4.8 Article

Aspergillus fumigatus tryptophan metabolic route differently affects host immunity

期刊

CELL REPORTS
卷 34, 期 4, 页码 -

出版社

CELL PRESS
DOI: 10.1016/j.celrep.2020.108673

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资金

  1. Italian grant Programma per Giovani Ricercatori -Rita Levi Montalcini 2013'' [PGR13XNIDJ]
  2. Specific Targeted Research Project FunMeta [ERC-2011-AdG-293714]
  3. Italian Fondazione Cassa di Risparmio di Perugia [2018.0412.021]
  4. AIRC [16851]
  5. Telethon Research grant [GGP17094]
  6. NIH [5R01AI065728-10]
  7. MRC Centre for Medical Mycology at the University of Aberdeen [MR/N006364/1]
  8. Grant Agency of the Czech Republic (GACR) [17-24592Y]
  9. Czech Ministry of Education, Youth and Sports [CETOCOEN PLUS CZ.02.1.01/0.0/0.0/15_003/0000469, LM2015051, CZ.02.1.01/0.0/0.0/16_013/0001761]
  10. MRC [MR/N006364/2] Funding Source: UKRI

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Research shows that Aspergillus fumigatus expresses different ido genes under varying environmental conditions, and loss of these genes results in increased pathogenicity and inflammation. Fungal tryptophan metabolic pathways cooperate with the host xenobiotic response to shape host-microbe interactions.
Indoleamine 2,3-dioxygenases (Ms) degrade L-tryptophan to kynurenines and drive the de novo synthesis of nicotinamide adenine dinucleotide. Unsurprisingly, various invertebrates, vertebrates, and even fungi produce IDO. In mammals, IDO1 also serves as a homeostatic regulator, modulating immune response to infection via local tryptophan deprivation, active catabolite production, and non-enzymatic cell signaling, Whether fungal !dos have pleiotropic functions that impact on host-fungal physiology is unclear. Here, we show that Aspergillus fumigatus possesses three ido genes that are expressed under conditions of hypoxia or tryptophan abundance. Loss of these genes results in increased fungal pathogenicity and inflammation in a mouse model of aspergillosis, driven by an alternative tryptophan degradation pathway to indole derivatives and the host aryl hydrocarbon receptor. Fungal tryptophan metabolic pathways thus cooperate with the host xenobiotic response to shape host-microbe interactions in local tissue microenvironments.

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