Systematic Insights into the Relationship between the Microbiota-Gut-Brain Axis and Stroke with the Focus on Tryptophan Metabolism

被引:0
作者
Shen, Xinyu [1 ,2 ]
Mu, Xiaoqin [1 ,2 ]
机构
[1] Harbin Med Univ, Coll Pharm, Genom Res Ctr, Key Lab Gut Microbiota & Pharmacogen Heilongjiang, Harbin 150081, Peoples R China
[2] Heilongjiang Acad Med Sci, Translat Med Res & Cooperat Ctr Northern China, Harbin 150081, Peoples R China
基金
中国国家自然科学基金;
关键词
stroke; gut microbiota; gut-brain axis; tryptophan metabolism; EPITHELIAL BARRIER FUNCTION; PITUITARY-ADRENAL AXIS; ENTERIC NERVOUS-SYSTEM; ACUTE ISCHEMIC-STROKE; NEURONAL SEROTONIN; KYNURENINE PATHWAY; GASTROINTESTINAL MOTILITY; INDOLE-3-PROPIONIC ACID; ENTEROENDOCRINE CELLS; COGNITIVE IMPAIRMENT;
D O I
10.3390/metabo14080399
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Stroke, as a serious cerebral vascular disease with high incidence and high rates of disability and mortality, has limited therapeutic options due to the narrow time window. Compelling evidence has highlighted the significance of the gut microbiota and gut-brain axis as critical regulatory factors affecting stroke. Along the microbiota-gut-brain axis, tryptophan metabolism further acquires increasing attention for its intimate association with central nervous system diseases. For the purpose of exploring the potential role of tryptophan metabolism in stroke and providing systematic insights into the intricate connection of the microbiota-gut-brain axis with the pathological procedure of stroke, this review first summarized the practical relationship between microbiota and stroke by compiling the latest case-control research. Then, the microbiota-gut-brain axis, as well as its interaction with stroke, were comprehensively elucidated on the basis of the basic anatomical structure and physiological function. Based on the crosstalk of microbiota-gut-brain, we further focused on the tryptophan metabolism from the three major metabolic pathways, namely, the kynurenine pathway, serotonin pathway, and microbial pathway, within the axis. Moreover, the effects of tryptophan metabolism on stroke were appreciated and elaborated here, which is scarcely found in other reviews. Hopefully, the systematic illustration of the mechanisms and pathways along the microbiota-gut-brain axis will inspire more translational research from metabolic perspectives, along with more attention paid to tryptophan metabolism as a promising pharmaceutical target in order to reduce the risk of stroke, mitigate the stroke progression, and ameliorate the stroke prognosis.
引用
收藏
页数:29
相关论文
共 216 条
  • [32] Tryptophan in health and disease
    Comai, Stefano
    Bertazzo, Antonella
    Brughera, Martina
    Crotti, Sara
    [J]. ADVANCES IN CLINICAL CHEMISTRY, VOL 95, 2020, 95 : 165 - 218
  • [33] Microbial-derived metabolites as a risk factor of age-related cognitive decline and dementia
    Connell, Emily
    Le Gall, Gwenaelle
    Pontifex, Matthew G.
    Sami, Saber
    Cryan, John F.
    Clarke, Gerard
    Mueller, Michael
    Vauzour, David
    [J]. MOLECULAR NEURODEGENERATION, 2022, 17 (01)
  • [34] THE MICROBIOTA-GUT-BRAIN AXIS
    Cryan, John F.
    O'Riordan, Kenneth J.
    Cowan, Caitlin S. M.
    Sandhu, Kiran V.
    Bastiaanssen, Thomaz F. S.
    Boehme, Marcus
    Codagnone, Martin G.
    Cussotto, Sofia
    Fulling, Christine
    Golubeva, Anna V.
    Guzzetta, Katherine E.
    Jaggar, Minal
    Long-Smith, Caitriona M.
    Lyte, Joshua M.
    Martin, Jason A.
    Molinero-Perez, Alicia
    Moloney, Gerard
    Morelli, Emanuela
    Morillas, Enrique
    O'Connor, Rory
    Cruz-Pereira, Joana S.
    Peterson, Veronica L.
    Rea, Kieran
    Ritz, Nathaniel L.
    Sherwin, Eoin
    Spichak, Simon
    Teichman, Emily M.
    van de Wouw, Marcel
    Ventura-Silva, Ana Paula
    Wallace-Fitzsimons, Shauna E.
    Hyland, Niall
    Clarke, Gerard
    Dinan, Timothy G.
    [J]. PHYSIOLOGICAL REVIEWS, 2019, 99 (04) : 1877 - 2013
  • [35] L-Kynurenine/Aryl Hydrocarbon Receptor Pathway Mediates Brain Damage After Experimental Stroke
    Cuartero, Maria I.
    Ballesteros, Ivan
    de la Parra, Juan
    Harkin, Andrew L.
    Abautret-Daly, Aine
    Sherwin, Eoin
    Fernandez-Salguero, Pedro
    Corbi, Angel L.
    Lizasoain, Ignacio
    Moro, Maria A.
    [J]. CIRCULATION, 2014, 130 (23) : 2040 - 2051
  • [36] Altered kynurenine metabolism correlates with infarct volume in stroke
    Darlington, L. G.
    Mackay, G. M.
    Forrest, C. M.
    Stoy, N.
    George, C.
    Stone, T. W.
    [J]. EUROPEAN JOURNAL OF NEUROSCIENCE, 2007, 26 (08) : 2211 - 2221
  • [37] The 5-HT1A receptor as a serotonergic target for neuroprotection in cerebral ischemia
    de Aguiar, Rafael Pazinatto
    Newman-Tancredi, Adrian
    Prickaerts, Jos
    Weffort de Oliveira, Rubia Maria
    [J]. PROGRESS IN NEURO-PSYCHOPHARMACOLOGY & BIOLOGICAL PSYCHIATRY, 2021, 109
  • [38] Gut microbiota regulates maturation of the adult enteric nervous system via enteric serotonin networks
    De Vedder, Filipe
    Grasset, Estelle
    Holm, Louise Manneras
    Karsenty, Gerard
    Macpherson, Andrew J.
    Olofsson, Louise E.
    Backhed, Fredrik
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (25) : 6458 - 6463
  • [39] The Role of Kynurenine Pathway and NAD+ Metabolism in Myalgic Encephalomyelitis/Chronic Fatigue Syndrome
    Dehhaghi, Mona
    Panahi, Hamed Kazemi Shariat
    Kavyani, Bahar
    Heng, Benjamin
    Tan, Vanessa
    Braidy, Nady
    Guillemin, Gilles J.
    [J]. AGING AND DISEASE, 2022, 13 (03): : 698 - 711
  • [40] Herpetosiphon Secondary Metabolites Inhibit Amyloid-β Toxicity in Human Primary Astrocytes
    Dehhaghi, Mona
    Panahi, Hamed Kazemi Shariat
    Braidy, Nady
    Guillemin, Gilles J.
    [J]. JOURNAL OF ALZHEIMERS DISEASE, 2020, 76 (01) : 423 - 433