Systemic perturbations in amino acids/amino acid derivatives and tryptophan pathway metabolites associated with murine influenza A virus infection

被引:3
作者
Al-Shalan, Huda A. M. [1 ,2 ]
Zhou, Lu [3 ]
Dong, Zhifan [3 ]
Wang, Penghao [1 ]
Nicholls, Philip K. [1 ]
Boughton, Berin [4 ]
Stumbles, Philip A. [1 ,5 ]
Greene, Wayne K. [1 ]
Ma, Bin [1 ]
机构
[1] Murdoch Univ, Sch Med Mol & Forens Sci, Murdoch, WA, Australia
[2] Baghdad Univ, Dept Microbiol, Coll Vet Med, Baghdad, Iraq
[3] Hebei Med Univ, Grad Sch, Shijiazhuang, Hebei, Peoples R China
[4] Murdoch Univ, Hlth Futures Inst, Australian Natl Phenome Ctr, Computat & Syst Med, Murdoch, WA, Australia
[5] Perth Childrens Hosp, Telethon Kids Inst, Nedlands, WA, Australia
关键词
Influenza A virus; Influenza; Amino acids; Tryptophan pathway; Infection; Metabolites; Immunometabolism; Neurotoxicity; IMMUNE-RESPONSE; GLUTAMINE; ARGININE; TAURINE; NEUROINFLAMMATION; BIOMARKER; BURDEN; BLOOD;
D O I
10.1186/s12985-023-02239-0
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
BackgroundInfluenza A virus (IAV) is the only influenza virus causing flu pandemics (i.e., global epidemics of flu disease). Influenza (the flu) is a highly contagious disease that can be deadly, especially in high-risk groups. Worldwide, these annual epidemics are estimated to result in about 3 to 5 million cases of severe illness and in about 290,000 to 650,000 respiratory deaths. We intend to reveal the effect of IAV infection on the host ' s metabolism, immune response, and neurotoxicity by using a mouse IAV infection model.Methods51 metabolites of murine blood plasma (33 amino acids/amino acid derivatives (AADs) and 18 metabolites of the tryptophan pathway) were analyzed by using Ultra-High-Performance Liquid Chromatography-Mass Spectrometry with Electrospray Ionization at the acute (7 days post-infection (dpi)), resolution (14 dpi), and recovery (21 dpi) stages of the virus infection in comparison with controls.ResultsAmong the 33 biogenic amino acids/AADs, the levels of five amino acids/AADs (1-methylhistidine, 5-oxoproline, alpha-aminobutyric acid, glutamine, and taurine) increased by 7 dpi, whereas the levels of ten amino acids/AADs (4-hydroxyproline, alanine, arginine, asparagine, cysteine, citrulline, glycine, methionine, proline, and tyrosine) decreased. By 14 dpi, the levels of one AAD (3-methylhistidine) increased, whereas the levels of five amino acids/AADs (alpha-aminobutyric acid, aminoadipic acid, methionine, threonine, valine) decreased. Among the 18 metabolites from the tryptophan pathway, the levels of kynurenine, quinolinic acid, hydroxykynurenine increased by 7 dpi, whereas the levels of indole-3-acetic acid and nicotinamide riboside decreased.ConclusionsOur data may facilitate understanding the molecular mechanisms of host responses to IAV infection and provide a basis for discovering potential new mechanistic, diagnostic, and prognostic biomarkers and therapeutic targets for IAV infection.
引用
收藏
页数:16
相关论文
共 100 条
  • [21] What is the tryptophan kynurenine pathway and why is it important to neurotherapeutics?
    Davis, Ian
    Liu, Aimin
    [J]. EXPERT REVIEW OF NEUROTHERAPEUTICS, 2015, 15 (07) : 719 - 721
  • [22] Lung innervation in the eye of a cytokine storm: neuroimmune interactions and COVID-19
    De Virgiliis, Francesco
    Di Giovanni, Simone
    [J]. NATURE REVIEWS NEUROLOGY, 2020, 16 (11) : 645 - 652
  • [23] Metabolic analysis as a driver for discovery, diagnosis, and therapy
    DeBerardinis, Ralph J.
    Keshari, Kayvan R.
    [J]. CELL, 2022, 185 (15) : 2678 - 2689
  • [24] Altered tryptophan absorption and metabolism could underlie long-term symptoms in survivors of coronavirus disease 2019 (COVID-19)
    Eroglu, Imdat
    Eroglu, Burcu Celik
    Guven, Gulay Sain
    [J]. NUTRITION, 2021, 90
  • [25] Unravelling the Interplay between Extracellular Acidosis and Immune Cells
    Erra Diaz, Fernando
    Dantas, Ezequiel
    Geffner, Jorge
    [J]. MEDIATORS OF INFLAMMATION, 2018, 2018
  • [26] Possible role of tryptophan and melatonin in COVID-19
    Essa, Musthafa Mohamed
    Hamdan, Hamdan
    Chidambaram, Saravana Babu
    Al-Balushi, Buthainah
    Guillemin, Gilles J.
    Ojcius, David M.
    Qoronfleh, M. Walid
    [J]. INTERNATIONAL JOURNAL OF TRYPTOPHAN RESEARCH, 2020, 13
  • [27] Global Burden of Influenza as a Cause of Cardiopulmonary Morbidity and Mortality
    Fischer, William A., II
    Gong, Michelle
    Bhagwanjee, Satish
    Sevransky, Jonathan
    [J]. GLOBAL HEART, 2014, 9 (03) : 325 - 336
  • [28] Influenza virus and SARS-CoV-2: pathogenesis and host responses in the respiratory tract
    Flerlage, Tim
    Boyd, David F.
    Meliopoulos, Victoria
    Thomas, Paul G.
    Schultz-Cherry, Stacey
    [J]. NATURE REVIEWS MICROBIOLOGY, 2021, 19 (07) : 425 - 441
  • [29] Regulation of kynurenine biosynthesis during influenza virus infection
    Gaelings, Lana
    Soderholm, Sandra
    Bugai, Andrii
    Fu, Yu
    Nandania, Jatin
    Schepens, Bert
    Lorey, Martina B.
    Tynell, Janne
    Vande Ginste, Liesbeth
    Le Goffic, Ronan
    Miller, Matthew S.
    Kuisma, Marika
    Marjomaki, Varpu
    De Brabander, Jef
    Matikainen, Sampsa
    Nyman, Tuula A.
    Bamford, Dennis H.
    Saelens, Xavier
    Julkunen, Ilkka
    Paavilainen, Henrik
    Hukkanen, Veijo
    Velagapudi, Vidya
    Kainov, Denis E.
    [J]. FEBS JOURNAL, 2017, 284 (02) : 222 - 236
  • [30] Evaluation of taurine as a biomarker of liver damage in paracetamol poisoning
    Ghandforoush-Sattari, Mohammadreza
    Mashayekhi, Siminozar
    [J]. EUROPEAN JOURNAL OF PHARMACOLOGY, 2008, 581 (1-2) : 171 - 176