation trials in schizophrenia.

  2. Cognitive domain response

    Time frame: at inclusion; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to 1-month and 3-months endpoints in each MCCB domains subscores (processing speed, attention/vigilance, working memory, verbal learning, visual learning, problem solving, emotional awareness) and total score.

  3. Clinical response 1

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Schizophrenia symptoms will be assessed using the PANSS (Positive and Negative Syndrome Scale) total score.
  4. Clinical response 2

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Auditory hallucinations, one of the key symptoms of schizophrenia, will be assessed using the AHRS (Auditory Hallucination Rating Scale)
  5. Clinical response 3

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Negative symptoms will be additionally assessed using the Brief Negative Symptom Scale (BNSS).
  6. Clinical response 4

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Depressive symptoms will be assessed using the Calgary Depression Scale for Schizophrenia (CDSS) total score.
  7. Clinical response 5

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Global symptom severity and treatment response will be assessed using the Clinical Global Impressions Scale (CGI) total score.
  8. Clinical response 6

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Subjective experience of negative symptoms will be assessed using the Self-evaluation of Negative Symptoms (SNS) total score
  9. Clinical response 7

    Time frame: at inclusion; at 1-week; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to after tDCS, 1-month and 3-months endpoints in the following symptom measure:

    • Subjective experiences of cognitive impairment will be assessed using the self-rated Subjective Scale To Investigate Cognition in Schizophrenia (SSTICS) total score.
  10. Outcome response 1

    Time frame: at inclusion; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to 1-month and 3-months endpoints in the following general outcome measures:

    • Functional outcome will be assessed using the FROGS (Functional Remission Observatory Group in Schizophrenia) total score
  11. Outcome response 2

    Time frame: at inclusion; at 1-month follow-up; at 3-months follow-up

    Changes from baseline to 1-month and 3-months endpoints in the following general outcome measures:

    • Quality of life will be assessed by the Schizophrenia Quality of Life Questionnaire Short Form (S-QoL 18) total score
  12. Tolerance 1

    Time frame: at 1-week

    Score after the last tDCS session in the following tolerance measure:

    • tDCS-AEQ (Adverse Effects Questionnaire)
  13. Tolerance 2

    Time frame: at 1-week

    Score after the last tDCS session in the following tolerance measure:

    • VAMS (Visual Analogue Mood Scale)
  14. Response marker 1

    Time frame: at inclusion

    The differences at baseline in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • correlations (z-scores) between left prefrontal and temporal cortical areas (i.e., areas stimulated with tDCS) measured with resting-state functional Magnetic Resonance Imaging (MRI).
  15. Response marker 2

    Time frame: at inclusion

    The differences at baseline in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • spectral power (dB) in gamma frequency (40-Hz) during specific auditory paradigms (auditory steady-state, oddball, tone-matching) measured with electroencephalography (EEG).
  16. Response marker 3

    Time frame: at inclusion

    The differences at baseline in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • inter-assay coherence (%) in gamma frequency (40-Hz) during specific auditory paradigms (auditory steady-state, oddball, tone-matching) measured with electroencephalography (EEG).
  17. Response marker 4

    Time frame: at inclusion

    The differences at baseline in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • GABA and Glutamate levels (mM) within left prefrontal and temporal cortical areas measured with resting-state Magnetic Resonance Spectroscopy (MRS)
  18. Response marker 5

    Time frame: at inclusion

    The differences at baseline in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • radiotracer binding potential on GABA-A receptors (Binding Potential) within left prefrontal and temporal cortical areas measured with resting-state [11C]flumazenil Positron Emission Tomography MRI (PET-MRI).
  19. Response predictor 1

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline to 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • correlations (z-scores) between left prefrontal and temporal cortical areas (i.e., areas stimulated with tDCS) measured with resting-state functional Magnetic Resonance Imaging (MRI).
  20. Response predictor 2

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline to 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • spectral power (dB) in gamma frequency (40-Hz) during specific auditory paradigms (auditory steady-state, oddball, tone-matching) measured with electroencephalography (EEG).
  21. Response predictor 3

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline to 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • inter-assay coherence (%) in gamma frequency (40-Hz) during specific auditory paradigms (auditory steady-state, oddball, tone-matching) measured with electroencephalography (EEG).
  22. Response predictor 4

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline to 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • GABA and Glutamate levels (mM) within left prefrontal and temporal cortical areas measured with resting-state Magnetic Resonance Spectroscopy (MRS)
  23. Response predictor 5

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline to 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • GABA and Glutamate levels (mM) within left prefrontal and temporal cortical areas measured with resting-state Magnetic Resonance Spectroscopy (MRS)
  24. Response predictor 6

    Time frame: at inclusion; at 1-month follow-up

    Changes from baseline 1-month in the following early auditory processing (EAP) measure between patients with cognitive improvement and patients without cognitive improvement after active tDCS:

    • radiotracer binding potential on GABA-A receptors (Binding Potential) within left prefrontal and temporal cortical areas measured with resting-state [11C]flumazenil Positron Emission Tomography MRI (PET-MRI).

Study contacts

Contact information is provided by the study sponsor or research team.

Julien COLOMBAT

CONTACT

[email protected]

04 76 76 56 09

Sponsors and collaborators

Lead sponsor

University Hospital, Grenoble

Other

Collaborators

  • Direction Générale de l'Offre de Soins

Registry information

Official study title

Efficacy and Auditory Biomarker Analysis of Fronto-Temporal Transcranial Direct Current Stimulation (tDCS) in Targeting Cognitive Impairment Associated With Recent-onset Schizophrenia: A Randomized Double-blind Sham-controlled Trial

Acronym: STICOG

Important dates

Study start
2023
Primary completion
2026
Study completion
2027
First posted
Jul 1, 2022
Registry last updated
Apr 4, 2023

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

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This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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