1)Key Laboratory of Fermentation Engineering (Ministry of Education), School of Life and Health Sciences, Hubei University of Technology, Wuhan 430068, China;2)International Center for Redox Biology & Precision Medicine of Hubei Province, Hubei University of Technology, Wuhan 430068, China;3)School of Research and Innovation, Koc University, Istanbul 34550, Turkey;4)Department of Pulmonary Medicine, School of Medicine, Koc University, Istanbul 34550, Turkey;5)Department of Chemistry, North Carolina State University, Raleigh 27695-7001, USA
This work was supported by grants from Open Project Funding of the Key Laboratory of Fermentation Engineering (Ministry of Education) (202509FE20), Hubei Key Laboratory of Industrial Microbiology open fund (2023KF01), Collaborative Grant-in-Aid of the HBUT National
Kynurenine pathway (KP) is a major catabolic route of tryptophan, generating a series of bioactive metabolites including kynurenine, kynurenic acid, quinolinic acid, and 3-hydroxykynurenine. Beyond its fundamental role in amino acid metabolism, KP exerts critical regulatory functions in neurodevelopment, synaptic plasticity, and immune modulation. Autism spectrum disorder (ASD) is a heterogeneous neurodevelopmental condition with onset in early childhood, characterized by persistent deficits in social communication and restricted, repetitive behaviors. Despite extensive research, the etiological mechanisms underlying ASD remain highly complex and incompletely understood, involving genetic, environmental, and immunological factors. Emerging clinical evidence has consistently revealed a significant imbalance in KP metabolites in individuals with ASD, often accompanied by altered ratios of neuroprotective versus neurotoxic byproducts. However, the primary drivers of this metabolic dysregulation and its causative contribution to ASD pathogenesis are not yet fully elucidated. In this review, we systematically examine the enzymatic steps of KP and the principal physiological functions of its major metabolites, with particular emphasis on their dual roles in neuroprotection and neurotoxicity. We then analyze the potential pathogenic mechanisms through which KP dysfunction may contribute to ASD, focusing on two interconnected etiological dimensions. First, KP imbalance can promote oxidative stress, which in turn triggers chronic inflammatory responses via microglial activation and release of pro-inflammatory cytokines, thereby disrupting neuronal homeostasis. Second, aberrant KP metabolism affects neurotransmitter systems, particularly glutamatergic and dopaminergic signaling, leading to impaired neural circuit development and synaptic pruning. By integrating current findings on the KP–ASD association, this review offers a comprehensive etiological framework and a clinically relevant paradigm. Furthermore, we highlight that specific KP metabolites, such as the kynurenic acid/quinolinic acid ratio, hold promise as peripheral biomarkers for early diagnosis and disease stratification. Finally, we discuss the therapeutic potential of targeting KP enzymes or receptors for personalized intervention strategies, while acknowledging the challenges in translating these findings into clinical practice.
XIAO Ya-Qian, QIAO Li-Chen, RONG De-Chang, LEI Yu-Chen, Hakan ürey, ZUO Lan-Lan, Hasan Bayram, Ghiladi Reza A.,DUAN Yi-Fan, LI Meng-Jiao, WANG Jun. Kynurenine Pathway and Its Metabolites in Autism Spectrum Disorder: a Close Link[J]. Progress in Biochemistry and Biophysics,,():
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