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Irving, A. T.

Publications and source records attributed to Irving, A. T..

2 recordsLinked to original sources

Alternative splicing expands the antiviral IFITM repertoire in Chinese horseshoe bats

The interferon response is shaped by the evolutionary arms race between hosts and the pathogens they carry. The human interferon-induced transmembrane protein (IFITM) family consists of three antiviral IFITM genes that arose by gene duplication, they restrict virus entry and are key players of the interferon response. Yet, little is known about IFITMs in other mammals. Here, we identified an IFITM gene in Chinese horseshoe bat, a natural host of SARS-coronaviruses, that is alternatively spliced to produce two IFITM isoforms. These bat IFITMs have conserved structures in vitro and differential antiviral activities against influenza A virus and coronaviruses including SARS- and MERS-coronavirus. In parallel with human IFITM1-3, the bat IFITM isoforms localize to distinct cellular compartments. Further analysis of IFITM repertoires in 205 mammals reveals that alternative splicing is a ubiquitous strategy for IFITM diversification, albeit less widely adopted than gene duplication. These findings showcase an example of convergent evolution where species-specific selection pressures led to expansion of the IFITM family through multiple means, underscoring the importance of IFITM diversity as a component of innate immunity.

microbiology↗

Multi-omic analysis of bat versus human fibroblasts reveals altered central metabolism

Bats have unique characteristics compared to other mammals, including increased longevity and higher resistance to cancer and infectious disease. While previous studies have analyzed the metabolic requirements for flight, it is still unclear how bat metabolism supports these unique features, and no study has integrated metabolomics, transcriptomics, and proteomics to characterize bat metabolism. In this work, we performed a multi-omics data analysis using a computational model of metabolic fluxes to identify fundamental differences in central metabolism between primary lung fibroblast cell lines from the black flying fox fruit bat (Pteropus alecto) and human. Bat cells showed higher expression levels of Complex I components of electron transport chain (ETC), but, remarkably, a lower rate of oxygen consumption (OCR). Computational modeling interpreted these results as indicating that Complex II activity may be low or reversed, similar to an ischemic state. An ischemic-like state of bats was also supported by decreased levels of central metabolites and increased ratios of succinate to fumarate in bat cells. Ischemic states tend to produce reactive oxygen species (ROS), which would be incompatible with the longevity of bats. However, bat cells had higher antioxidant reservoirs (higher total glutathione and higher ratio of NADPH to NADP) despite higher mitochondrial ROS levels. In addition, bat cells were more resistant to glucose deprivation and had increased resistance to ferroptosis, one of the characteristics of which is oxidative stress. Thus, our studies revealed distinct differences in the ETC regulation and metabolic stress responses between human and bat cells.

systems biology↗