Mitochondrial RNA, a new trigger of the innate immune system
- PMID: 34498404
- DOI: 10.1002/wrna.1690
Mitochondrial RNA, a new trigger of the innate immune system
Abstract
Mitochondria play a pivotal role in numerous cellular processes. One of them is regulation of the innate immune pathway. In this instance, mitochondria function in two different aspects of regulatory mechanisms. First, mitochondria are part of the antiviral signaling cascade that is triggered in the cytoplasm and transmitted to effector proteins through mitochondria-localized proteins. Second, mitochondria can become an endogenous source of innate immune stimuli. Under some pathophysiological conditions, mitochondria release to the cytoplasm immunogenic factors, such as mitochondrial nucleic acids. Here, we focus on immunogenic mitochondrial double-stranded RNA (mt-dsRNA) and its origin and metabolism. We discuss factors that are responsible for regulating mt-dsRNA and its escape from mitochondria, emphasizing the contribution of polynucleotide phosphorylase (PNPase, PNPT1). Finally, we review current knowledge of the role of PNPase in human health and disease. This article is categorized under: RNA in Disease and Development > RNA in Disease.
Keywords: innate immunity; mitochondrial RNA decay and surveillance; mitochondrial dsRNA.
© 2021 Wiley Periodicals LLC.
References
REFERENCES
-
- Ablasser, A., Goldeck, M., Cavlar, T., Deimling, T., Witte, G., Röhl, I., Hopfner, K.-P., Ludwig, J., & Hornung, V. (2013). CGAS produces a 2′-5′-linked cyclic dinucleotide second messenger that activates STING. Nature, 498(7454), 380-384. https://doi.org/10.1038/nature12306
-
- Alodaib, A., Sobreira, N., Gold, W. A., Riley, L. G., Van Bergen, N. J., Wilson, M. J., Bennetts, B., Thorburn, D. R., Boehm, C., & Christodoulou, J. (2016). Whole-exome sequencing identifies novel variants in PNPT1 causing oxidative phosphorylation defects and severe multisystem disease. European Journal of Human Genetics: EJHG, 25(1), 79-84. https://doi.org/10.1038/ejhg.2016.128
-
- Anderson, S., Bankier, A. T., Barrell, B. G., de Bruijn, M. H., Coulson, A. R., Drouin, J., Eperon, I. C., Nierlich, D. P., Roe, B. A., Sanger, F., Schreier, P. H., Smith, A. J., Staden, R., & Young, I. G. (1981). Sequence and organization of the human mitochondrial genome. Nature, 290(5806), 457-465. https://doi.org/10.1038/290457a0
-
- Archibald, J. M. (2015). Endosymbiosis and eukaryotic cell evolution. Current Biology: CB, 25(19), R911-R921. https://doi.org/10.1016/j.cub.2015.07.055
-
- Balka, K. R., Louis, C., Saunders, T. L., Smith, A. M., Calleja, D. J., D'Silva, D. B., Moghaddas, F., Tailler, M., Lawlor, K. E., Zhan, Y., Burns, C. J., Wicks, I. P., Miner, J. J., Kile, B. T., Masters, S. L., & De Nardo, D. (2020). TBK1 and IKKε act redundantly to mediate STING-induced NF-κB responses in myeloid cells. Cell Reports, 31(1), 107492. https://doi.org/10.1016/j.celrep.2020.03.056
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources
