The goal of this clinical trial is to learn whether right dorsolateral prefrontal cortex (right DLPFC)-targeted fNIRS-BCI online closed-loop neurofeedback, delivered with slow-wave acoustic cueing, can reduce anxiety symptoms and improve cardiac autonomic regulation in women with recurrent pregnancy loss (RPL) and comorbid anxiety (women aged 18-45 years, right-handed, currently not pregnant or in a missed miscarriage state). The main questions it aims to answer are: Does real neurofeedback increase the proportion of participants who achieve an anxiety treatment response (defined as ≥50% reduction in Hamilton Anxiety Rating Scale \[HAMA\] total score from baseline) compared with sham feedback, at end of treatment and at 3-month follow-up? Is the intervention safe and well tolerated, as reflected by between-group differences in adverse events during the training period? Do brain and autonomic measures show between-group differences during the first formal session, including right DLPFC HbO downregulation, interhemispheric DLPFC synchronisation, heart rate (HR), and heart rate variability (HRV) indices? Researchers will compare real right DLPFC neurofeedback to sham feedback (identical procedures and displays but weakened coupling to real-time neural activity) to see if real neurofeedback improves anxiety outcomes and brain-heart autonomic regulation. Participants will: Complete screening, baseline clinical assessments, and physical examination Be randomly assigned (1:1) to real neurofeedback or sham feedback Complete 3 days of adaptation training followed by 3 weeks of training (15 sessions; one weekday session per day; \~20 minutes each) using a block design with slow-wave acoustic cueing (1 Hz amplitude-modulated tone; 20 s rest + 40 s cueing per block; 20 blocks/session) Undergo fNIRS recording in all sessions, with ECG recorded in session 1 only (for HR/HRV analyses) Receive matched, guideline-informed cognitive-behavioural therapy (CBT) during the intervention period Complete anxiety-related assessments at baseline, \~1 hour after the final session, and 3 months after treatment, with adverse events monitored throughout the intervention period
This study is a mechanistically informed, prospective, randomized, sham-controlled, parallel-group clinical trial designed to evaluate whether right dorsolateral prefrontal cortex (right DLPFC)-targeted fNIRS-BCI online closed-loop neurofeedback, delivered with slow-wave acoustic cueing, improves anxiety symptoms and cardiac autonomic regulation in women with recurrent pregnancy loss (RPL) and comorbid anxiety. Participants who meet eligibility criteria will be randomized in a 1:1 ratio to either real neurofeedback or sham feedback, with identical visit structure and procedures across groups. The intervention will use an online neurofeedback pipeline to estimate right DLPFC activation from fNIRS signals in real time and present a visual activation bar to guide volitional downregulation of the target region during slow-wave acoustic cueing. The sham condition will use the same interface, cueing, and workflow but with feedback parameters configured to substantially weaken effective coupling between the displayed feedback and the participant's instantaneous neural state. fNIRS will be recorded across all training sessions, and ECG will be recorded during the first formal training session only to quantify heart rate and heart rate variability and to support mechanistic analyses of short-term brain-heart coupling during the task. Clinical outcomes will focus on changes in anxiety severity over time, assessed at baseline, at the end of treatment, and at 3-month follow-up. Neurophysiological endpoints will be derived from the first formal session to characterize task-related right DLPFC downregulation, interhemispheric DLPFC synchrony, and cardiac autonomic responses during the neurofeedback task. Safety and tolerability will be evaluated by comparing the incidence and profile of adverse events between groups throughout the intervention period. In addition, both groups will receive matched, guideline-informed cognitive-behavioural therapy (CBT) during the intervention period as background standard care, and any clinically indicated psychotropic medication use during follow-up will be documented for analytic control.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
DOUBLE
Enrollment
62
This device-based intervention delivers fNIRS-BCI online closed-loop neurofeedback targeting the right dorsolateral prefrontal cortex (right DLPFC) with slow-wave acoustic cueing. Participants complete a 3-day adaptation phase followed by 3 weeks of formal training (15 weekday visits; about 20 minutes per visit). Each visit includes 20 blocks (60 seconds per block: 20 seconds rest + 40 seconds slow-wave acoustic cueing with a \~60 dB, 1 Hz sinusoidally amplitude-modulated pure tone). During each cueing period, real-time right DLPFC HbO activity estimated from fNIRS is displayed as a visual activation bar, and participants apply volitional strategies to downregulate activity below a concealed threshold line (T = -3.3; approximating p = 0.001). fNIRS is recorded in all visits; ECG is recorded on the first formal training day only for HR/HRV mechanistic measures.
This device-based sham intervention uses the same fNIRS-BCI neurofeedback interface, slow-wave acoustic cueing, and training schedule as the real-feedback arm. Participants complete a 3-day adaptation phase followed by 3 weeks of formal training (15 weekday visits; about 20 minutes per visit) using 20 blocks per visit (60 seconds per block: 20 seconds rest + 40 seconds slow-wave acoustic cueing with a \~60 dB, 1 Hz sinusoidally amplitude-modulated pure tone). fNIRS is recorded in all visits; ECG is recorded on the first formal training day only for HR/HRV measures. The displayed activation bar and concealed threshold line are configured to substantially weaken effective coupling to the participant's instantaneous neural activity (threshold setting: T = -1; approximating p = 0.31), making reliable volitional control unlikely while preserving blinding.
The Second Affiliated Hospital of Shenyang Medical College
Shenyang, Liaoning, China
RECRUITINGCentral Hospital Affiliated to Shenyang Medical College
Shenyang, Liaoning, China
RECRUITINGthe between-group difference in treatment response
The investigators will compare the overall proportion of participants achieving response in the real neurofeedback group versus the sham-feedback group across the post-treatment follow-up period, defined by two timepoints: end of treatment and 3-month follow-up. Anxiety symptoms will be assessed using the Hamilton Anxiety Rating Scale (HAMA; ; 14 items, each scored 0-4; total score range 0-56; higher scores indicate greater anxiety severity), and treatment response will be defined a priori as a reduction of at least 50% in total HAMA score from baseline.
Time frame: Day 0 (baseline, pre-intervention); Day 24 (end of treatment, within 1 hour after completion of training); 3 months after Day 24.
Between-group difference in remission rate.
Remission will be defined as HAMA total score less than 8 together with a Clinical Global Impression-Improvement (CGI-I) score of 1 (very much improved) or 2 (much improved).
Time frame: Day 0 (baseline, pre-intervention); Day 24 (end of treatment, within 1 hour after completion of training); 3 months after Day 24.
Between-group difference in continuous HAMA scores.
Anxiety severity will be measured using the Hamilton Anxiety Rating Scale (HAMA; 14 items, each scored 0-4; total score range 0-56; higher scores indicate greater anxiety severity). HAMA total score will be analysed as a continuous outcome to evaluate group, time, and group-by-time effects.
Time frame: Day 0 (baseline, pre-intervention); Day 24 (end of treatment, within 1 hour after completion of training); 3 months after Day 24.
Between-group difference in downregulation of right DLPFC HbO activation.
During the slow-wave acoustic cueing-assisted neurofeedback task, fNIRS will be used to quantify participants ability to volitionally downregulate HbO activation in the right dorsolateral prefrontal cortex, and differences between groups will be compared.
Time frame: Day 4 after randomisation (first formal training day).
Between-group difference in interhemispheric synchronisation within the DLPFC.
During the slow-wave acoustic cueing-assisted neurofeedback task, wavelet transform coherence (WTC) will be used to estimate the time-frequency coherence distribution between homologous left and right DLPFC channels as an index of interhemispheric synchrony and functional coupling. WTC values will be Fisher z-transformed and averaged within the target frequency band 0.01-0.05 Hz and within the task-relevant time window to derive an individual-level synchronisation metric for between-group comparison.
Time frame: Day 4 after randomisation (first formal training day).
Between-group difference in baseline-corrected heart-rate change.
During the slow-wave acoustic cueing-assisted neurofeedback task, baseline-corrected changes in heart rate (HR) will be compared between groups to evaluate between-group differences in acute cardiac autonomic responses.
Time frame: Day 4 after randomisation (first formal training day).
Between-group difference in HRV spectral power at 0.0167 Hz.
Using wavelet-based time-frequency analysis, the investigators will compare between-group differences in HRV spectral power at 0.0167 Hz (corresponding to the 60-second cycle and within the very-low-frequency range of HRV) to characterise autonomic rhythmic responses to the neurofeedback task and slow-wave rhythmic cueing.
Time frame: Day 4 after randomisation (first formal training day).
Between-group difference in adverse events during the intervention period.
Specifically, the investigators will compare the overall proportion of participants experiencing at least one adverse event (AE) in the real neurofeedback group versus the sham-feedback group, and will additionally compare the occurrence of prespecified AE categories, including but not limited to mild dizziness or somnolence, transient bradycardia- or blood-pressure-related discomfort, and headache or nausea.
Time frame: From Day 1 (start of adaptation training) through Day 24 (end of treatment).
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