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Maesen, S.

Publications and source records attributed to Maesen, S..

3 recordsLinked to original sources

Genomic and functional adaptations in guanylate-binding protein 5 (GBP5) highlight specificities of bat antiviral innate immunity

Bats are asymptomatic reservoirs of several zoonotic viruses. This may result from long-term coevolution between viruses and bats, that have led to host adaptations contributing to an effective balance between strong antiviral responses with innate immune tolerance. To better understand these virus-host interactions, we combined comparative transcriptomics, phylogenomics and functional assays to characterize the evolution of bat innate immune antiviral factors. First, we stimulated the type I interferon immune pathway in Myotis yumanensis primary cells and identified guanylate-binding protein 5 (GBP5) as the most differentially expressed interferon-stimulated gene (ISG). Phylogenomic analyses showed that bat GBP5 has been under strong episodic positive selection, with numerous rapidly evolving sites and species-specific gene duplications, suggesting past evolutionary arms races. Functional tests on GBP5 orthologs from ten bat species covering the >60 million years of Chiroptera evolution revealed species- and virus-specific restrictions against RNA viruses (retrovirus HIV, and rhabdoviruses European bat lyssavirus and VSV), which are typical signatures of adaptations to past viral epidemics. Interestingly, we also observed a lineage-specific loss of the GBP5 prenylation motif in the common ancestor of Pipistrellus and Eptesicus bats, associated with different GBP5 subcellular localization and loss of antiviral functions. Resurrection of the ancestral prenylation motif in Eptesicus fuscus GBP5 rescued its subcellular localization, but not the complete antiviral activities, suggesting that additional determinants are necessary for the antiviral restriction. Altogether, our results highlight adaptations that contribute to bat specific immunity and provide insights into the functional evolution of antiviral effector GBP5. Key FindingsO_LIGBP5 is the most differentially expressed gene upon type I interferon stimulation of Myotis yumanensis primary cells. C_LIO_LIBat GBP5 has evolved under strong episodic genomic and genetic diversification, including early stop codon leading to protein truncation and loss of prenylation motif. C_LIO_LIGBP5 diversification in bats impacts their subcellular localization and antiviral functions. C_LIO_LIBat GBP5s exhibit species- and virus-specificity in their ability to inhibit infectivity of viral particles, bearing glycoproteins from retroviral HIV, vesicular stomatitis virus and European bat lyssavirus-1. C_LIO_LIResurrection of the ancestral prenylation motif in a bat GBP5 rescues its subcellular localization but not its full antiviral activity C_LI

immunology↗

Extensive longevity and DNA virus-driven adaptation in nearctic Myotis bats

Summary ParagraphThe genus Myotis is one of the largest clades of bats, and exhibits some of the most extreme variation in lifespans among mammals alongside unique adaptations to viral tolerance and immune defense1-3. To study the evolution of these phenotypes we generated cell lines and near-complete genome assemblies for eight closely related Myotis species. Using genome-wide screens of positive selection, analyses of structural variation, and functional experiments in primary cells, we identify patterns of adaptation contributing to longevity, cancer resistance, and viral interactions. We demonstrate distinct modes of adaptation to DNA and RNA viruses compared to all other mammals, with bats exhibiting genome-wide overrepresentation of positive selection for DNA virus-interacting proteins and elevated rates of copy number variation for RNA virus-interacting proteins. Characterization of Myotis-specific duplications of the key immune factor protein kinase R (PKR) reveals multiple ancient segregating trans-species copy number polymorphisms. We show that the recurrent evolution of longevity seen in Myotis is associated with positive selection in cancer pathways, and demonstrate a unique response to DNA damage in primary cells of the long-lived M. lucifugus. Together, our results suggest that bats remarkable longevity and immunity are linked through pleiotropic adaptations to viruses and aging-related disease.

genomics↗

Deciphering lentiviral Vpr/x determinants required for HUSH and SAMHD1 antagonism highlights the molecular plasticity of these evolutionary conflicts

SAMHD1 and the HUSH complex constitute two blocks during primate lentivirus infection, the first by limiting reverse transcription and the second by inhibiting proviral expression. Vpr and Vpx of specific lentiviral lineages have evolved to antagonize these antiviral proteins. While the antagonism of SAMHD1 has been well characterized, the evolutionary and molecular determinants of the antagonism against HUSH are unknown. We used chimeric Vpr proteins between SIVagm.Ver and SIVagm.Gri lentiviruses infecting two African green monkey species, to investigate viral determinants involved in HUSH and SAMHD1 antagonisms. We found that different interfaces of closely related Vpr proteins are engaged to degrade different SAMHD1 haplotypes. In addition, we identified distinct viral determinants in SIVagm.Ver Vpr for SAMHD1 and HUSH degradation. The substitution of one residue in SIVagm.Gri Vpr is sufficient to gain the capacity to degrade SAMHD1, while the substitution of -helix-3 confers HUSH antagonism. We also found that Vpx proteins of HIV-2 from people living with HIV have different abilities to degrade HUSH. These phenotypes rely on small changes in either the N or C terminal part of Vpx, depending on the context. On the host side, we found that HIV-2 and SIVsmm Vpx degrading HUSH from human and vervet monkey cells cannot not degrade HUSH in owl monkey cells, suggesting some host species-specificity. Altogether, we highlight the molecular plasticity and constraints of viral proteins to adapt to host restrictions. HUSH, like SAMHD1, may have been engaged in ancient and more recent coevolution with lentiviruses and a player in viral fitness. IMPORTANCEAntiviral host proteins, the so-called restriction factors, block lentiviruses at different steps of their viral life cycle. In return, primate lentiviruses may counteract these immune proteins to efficiently spread in vivo. HIV-2 and some SIVs, but not HIV-1, inactivate SAMHD1 and HUSH, two host antiviral proteins, thanks to their Vpx or Vpr viral proteins. First, we uncovered here viral determinants involved in the function of closely related Vpr proteins from SIVs of African green monkeys and of HIV-2 Vpx alleles from people living with HIV-2. We show how these small viral proteins differently adapted to SAMHD1 polymorphism or to HUSH restriction and highlight their molecular plasticity. Finally, the capacity of divergent lentiviral proteins, including HIV-2 Vpx, to induce the degradation of HUSH depends of the cell/host species. Altogether, our results suggest that HUSH has been engaged in a molecular arms-race along evolution, and therefore is a key player in host-pathogens interaction.

microbiology↗