Skip to content

551. Esketamine in neuropsychiatric long COVID: a retrospective analysis

N Hartman, D Ivkic, M C Dorczok, Ina Bozic, L Reinfried, A-C Moser, G Fugger, B Ludwig, F Buchmayer, Marie Spies, A Weidenauer, Lucie Bartova, Coviket Study Group

The International Journal of Neuropsychopharmacology September 1, 2026 DOI: 10.1093/ijnp/pyag040.161 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Retrospective case series of routine clinical care Case report Peer reviewed
Sample size 15
Population In- and outpatients with neuropsychiatric Long COVID
Intervention Esketamine
Topics Esketamine
Key findings In 15 patients with neuropsychiatric Long COVID, off-label intranasal or intravenous esketamine given as a fourth-step escalation within a structured psychopharmacological algorithm was associated with clinically meaningful improvement across fatigue, cognitive dysfunction, depressive symptoms, anxiety, sleep disturbances, pain, and autonomic hyperreactivity. The authors report esketamine was generally well tolerated with no unexpected safety concerns, and suggest it may be a feasible and beneficial option for selected patients, warranting controlled trials.

Abstract

Abstract Background Neuropsychiatric manifestations of Long COVID (LC) frequently include post-exertional malaise (Cheng et al., 2025), fatigue, cognitive dysfunction and impairment, sleep disturbances, post-traumatic stress, autonomic dysregulation, pain, inner tension, psychomotor retardation, aberrations in appetite and weight (Badenoch et al., 2022; O'Mahoney et al., 2025), showing substantial clinical and neurobiological overlap with depressive and anxiety diseases, as demonstrated, for example, in neuroimaging studies (Braga et al., 2023; Churchill et al., 2023; Douaud et al., 2022; Runia et al., 2022; Siqueira et al., 2025). Converging evidence implicates neuroinflammation (Lai et al., 2023; Matschke et al., 2020), glutamatergic dysregulation (Fujimoto et al., 2025; Horowitz et al., 2023), impaired neuroplasticity (Chagas & Serfaty, 2024; Kempuraj et al., 2024), and stress-axis dysfunction (Camici et al., 2024) as central mechanisms of neuropsychiatric LC. In the absence of established treatment protocols for LC, structured psychopharmacological approaches derived from depressive and anxiety diseases are increasingly applied in specialized clinical settings for the alleviation of neuropsychiatric LC symptoms (Bartova et al., 2023; Crosby et al., 2021; McIntyre et al., 2024; Reinfeld, 2023) with one case series (Bozic et al., 2025) and three other case reports (Baldwin et al., 2023; Brode et al., 2025; Remick et al., 2024) highlighting (Es)Ketamine´s positive effect on severe and persistent neuropsychiatric LC symptoms. Aims & Objectives To describe clinical outcomes of intranasal and intravenous esketamine when used as an off-label fourth-step escalation strategy within a proposed, structured psychopharmacological treatment algorithm for neuropsychiatric LC in routine clinical care (Table 1).

Method: Fifteen in and outpatients with neuropsychiatric LC were treated according to a stepwise, symptom-oriented psychopharmacological algorithm (Table 1). All pharmacological treatments, including intranasal or intravenous esketamine, were prescribed off-label for LC but followed established clinical standards from depressive and anxiety diseases. Esketamine was administered only after insufficient response to adequate prior treatment stages, analogously to approved protocols for treatment resistant depression (TRD) (Johnston et al., 2024). Clinical data derived from this routine care treatment were retrospectively analyzed. Outcome assessment focused on core neuropsychiatric symptom domains, tolerability, and safety.

Results: The present preliminary retrospective analysis of routine clinical data indicates clinically meaningful improvement across multiple symptom domains, including fatigue, cognitive dysfunction, depressive symptoms, anxiety, sleep disturbances, pain, and autonomic hyperreactivity. In analogy to its on-label use in TRD, esketamine has been generally well tolerated in LC patients, with no unexpected safety concerns observed in clinical routine. These findings are in line with emerging clinical reports on esketamine use in persistent neuropsychiatric LC (Baldwin et al., 2023; Bozic et al., 2025; Brode et al., 2025; Remick et al., 2024). Discussion & Conclusions These preliminary results suggest that esketamine, applied off-label as a clearly defined escalation step within a proposed, structured treatment algorithm (Table 1), may represent a feasible and beneficial option for selected patients with neuropsychiatric LC. They support the neurobiological rationale for glutamatergic modulation in LC and provide a foundation for future controlled clinical trials to systematically evaluate optimal treatment allocation, efficacy and long-term outcomes. ​ References Badenoch, J. B., Rengasamy, E. R., Watson, C., Jansen, K., Chakraborty, S., Sundaram, R. D., Hafeez, D., Burchill, E., Saini, A., Thomas, L., Cross, B., Hunt, C. K., Conti, I., Ralovska, S., Hussain, Z., Butler, M., Pollak, T. A., Koychev, I., Michael, B. D.,…Rooney, A. G. (2022). Persistent neuropsychiatric symptoms after COVID-19: a systematic review and meta-analysis. Brain Commun, 4(1), fcab297. https://doi.org/10.1093/braincomms/fcab297 Baldwin, K., Wanson, A., Gilecki, L. A., Dalton, C., Peters, E., & Halpape, K. (2023). Intranasal ketamine as a treatment for psychiatric complications of long COVID: A case report. Ment Health Clin, 13(5), 239-243. https://doi.org/10.9740/mhc.2023.10.239 Bartova, L., Dold, M., Fugger, G., Weidenauer, A., Rujescu, D., & Kasper, S. (2023). Silexan for treatment of anxiety and depression in the context of COVID-19. Eur Neuropsychopharmacol, 70, 47-48. https://doi.org/10.1016/j.euroneuro.2023.02.015 Bozic, I., Ivkic, D., Reinfried, L., Donath, J., Schmidt, C., Graf, S., Handschuh, P., Dold, M., Winkler, D., Naderi-Haiden, A., Praschak-Rieder, N., Rujescu, D., Weidenauer, A., & Bartova, L. (2025). The role of esketamine in persistent long COVID with predominant psychiatric manifestations. Eur Neuropsychopharmacol, 93, 66-67. https://doi.org/10.1016/j.euroneuro.2024.12.014 Braga, J., Lepra, M., Kish, S. J., Rusjan, P. M., Nasser, Z., Verhoeff, N., Vasdev, N., Bagby, M., Boileau, I., Husain, M. I., Kolla, N., Garcia, A., Chao, T., Mizrahi, R., Faiz, K., Vieira, E. L., & Meyer, J. H. (2023). Neuroinflammation After COVID-19 With Persistent Depressive and Cognitive Symptoms. JAMA Psychiatry, 80(8), 787-795. https://doi.org/10.1001/jamapsychiatry.2023.1321 Brode, W. M., Posada, J., & Nagireddy, D. (2025). Ketamine as a Potential Neuromodulatory Treatment for Long COVID Neuropsychiatric and Neuropathic Symptoms: A Case Report. J Clin Psychopharmacol. https://doi.org/10.1097/jcp.0000000000002087 Camici, M., Del Duca, G., Brita, A. C., & Antinori, A. (2024). Connecting dots of long COVID-19 pathogenesis: a vagus nerve- hypothalamic-pituitary- adrenal-mitochondrial axis dysfunction. Front Cell Infect Microbiol, 14, 1501949. https://doi.org/10.3389/fcimb.2024.1501949 Chagas, L. D. S., & Serfaty, C. A. (2024). The Influence of Microglia on Neuroplasticity and Long-Term Cognitive Sequelae in Long COVID: Impacts on Brain Development and Beyond. Int J Mol Sci, 25(7). https://doi.org/10.3390/ijms25073819 Cheng, A. L., Herman, E., Abramoff, B., Anderson, J. R., Azola, A., Baratta, J. M., Bartels, M. N., Bhavaraju-Sanka, R., Blitshteyn, S., Fine, J. S., Fleming, T. K., Verduzco-Gutierrez, M., Herrera, J. E., Karnik, R., Kurylo, M., Longo, M. T., McCauley, M. D., Melamed, E., Miglis, M. G.,…Niehaus, W. N. (2025). Multidisciplinary collaborative guidance on the assessment and treatment of patients with Long COVID: A compendium statement. Pm r, 17(6), 684-708. https://doi.org/10.1002/pmrj.13397 Churchill, N. W., Roudaia, E., Chen, J. J., Gilboa, A., Sekuler, A., Ji, X., Gao, F., Lin, Z., Jegatheesan, A., Masellis, M., Goubran, M., Rabin, J. S., Lam, B., Cheng, I., Fowler, R., Heyn, C., Black, S. E., MacIntosh, B. J., Graham, S. J., & Schweizer, T. A. (2023). Effects of post-acute COVID-19 syndrome on the functional brain networks of non-hospitalized individuals. Front Neurol, 14, 1136408. https://doi.org/10.3389/fneur.2023.1136408 Crosby, L. D., Kalanidhi, S., Bonilla, A., Subramanian, A., Ballon, J. S., & Bonilla, H. (2021). Off label use of Aripiprazole shows promise as a treatment for Myalgic Encephalomyelitis/Chronic Fatigue Syndrome (ME/CFS): a retrospective study of 101 patients treated with a low dose of Aripiprazole. J Transl Med, 19(1), 50. https://doi.org/10.1186/s12967-021-02721-9 Douaud, G., Lee, S., Alfaro-Almagro, F., Arthofer, C., Wang, C., McCarthy, P., Lange, F., Andersson, J. L. R., Griffanti, L., Duff, E., Jbabdi, S., Taschler, B., Keating, P., Winkler, A. M., Collins, R., Matthews, P. M., Allen, N., Miller, K. L., Nichols, T. E., & Smith, S. M. (2022). SARS-CoV-2 is associated with changes in brain structure in UK Biobank. Nature, 604(7907), 697-707. https://doi.org/10.1038/s41586-022-04569-5 Fujimoto, Y., Abe, H., Eiro, T., Tsugawa, S., Tanaka, M., Hatano, M., Nakajima, W., Ichijo, S., Arisawa, T., Takada, Y., Kimura, K., Sano, A., Hirahata, K., Sasaki, N., Kimura, Y., & Takahashi, T. (2025). Systemic increase of AMPA receptors associated with cognitive impairment of long COVID. Brain Commun, 7(5), fcaf337. https://doi.org/10.1093/braincomms/fcaf337 Horowitz, T., Pellerin, L., Zimmer, E. R., & Guedj, E. (2023). Brain fog in long COVID: A glutamatergic hypothesis with astrocyte dysfunction accounting for brain PET glucose hypometabolism. Medical Hypotheses, 180, 111186. https://doi.org/10.1016/j.mehy.2023.111186 Ivkic, D., Bozic