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Nitrous oxide therapy-induced changes in brain modules of treatment-resistant depression: a randomized controlled study

Na Li, Ziyi Wang, Jun Huang, Shuting Sun, Jing Zhu, Xiaowei Li, Bin Hu

IEEE International Conference on Bioinformatics and Biomedicine December 3, 2024 DOI: 10.1109/bibm62325.2024.10822512 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Randomized controlled trial Peer reviewed
Sample size 44
Population Patients with treatment-resistant depression (TRD)
Interventions Nitrous oxide Oxygen
Dose 50% nitrous oxide/50% oxygen
Duration 1-hour intervention
Topics Depression
Key findings Nitrous oxide treatment significantly altered brain functional module segregation and showed superior antidepressant efficacy compared to placebo.

Abstract

Currently, treatment options for patients with treatment-resistant depression (TRD) are extremely limited. Although the rapid antidepressant effects of nitrous oxide have been preliminarily validated, the underlying neurophysiological mechanisms remain unclear. In this study, we intended to explore impact on brain modules induced by nitrous oxide through a randomized controlled study. A total of 44 patients with TRD were recruited. Subjects were randomly allocated to nitrous oxide-intervention group (1-hour inhalation of 50% nitrous oxide/50% oxygen) or placebo-control group (1-hour inhalation of 50% oxygen/50% air). The eye-closed resting state EEG signals were recorded. Our findings reveal that nitrous oxide treatment significantly altered the segregation of interconnected brain functional modules. The result of General Linear Model (repeated measurements) demonstrates superior antidepressant efficacy of nitrous oxide compared to placebo, as evidenced by reductions in both the participation coefficient and connector hub after treatment. Furthermore, changes in modular metrics moderately correlated with reductions in depressive symptoms. These findings offer valuable insights into mechanism underlying the treatment of TRD using nitrous oxide from a modular perspective.