Neurobiological correlates of treatment-resistant depression: implications for pharmacotherapy
Joanna Kot, Ewa Ferensztajn-Rochowiak, Oryna Kaliuzhna, Agnieszka Bienert, Filip Rybakowski
Neuropsychiatria i Neuropsychologia January 1, 2026 DOI: 10.5114/nan.2026.162406 (opens in new tab) via OpenAlex
Summary
AI-generated from the abstractTreatment-resistant depression (TRD) affects about 30% of patients with major depressive disorder and involves complex neurobiological mechanisms beyond the traditional monoamine hypothesis. Research indicates roles for glutamatergic dysfunction, GABA system dysfunction, impaired neuroplasticity, dysregulation of the hypothalamic-pituitary-adrenal axis, and neuroinflammatory processes. The kynurenine pathway and NLRP3 inflammasome are highlighted as mechanisms linking chronic stress, neuroinflammation, and treatment resistance. Impaired neuroplasticity related to BDNF is also key, with chronic stress reducing BDNF synthesis. Emerging therapeutic strategies include ketamine and psilocybin due to their effects on the glutamatergic system and neuroplasticity. The paper presents current concepts of TRD's neurobiological background and their therapeutic implications.
Study at a glance
| Characteristics | Review Peer reviewed |
|---|---|
| Keywords | Pharmacotherapy Medline Disease Drug Action physics |
| Key finding | Treatment-resistant depression involves complex neurotrophic, inflammatory, metabolic, neuroendocrine, and genetic mechanisms beyond the monoamine hypothesis. |
Abstract
Treatment-resistant depression (TRD) affects about 30% of patients with major depressive disorder and remains a major clinical challenge.The limited effectiveness of classical antidepressants suggests that the pathophysiology of TRD is complex and extends beyond the traditional monoamine hypothesis.The aim of this paper was to present current concepts of the neurobiological background of TRD and their therapeutic implications.Research findings indicate an important role of glutamatergic dysfunction and excitotoxicity, GABA system dysfunction, impaired neuroplasticity, dysregulation of the hypothalamic-pituitary-adrenal axis, and neuroinflammatory processes.Increasing evidence also highlights the role of the kynurenine pathway and the NLRP3 inflammasome as mechanisms linking chronic stress, neuroinflammation, and treatment resistance.Neuroinflammation is associated with poorer prognosis, higher treatment resistance, and elevated mortality risk in depression.Impaired neuroplasticity related to BDNF also appears to play a key role.Chronic stress may reduce BDNF synthesis, leading to impaired neuronal plasticity and depressive symptoms.Among emerging therapeutic strategies, ketamine and psilocybin are of particular interest because of their effects on the glutamatergic system and neuroplasticity.Neuroimaging studies suggest the involvement of frontal brain regions and reduced connectivity within the default mode network in TRD.Genetic studies have not identified single variants with major clinical significance, but increasing attention is focused on epigenetic mechanisms and pharmacogenomics.Other promising approaches include substances affecting cellular energy metabolism.Treatment-resistant depression is a multifactorial disorder involving complex neurotrophic, inflammatory, metabolic, neuroendocrine, and genetic mechanisms.A better understanding of these processes may support