ISG15, a Small Molecule with Huge Implications: Regulation of Mitochondrial Homeostasis

被引:37
作者
Albert, Manuel [1 ]
Becares, Martina [1 ]
Falqui, Michela [1 ]
Fernandez-Lozano, Carlos [1 ]
Guerra, Susana [1 ]
机构
[1] Univ Autonoma, Dept Prevent Med Publ Hlth & Microbiol, E-28029 Madrid, Spain
来源
VIRUSES-BASEL | 2018年 / 10卷 / 11期
关键词
interferon; ubiquitin-like modification; mitochondria; mitophagy; OXPHOS; UBIQUITIN-LIKE PROTEIN; INTERFERON-STIMULATED GENE; VIRUS-INFECTION; CONJUGATION SYSTEM; POSTTRANSLATIONAL MODIFICATIONS; ANTIVIRAL MOLECULE; UBP43; USP18; NS1; PROTEIN; MOUSE MODEL; RIG-I;
D O I
10.3390/v10110629
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Viruses are responsible for the majority of infectious diseases, from the common cold to HIV/AIDS or hemorrhagic fevers, the latter with devastating effects on the human population. Accordingly, the development of efficient antiviral therapies is a major goal and a challenge for the scientific community, as we are still far from understanding the molecular mechanisms that operate after virus infection. Interferon-stimulated gene 15 (ISG15) plays an important antiviral role during viral infection. ISG15 catalyzes a ubiquitin-like post-translational modification termed ISGylation, involving the conjugation of ISG15 molecules to de novo synthesized viral or cellular proteins, which regulates their stability and function. Numerous biomedically relevant viruses are targets of ISG15, as well as proteins involved in antiviral immunity. Beyond their role as cellular powerhouses, mitochondria are multifunctional organelles that act as signaling hubs in antiviral responses. In this review, we give an overview of the biological consequences of ISGylation for virus infection and host defense. We also compare several published proteomic studies to identify and classify potential mitochondrial ISGylation targets. Finally, based on our recent observations, we discuss the essential functions of mitochondria in the antiviral response and examine the role of ISG15 in the regulation of mitochondrial processes, specifically OXPHOS and mitophagy.
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页数:18
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共 132 条
[1]   Regulation of Mitochondrial Dynamics by Proteolytic Processing and Protein Turnover [J].
Ali, Sumaira ;
McStay, Gavin P. .
ANTIOXIDANTS, 2018, 7 (01)
[2]   Viruses as Modulators of Mitochondrial Functions [J].
Anand, Sanjeev K. ;
Tikoo, SureshK. .
ADVANCES IN VIROLOGY, 2013, 2013
[3]   Diverse Roles of Mitochondria in Immune Responses: Novel Insights Into Immuno-Metabolism [J].
Angajala, Anusha ;
Lim, Sangbin ;
Phillips, Joshua B. ;
Kim, Jin-Hwan ;
Yates, Clayton ;
You, Zongbing ;
Tan, Ming .
FRONTIERS IN IMMUNOLOGY, 2018, 9
[4]   Hepatitis C Virus Reveals a Novel Early Control in Acute Immune Response [J].
Arnaud, Noella ;
Dabo, Stephanie ;
Akazawa, Daisuke ;
Fukasawa, Masayoshi ;
Shinkai-Ouchi, Fumiko ;
Hugon, Jacques ;
Wakita, Takaji ;
Meurs, Eliane F. .
PLOS PATHOGENS, 2011, 7 (10)
[5]   Mitochondrial fragmentation in apoptosis [J].
Arnoult, Damien .
TRENDS IN CELL BIOLOGY, 2007, 17 (01) :6-12
[6]   Localization of ISG15 and conjugated proteins in bovine endometrium using immunohistochemistry and electron microscopy [J].
Austin, KJ ;
Carr, AL ;
Pru, JK ;
Hearne, CE ;
George, EL ;
Belden, EL ;
Hansen, TR .
ENDOCRINOLOGY, 2004, 145 (02) :967-975
[7]   ISG15 governs mitochondrial function in macrophages following vaccinia virus infection [J].
Baldanta, Sara ;
Fernandez-Escobar, Mercedes ;
Acin-Perez, Rebeca ;
Albert, Manuel ;
Camafeita, Emilio ;
Jorge, Inmaculada ;
Vazquez, Jesus ;
Antonio Enriquez, Jose ;
Guerra, Susana .
PLOS PATHOGENS, 2017, 13 (10)
[8]   Mitochondria in innate immune signaling [J].
Banoth, Balaji ;
Cassel, Suzanne L. .
TRANSLATIONAL RESEARCH, 2018, 202 :52-68
[9]   Mitochondrial Outer Membrane Channels: Emerging Diversity in Transport Processes [J].
Becker, Thomas ;
Wagner, Richard .
BIOESSAYS, 2018, 40 (07)
[10]   Use the Protonmotive Force: Mitochondrial Uncoupling and Reactive Oxygen Species [J].
Berry, Brandon J. ;
Trewin, Adam J. ;
Amitrano, Andrea M. ;
Kim, Minsoo ;
Wojtovich, Andrew P. .
JOURNAL OF MOLECULAR BIOLOGY, 2018, 430 (21) :3873-3891