4.8 Article

Protein modification with ISG15 blocks coxsackievirus pathology by antiviral and metabolic reprogramming

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SCIENCE ADVANCES
卷 6, 期 11, 页码 -

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AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.aay1109

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资金

  1. German Research Foundation [BE 6335/5-1, 6335/6-1, KN 590/7-1]
  2. Federal Ministry for Education and Research
  3. Hengstberger research fellowship
  4. Foundation for Experimental Biomedicine (Zurich, Switzerland)
  5. International Max Planck Research School for Infectious Diseases and Immunology (IMPRS-IDI), Berlin
  6. Infect-ERA BacVIRISG15
  7. Odysseus from Research Foundation Flanders (FWO) [G0F8616N]
  8. DFG [KN490/7-1]
  9. Federal Ministry for Education and Research (ERAinfect, BacVirISG15)
  10. German Systems Biology Programs LiSyM - Federal Ministry of Education and Research [31L0057]

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Protein modification with ISG15 (ISGylation) represents a major type I IFN-induced antimicrobial system. Common mechanisms of action and species-specific aspects of ISGylation, however, are still ill defined and controversial. We used a multiphasic coxsackievirus B3 (CV) infection model with a first wave resulting in hepatic injury of the liver, followed by a second wave culminating in cardiac damage. This study shows that ISGylation sets nonhematopoietic cells into a resistant state, being indispensable for CV control, which is accomplished by synergistic activity of ISG15 on antiviral IFIT1/3 proteins. Concurrent with altered energy demands, ISG15 also adapts liver metabolism during infection. Shotgun proteomics, in combination with metabolic network modeling, revealed that ISG15 increases the oxidative capacity and promotes gluconeogenesis in liver cells. Cells lacking the activity of the ISG1 5specific protease USP18 exhibit increased resistance to clinically relevant CV strains, therefore suggesting that stabilizing ISGylation by inhibiting USP18 could be exploited for CV-associated human pathologies.

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