Tryptophan metabolism and ischemic stroke: An intricate balance.

IF 5.9 2区 医学 Q2 CELL BIOLOGY
Neural Regeneration Research Pub Date : 2026-02-01 Epub Date: 2025-01-13 DOI:10.4103/NRR.NRR-D-24-00777
Chongjie Yao, Dong Xie, Yuchen Zhang, Yuanhao Shen, Pingping Sun, Zhao Ma, Jin Li, Jiming Tao, Min Fang
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Abstract

Ischemic stroke, which is characterized by hypoxia and ischemia, triggers a cascade of injury responses, including neurotoxicity, inflammation, oxidative stress, disruption of the blood-brain barrier, and neuronal death. In this context, tryptophan metabolites and enzymes, which are synthesized through the kynurenine and 5-hydroxytryptamine pathways, play dual roles. The delicate balance between neurotoxic and neuroprotective substances is a crucial factor influencing the progression of ischemic stroke. Neuroprotective metabolites, such as kynurenic acid, exert their effects through various mechanisms, including competitive blockade of N-methyl-D-aspartate receptors, modulation of α7 nicotinic acetylcholine receptors, and scavenging of reactive oxygen species. In contrast, neurotoxic substances such as quinolinic acid can hinder the development of vascular glucose transporter proteins, induce neurotoxicity mediated by reactive oxygen species, and disrupt mitochondrial function. Additionally, the enzymes involved in tryptophan metabolism play major roles in these processes. Indoleamine 2,3-dioxygenase in the kynurenine pathway and tryptophan hydroxylase in the 5-hydroxytryptamine pathway influence neuroinflammation and brain homeostasis. Consequently, the metabolites generated through tryptophan metabolism have substantial effects on the development and progression of ischemic stroke. Stroke treatment aims to restore the balance of various metabolite levels; however, precise regulation of tryptophan metabolism within the central nervous system remains a major challenge for the treatment of ischemic stroke. Therefore, this review aimed to elucidate the complex interactions between tryptophan metabolites and enzymes in ischemic stroke and develop targeted therapies that can restore the delicate balance between neurotoxicity and neuroprotection.

色氨酸代谢和缺血性中风:一个复杂的平衡。
缺血性中风以缺氧和缺血为特征,可引发一系列损伤反应,包括神经毒性、炎症、氧化应激、血脑屏障破坏和神经元死亡。在这种情况下,通过犬尿氨酸和5-羟色胺途径合成的色氨酸代谢物和酶发挥双重作用。神经毒性物质和神经保护物质之间的微妙平衡是影响缺血性脑卒中进展的关键因素。神经保护代谢物,如犬尿酸,通过多种机制发挥作用,包括竞争性阻断n -甲基- d -天冬氨酸受体、调节α7烟碱胆碱受体和清除活性氧。相反,神经毒性物质如喹啉酸会阻碍血管葡萄糖转运蛋白的发育,诱导活性氧介导的神经毒性,并破坏线粒体功能。此外,参与色氨酸代谢的酶在这些过程中起主要作用。犬尿氨酸途径中的吲哚胺2,3-双加氧酶和5-羟色胺途径中的色氨酸羟化酶影响神经炎症和脑内稳态。因此,通过色氨酸代谢产生的代谢物对缺血性脑卒中的发生和进展具有实质性的影响。中风治疗的目的是恢复各种代谢水平的平衡;然而,中枢神经系统色氨酸代谢的精确调控仍然是缺血性中风治疗的主要挑战。因此,本综述旨在阐明缺血性卒中中色氨酸代谢物与酶之间的复杂相互作用,并开发出能够恢复神经毒性和神经保护之间微妙平衡的靶向治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neural Regeneration Research
Neural Regeneration Research CELL BIOLOGY-NEUROSCIENCES
CiteScore
8.00
自引率
9.80%
发文量
515
审稿时长
1.0 months
期刊介绍: Neural Regeneration Research (NRR) is the Open Access journal specializing in neural regeneration and indexed by SCI-E and PubMed. The journal is committed to publishing articles on basic pathobiology of injury, repair and protection to the nervous system, while considering preclinical and clinical trials targeted at improving traumatically injuried patients and patients with neurodegenerative diseases.
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