Cortical Kynurenine Pathway Metabolism: A Novel Target for Cognitive Enhancement in Schizophrenia

Метаболизм кинуренинового пути в коре головного мозга: новая мишень для улучшения когнитивных функций при шизофрении
Ikwunga Wonodi, Robert Schwarcz
2010-02-10

cognitive deficitskynurenic acidkynurenine 3-monooxygenasekynurenine pathwayschizophrenia
The brain concentration of kynurenic acid (KYNA), a metabolite of the kynurenine pathway of tryptophan degradation and antagonist at both the glycine coagonist site of the N-methyl-D-aspartic acid receptor (NMDAR) and the alpha7 nicotinic acetylcholine receptor (alpha7nAChR), is elevated in the prefrontal cortex (PFC) of individuals with schizophrenia. This increase may be clinically relevant because hypofunction of both the NMDAR and the alpha7nAChR are implicated in the pathophysiology, and especially in the cognitive deficits associated with the disease. In rat PFC, fluctuations in endogenous KYNA levels bidirectionally modulate extracellular levels of 3 neurotransmitters closely related to cognitive function (glutamate, dopamine, and acetylcholine). Moreover, behavioral studies in rats have demonstrated a causal link between increased cortical KYNA levels and neurocognitive deficits, including impairment in spatial working memory, contextual learning, sensory gating, and prepulse inhibition of the startle reflex. In recent human postmortem studies, impairments in gene expression and activity of kynurenine pathway enzymes were found in cortical areas of individuals with schizophrenia. Additional studies have revealed an interesting association between a sequence variant in the gene of one of these enzymes, kynurenine 3-monooxygenase, and neurocognitive deficits seen in patients. The emerging, remarkable confluence of data from humans and animals suggests an opportunity for developing a rational pharmacology by targeting cortical kynurenine pathway metabolism for cognition enhancement in schizophrenia and beyond.
1
Human postmortem evidence links altered kynurenine-pathway enzyme expression or activity, including kynurenine 3-monooxygenase variation, to schizophrenia and neurocognitive deficits, supporting this pathway as a cognitive-enhancement target.
2
In rats, endogenous cortical KYNA fluctuations bidirectionally regulate extracellular glutamate, dopamine, and acetylcholine levels.
3
Increased cortical KYNA causally produces neurocognitive impairments in rats, including deficits in spatial working memory, contextual learning, sensory gating, and prepulse inhibition.
4
KYNA antagonizes the NMDAR glycine coagonist site and alpha7 nicotinic acetylcholine receptors, both implicated in schizophrenia-related cognitive dysfunction.
5
Kynurenic acid concentrations are elevated in the prefrontal cortex of individuals with schizophrenia.

Cortical kynurenine pathway metabolism in schizophrenia

The effects of cortical kynurenine pathway activity, particularly kynurenic acid (KYNA) levels, on neurotransmitter regulation and cognitive deficits

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2010-02-10
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Ikwunga Wonodi
Robert Schwarcz
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