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Идёт набор NCT07748091

EEG Microstate Parameters and Neuroinflammatory Biomarkers in Patients With Treatment-Resistant Major Depressive Disorder Receiving ECT

Наблюдательное Major Depression Moderate Major Depression Severe Major Depression With Comorbid Anxiety Symptoms Major Depression With Panic Attacks

Ориентир для пациента и семьи

Простыми словами

Автоматическая сводка по структурированным данным реестра. Она помогает сориентироваться, но не заменяет официальный протокол или оценку врача.

Что изучают
В протоколе указаны: Electroconvulsive Therapy.
Кому может быть актуально
Состояния в реестре: Major Depression Moderate, Major Depression Severe, Major Depression With Comorbid Anxiety Symptoms, Major Depression With Panic Attacks. Базовые параметры: 18 лет — 60 лет · Все.
Что важно проверить
Возраст, диагноз и пол — только базовые ориентиры. Предыдущее лечение, анализы и другие обязательные условия указаны ниже в критериях участия.
Где проводится
Turkey (Türkiye)
Следующий шаг
Сохраните исследование, покажите его лечащему врачу и уточните актуальный статус у исследовательского центра. Расходы, документы и поездка →
Официальное название

The Relationship of EEG Microstate Parameters and Neuroinflammatory Biomarkers With Treatment Response in Patients With Treatment-Resistant Major Depressive Disorder Receiving Electroconvulsive Therapy

Обзор

This study aims to investigate the neurophysiological and inflammatory changes associated with electroconvulsive therapy (ECT) in patients diagnosed with Major Depressive Disorder who are resistant to at least two antidepressant treatments, using microstate analysis derived from resting-state electroencephalography (EEG) recordings. Within this scope, EEG recordings obtained before and after ECT will be compared to determine the relationships between changes in microstate parameters and inflammatory marker levels, clinical variables, and psychometric scale scores reflecting clinical improvement. Peripheral blood samples collected from the same patient group will be analyzed for complete blood count parameters as well as levels of interleukin-1 alpha (IL-1α), interleukin-1 beta (IL-1β), interleukin-2 (IL-2), interleukin-6 (IL-6), interleukin-8 (IL-8), interleukin-10 (IL-10), tumor necrosis factor-alpha (TNF-α), soluble glycoprotein 130 (sgp-130), soluble interleukin-6 receptor (sIL-6R), interferon gamma-induced protein 10 kDa (IP-10), and C-reactive protein (CRP). In addition, inflammatory indices, including the Neutrophil-to-Lymphocyte Ratio (NLR), Platelet-to-Lymphocyte Ratio (PLR), and Monocyte-to-Lymphocyte Ratio (MLR), will be calculated. The association between baseline levels of these biomarkers and treatment response will be evaluated. Moreover, changes in biomarker levels following ECT will be statistically examined in relation to clinical scale scores and EEG microstate parameters. Although microstate analysis and inflammatory biomarkers have each been extensively investigated in psychiatric disorders, studies evaluating these two biomarkers together, particularly with the inclusion of healthy control participants, remain limited. In this regard, the present study aims to evaluate the effects of ECT on patients with treatment-resistant depression using objective neurophysiological indicators, to contribute to the understanding of the pathophysiology of depression at the level of brain networks, and to provide a scientific basis for the development of personalized treatment approaches in the future.

Подробное описание

Treatment-resistant depression (TRD) is defined as the failure to achieve an adequate clinical response to at least two antidepressant medications administered at appropriate doses and durations in individuals diagnosed with Major Depressive Disorder (MDD). TRD is associated with an increased risk of suicide, impaired social functioning, higher rates of hospitalization, and substantial economic burden. For this patient population, in whom conventional pharmacotherapy and psychotherapy often fail to provide sufficient benefit, electroconvulsive therapy (ECT) remains one of the most effective treatment options available. However, the mechanisms underlying the therapeutic effects of ECT have not been fully elucidated, and numerous biological, neurochemical, and structural hypotheses have been proposed.

Electroencephalography (EEG) is a non-invasive neurophysiological method capable of measuring the brain's electrical activity with high temporal resolution. Microstate analysis of EEG data focuses on brief periods of stable scalp topographies that are thought to represent transient states of large-scale neural networks. Each microstate is considered a temporary representation of a specific neural network, and parameters such as duration, occurrence, coverage, and transition probabilities provide valuable information about the brain's functional organization and dynamic stability. Although EEG-based studies investigating the effects of ECT on neuroplasticity, neurotransmitter systems, hippocampal volume, functional connectivity, and electrophysiological dynamics have gained increasing attention in recent years, research specifically focusing on microstate analysis remains limited. Existing studies are often characterized by small sample sizes, heterogeneity in treatment parameters, and potential confounding effects on microstate measures, highlighting the need for more comprehensive and controlled investigations in this field.

Accordingly, the present study aims to investigate the neurophysiological changes induced by ECT in individuals diagnosed with treatment-resistant depression through resting-state EEG microstate analysis. EEG recordings obtained before and after ECT will be compared to evaluate whether significant changes occur in microstate parameters, including duration, occurrence, coverage, and transition probabilities. Furthermore, the relationships between changes in microstate parameters and psychometric scale scores reflecting clinical improvement, together with other clinical variables, will be examined. Thus, not only the neurophysiological effects of ECT but also their associations with clinical outcomes will be comprehensively evaluated.

Another objective of the study is to investigate whether baseline EEG microstate characteristics may serve as potential biomarkers capable of predicting clinical response to ECT. By identifying neurophysiological indicators associated with favorable treatment outcomes, the study aims to advance predictive models for individualized treatment planning.

Through these aspects, the study seeks to evaluate the effects of ECT on patients with treatment-resistant depression using objective neurophysiological indicators, to contribute to the understanding of the pathophysiology of depression at the level of brain networks, and to provide a scientific basis for future personalized treatment approaches.

Materials and Methods

The study will include voluntary patients between 18 and 60 years of age diagnosed with Major Depressive Disorder according to DSM-5 criteria, who have failed to respond to at least two antidepressant treatments and have been referred for ECT at the Department of Psychiatry, Cerrahpaşa Faculty of Medicine. Written informed consent will be obtained from all participants before enrollment.

The healthy control group will consist of age- and sex-matched volunteers aged 18 to 60 years who do not use any medication that may significantly influence EEG activity or inflammatory biomarkers and who do not have a current neurological or psychiatric disorder. Healthy controls will also provide written informed consent before participation. EEG recordings will be obtained once and will serve as reference data for normal brain activity.

ECT will be administered using the Thymatron System IV Integrated ECT Device under general anesthesia according to standard clinical protocols. Treatments will be delivered using bilateral electrode placement with brief-pulse square-wave stimulation. The duration of treatment, number of sessions, and stimulation parameters will be determined according to each patient's clinical condition.

Resting-state EEG recordings will be obtained from all participants within one week before the initiation of ECT and again during the 14 days up to 6 days and 8 weeks up to 6 days following completion of the ECT course. EEG data will be recorded using a computerized 19-channel EEG system with Ag-AgCl disc electrodes placed according to the international 10-20 system. The average of the A1 and A2 earlobe electrodes will be used as the reference. Recordings will be sampled at 512 Hz, with a high-pass filter of 0.30 Hz, a low-pass filter of 70 Hz, and an additional 50 Hz notch filter.

Participants will be instructed to remain relaxed, quiet, and motionless under supervision during the recording procedure. EEG acquisition will consist of 5 minutes with eyes open, followed by 5 minutes with eyes closed. Raw EEG data will undergo preprocessing, including artifact removal, band-pass filtering, and re-referencing, before analysis.

Microstate analysis will be performed using MICROSTATELAB v2.1, an EEGLAB extension. Four canonical microstate classes (A, B, C, and D) will be identified. The following microstate parameters will be calculated for each participant and used in subsequent statistical analyses:

Duration: The average time (in milliseconds) during which a microstate remains stable once activated, reflecting the stability of the underlying neural network.

Occurrence: The average number of times a given microstate appears per second (Hz), reflecting the activation tendency of the associated neural network.

Coverage: The percentage of total recording time occupied by a specific microstate, indicating the relative contribution of that neural network over time.

Transition Probability (TP): The probability of transitioning from one microstate to another. For example, the transition probability from microstate A to microstate B is calculated as the number of A-to-B transitions divided by the total number of transitions from A to all other microstate classes. This parameter provides insight into the sequential activation dynamics of neural networks.

Before ECT initiation and 2 and 8 weeks after the cessation of ECT sessions, participants will complete a sociodemographic data form, the Hamilton Depression Rating Scale (HAM-D), Hamilton Anxiety Rating Scale (HAM-A), Beck Depression Inventory (BDI), Beck Anxiety Inventory (BAI), Beck Scale for Suicide Ideation (BSSI), Montgomery-Asberg Depression Rating Scale (MADRS), Clinical Global Impression Scale (CGI), the Mini-Mental State Examination (MMSE), and the Center for Epidemiologic Studies-Depression (CES-D). These assessments will be repeated before the post-treatment EEG recording.

Treatment response on the BDI will be defined as a reduction of at least 50% from baseline scores, while remission will be defined as a total score of 10 or lower. Similarly, for the HAM-D-17, treatment response will be defined as a reduction of at least 50% from baseline scores, and remission will be defined as a total score below 7.

Peripheral venous blood samples will be collected from all patients at three time points: within one week before the initiation of ECT and during the second and eighth weeks following completion of the ECT treatment course. All blood samples will be obtained in the morning after an overnight fast.

A total of 10 mL of venous blood will be collected from each participant between 7.30-9.30 am in the fasting state. Blood samples will be divided into EDTA-containing tubes for complete blood count analyses and serum separator tubes for biochemical and inflammatory biomarker measurements.

Following collection, serum samples will be centrifuged and aliquoted according to standard laboratory procedures. All serum specimens will be stored at -80°C until biochemical analyses are performed.

Study Timeline

Ethics committee approval is planned during the first month of the study. Participant recruitment will take place between months 2 and 6, followed by data analysis and completion of the study between months 6 and 8.

Statistical Analysis

Sample size estimation will be performed using G\*Power v3.1.9 (Faul et al., 2009), assuming an effect size of 0.70 and a statistical power (1-β) of 0.85. The power analysis indicated that a minimum of 31 patients and 31 healthy controls are required. The sample size calculation was based on clinical treatment response as the primary outcome measure.

EEG data will be analyzed using EEGLAB running on MATLAB. Statistical analyses will be conducted using SPSS version 27. Continuous variables will be analyzed using one-way analysis of variance (ANOVA) when comparing more than two groups. Appropriate post-hoc analyses will follow significant findings. Categorical variables will be analyzed using chi-square tests. Relationships between continuous variables will be evaluated using Pearson correlation coefficients. Independent group comparisons will be performed using the Paired Samples t-test. For within-subject comparisons of pre- and post-treatment measures, paired-samples t-tests or non-parametric equivalents will be employed as appropriate.

Вмешательства

  • Устройство Electroconvulsive Therapy
    ECT will be administered using the Thymatron System IV Integrated ECT Device under general anesthesia, in accordance with standard clinical protocols. Treatments will be delivered using bilateral electrode placement with brief-pulse square-wave stimulation, and if side effects are seen, right unilateral electrode placement will be applied. The duration of treatment, number of sessions, and stimulation parameters will be determined according to each patient's clinical condition.

Первичные конечные точки

  • Clinical Response and Remission Assessed by the Montgomery-Åsberg Depression Rating Scale [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Hamilton Depression Rating Scale [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • EEG Microstate Duration [Срок оценки: These assessments will be repeated within 1 week before ECT starts and 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • EEG Microstate Occurrence [Срок оценки: These assessments will be repeated within 1 week before ECT starts and 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • EEG Microstate Coverage [Срок оценки: These assessments will be repeated within 1 week before ECT starts and 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • EEG Microstate Transition Probability [Срок оценки: These assessments will be repeated within 1 week before ECT starts and 14+6 days and 8 weeks + 6 days after ECT cessation.]
Вторичные конечные точки (12)
  • Correlation between baseline neuroinflammatory biomarkers and treatment response [Срок оценки: These assessments will be repeated at three time points: within 1 week before ECT starts, 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Correlation between baseline neuroinflammatory biomarkers and treatment response [Срок оценки: These assessments will be repeated at three time points: within 1 week before ECT starts, 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Correlation between changes in neuroinflammatory biomarkers and EEG microstate parameters [Срок оценки: These assessments will be repeated at three time points: within one week before ECT starts, 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Inflammatory indices derived from complete blood count [Срок оценки: These assessments will be repeated within 1 week before ECT starts and 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Inflammatory indices derived from complete blood count [Срок оценки: These assessments will be repeated within 1 week before ECT starts, and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Inflammatory indices derived from complete blood count [Срок оценки: These assessments will be repeated within 1 week before ECT starts, at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Clinical Global Impression- Severity [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Beck Scale for Suicidal Ideation [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Hamilton Anxiety Scale [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Beck Anxiety Scale [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Beck Depression Inventory [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]
  • Clinical Response Assessed by Center for Epidemiologic Studies Depression Scale [Срок оценки: These assessments will be repeated within 1 week before ECT starts and at 14+6 days and 8 weeks + 6 days after ECT cessation.]

Критерии участия

Критерии включения

Patient Group

  • Age 18-60 years
  • Diagnosis of Major Depressive Disorder, current major depressive episode, according to DSM-5 criteria.
  • Clinical indication for electroconvulsive therapy (ECT).
  • Ability to provide written informed consent.
  • Willingness to participate in the study.

Healthy Control Group:

  • Age ≥55 years.
  • No current psychiatric disorder.
  • No known neurological disorder.
  • Good general physical health.
  • No current use of medications known to affect EEG activity or inflammatory biomarkers significantly.
  • Ability to provide written informed consent.
  • Willingness to participate in the study.

Критерии исключения

  • Primary neurological disorders (e.g., dementia or traumatic brain injury).
  • Schizophrenia or other psychotic disorders.
  • Bipolar disorder diagnosis,
  • Intracranial space-occupying lesions.
  • Increased intracranial pressure.
  • Myocardial infarction within the previous 3 months.
  • Cerebrovascular disease within the previous month.
  • Unstable cerebral aneurysm.
  • Pheochromocytoma.
  • Electroconvulsive therapy (ECT) or transcranial magnetic stimulation (TMS) within the previous month.
  • Cognitive impairment severe enough to prevent adequate cooperation during EEG recording.
  • Current alcohol or substance use disorder.
  • Active infectious disease.
  • Autoimmune or chronic inflammatory disorders.
  • Current use of systemic corticosteroids, immunosuppressive agents, or other medications known to affect inflammatory biomarkers significantly.

Критерии приведены из реестра в оригинале (на английском). Окончательную оценку соответствия проводит исследовательский центр.

Здоровые добровольцы: Да

Дизайн исследования

Модель наблюдения
Случай-контроль

Центры проведения

Turkey (Türkiye) · 1 центр
  • İstanbul University- Cerrahpasa, Cerrahpasa Medicine Faculty, Psychiatry Department — Istanbul

Публикации

  • Berlim MT, Turecki G. Definition, assessment, and staging of treatment-resistant refractory major depression: a review of current concepts and methods. Can J Psychiatry. 2007 Jan;52(1):46-54. doi: 10.1177/070674370705200108. PMID 17444078
  • Atluri S, Wong W, Moreno S, Blumberger DM, Daskalakis ZJ, Farzan F. Selective modulation of brain network dynamics by seizure therapy in treatment-resistant depression. Neuroimage Clin. 2018;20:1176-1190. doi: 10.1016/j.nicl.2018.10.015. Epub 2018 Oct 17. PMID 30388600
  • Brodbeck V, Kuhn A, von Wegner F, Morzelewski A, Tagliazucchi E, Borisov S, Michel CM, Laufs H. EEG microstates of wakefulness and NREM sleep. Neuroimage. 2012 Sep;62(3):2129-39. doi: 10.1016/j.neuroimage.2012.05.060. Epub 2012 May 30. PMID 22658975
  • Sackeim HA, Prudic J, Nobler MS, Fitzsimons L, Lisanby SH, Payne N, Berman RM, Brakemeier EL, Perera T, Devanand DP. Effects of pulse width and electrode placement on the efficacy and cognitive effects of electroconvulsive therapy. Brain Stimul. 2008 Apr;1(2):71-83. doi: 10.1016/j.brs.2008.03.001. PMID 19756236

Идентификаторы

NCT: NCT07748091 · CerrahpasaMED · E-24687260-604.01-1463071

Первоисточники (государственные реестры)

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