KETAMINE'S MECHANISM OF ACTION: A PATH TO RAPID‐ACTING ANTIDEPRESSANTS
Chadi G. Abdallah, Thomas G. Adams, Benjamin Kelmendi, Irina Esterlis, Gerard Sanacora, John H. Krystal
Depression and Anxiety April 6, 2016 DOI: 10.1002/da.22501 via OpenAlex
Summary
AI-generated from the abstractMajor depressive disorder is a common psychiatric condition that often responds poorly to traditional antidepressants, which can take weeks to work. Over the past two decades, the NMDA receptor antagonist ketamine has attracted attention because a single low dose produces rapid antidepressant effects in people with treatment-resistant depression. Evidence from animal and human studies suggests that ketamine triggers a surge of glutamate, initiating a cascade that promotes synaptogenesis and reverses stress-related damage, especially in the prefrontal cortex. This review covers the neurobiology of stress-related depression, the safety and efficacy of ketamine, its mechanism of action, and predictors of treatment response, along with research limitations and future directions.
Study at a glance
| Characteristics | Review Peer reviewed |
|---|---|
| Topics | Anxiety Ketamine |
| Keywords | Mechanism biology Mechanism of action Action physics Antidepressant |
| Citations | 204 |
| Key finding | A single subanesthetic dose of ketamine produces rapid antidepressant effects in individuals with treatment-resistant depression, likely through a glutamate surge that leads to synaptogenesis and reversal of stress-related changes in the prefrontal cortex. |
Abstract
Major depressive disorder (MDD) is a common and debilitating psychiatric disorder. Traditional antidepressants are of limited efficacy and take weeks to months to yield full therapeutic effects. Thus, there is a clear need for effective rapid-acting antidepressant medications. The N-methyl-d-aspartate receptor (NMDA-R) antagonist, ketamine, has received a great deal of attention over the last 20 years due to the discovery that a single subanesthetic dose leads to a rapid antidepressant effect in individuals with treatment-resistant depression. Animal and human research suggest that ketamine's antidepressant effects are mediated by a glutamate surge that leads to a cascade of events that result in synaptogenesis and reversal of the negative effects of chronic stress and depression, particularly within the prefrontal cortex (PFC). Preclinical and clinical data have provided compelling insights into the mechanisms underlying the rapid-acting antidepressant effects of ketamine. This review discusses stress-related neurobiology of depression and the safety, tolerability, and efficacy of ketamine for MDD, along with a review of ketamine's mechanism of action and prospective predictors of treatment response. Research limitations and future clinical prospects are also discussed.