bioRxiv Science⌕ Search

bioRxiv · 10.1101/2025.09.17.676773

Extensive adaptive changes in bat interferon pathway reveal specific molecular functions at the forefront of host - virus coevolution

Abstract

The interferon (IFN) response is a fundamental component of the mammalian innate immune system, orchestrating a broad antiviral state through a network of interferon-stimulated genes (ISGs). In bats, which are natural reservoirs for diverse viruses, several ISGs exhibit lineage-specific evolutionary adaptations, reflecting unique immune strategies. While previous research has typically focused on individual ISGs or broad-scale genomic analyses, here, we conducted an evolutionary analysis of type I IFN-upregulated genes across diverse bat species to elucidate the forces shaping the full repertoire of their ISG responses. Our results reveal that key components of bats antiviral signaling, including viral dsRNA sensors, PARP-mediated ADP-ribosylation enzymes, and cytokine/chemokine signaling molecules, have been recurrent targets of strong positive selection. Notably, immune sensors such as TLR3, RIG-I, and MDA5 show adaptive changes in their RNA-binding domains, suggesting modified viral recognition. Members of the PARP family exhibit repeated selection in both macro and catalytic domains, consistent with intense host-virus conflict and immune modulation. Strikingly, chemokine genes--especially CXCL10 and CXCL16--and their receptors display some of the strongest and most concerted selection signatures, particularly in ligand-binding loops, consistent with arms-race coevolution potentially driven by viral mimicry. Several positively selected genes have pleiotropic functions in tissue repair, inflammation, and tumor control, suggesting that some of these adaptations may influence several physiological pathways. Altogether, our findings uncover a bat-specific antiviral architecture shaped by concerted adaptive evolution, highlighting a balance between viral control and immune tolerance, likely underlying bats exceptional resilience to disease. Author summaryBats exhibit a remarkable capacity to host a wide range of viral families, including viruses highly pathogenic to humans, while rarely displaying overt clinical symptoms. This resilience suggests unique immune adaptations to control infections while avoiding harmful inflammation. To investigate the genetic basis of this trait, we conducted a comparative evolutionary analysis of genes involved in the type I interferon (IFN) pathway, a core component of the mammalian antiviral response, across multiple bat species and other mammals. Our results reveal strong signatures of positive selection on key antiviral effectors in bats, including sensors of viral nucleic acids, ADP-ribosylating PARP enzymes, and components of chemokine signaling pathways. Notably, several chemokines and their receptors display accelerated evolution, pointing to a critical role in modulating immune responses. We further identify viral chemokine-binding proteins (vCKBPs) from poxviruses as one likely driver of natural selection, suggesting ongoing evolutionary arms races between host immune signaling and viral immune evasion. Overall, these findings fit with a model in which bats have evolved a balance with potent antiviral activity and controlled immune activation. Elucidating these mechanisms offers promising insights for developing novel approaches to managing inflammation and viral infections in humans.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Jacquet, S., El Filali, A., Etienne, L., Pontier, D.. 2025-09-19. Extensive adaptive changes in bat interferon pathway reveal specific molecular functions at the forefront of host - virus coevolution. https://doi.org/10.1101/2025.09.17.676773

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

RELAX does not reproduce its own estimates at default settings, and its output does not show it

Selection-intensity estimates from RELAX are reported as a point value of K with a likelihood-ratio P. We report that, at default settings and on data of ordinary size, the program does not reproduce its own fits. Of 27 enzyme entries refitted under two optimiser configurations, none reproduced its log-likelihood to within 0.01 units; the median change was 103 units, the largest over 3,400, and four verdicts reversed. Eighty null orthologues reproduced none. A byte-identical command returned a distinct likelihood on every repetition, single-threaded, across three releases, and on alignments simulated under the fitted model, where 3.3 per cent of replicates reproduced. The documented random-number seed never reaches the generator when assigned on the command line, yet reads back as the value supplied. PAML localises the cause: its two-ratio model, without site classes, reproduced its log-likelihood for all 288 genes; its site-class models agreed for 27 to 67 per cent. The instability follows the mixture over sites, not the program. The output does not show it: 46 of 410 fits ended with a negative likelihood-ratio statistic, impossible under convergence, and 123 of 410 report a K re-estimated under a domain restriction rather than the unconstrained maximum. Of 234 published studies using RELAX, none reported a seed. Seeding while holding the thread count at one reproduced sixty of sixty runs on twenty genes under two releases; the seed alone reproduced none of five, and no documentation states the second condition. We recommend that fits be repeated and their dispersion published.

evolutionary biology↗

Sequential accumulation of adaptive alleles forms an inversion supergene in deer mice

Supergenes are clusters of co-inherited loci that affect multiple or complex phenotypes. Despite the growing number of chromosomal inversions identified as supergenes in natural populations, their molecular basis and evolutionary history often remain obscure. Here, we identified two candidate genes, Slc45a2 and Npr3, within a 41-Mb inversion supergene in the deer mouse (Peromyscus maniculatus) that respectively drive darker coats and longer tails - two traits associated with forest adaptation. Mice homozygous for the inversion (inv/inv) exhibit elevated Slc45a2 expression in melanocytes relative to the congenic standard genotype (std/std), disrupting pheomelanin production. In parallel, downregulation of Npr3 in inv/inv mouse growth plates prolongs postnatal growth of caudal vertebrae, resulting in tail elongation. Population-level analyses further implicate that this supergene arose through the subsequent accumulation of the Npr3 allele within the inversion, rather than by capturing all beneficial mutations at its origin.

evolutionary biology↗

Toxin structure shapes palatability in a chemically defended butterfly

The toxicity of chemical defences is well studied, but the potential contribution of compound structure to predator deterrence remains largely unexplored. Whether predation acts more strongly on toxicity or unpalatability remains largely untested, partly because few systems allow toxin structure to vary independently of quantity. Heliconius sara larvae provide such a system: those reared on Passiflora auriculata sequester cyclopentenyl cyanogenic glucosides (CGs), while those reared on P. biflora biosynthesise comparable quantities of aliphatic CGs. Using two invertebrate predators, Camponotus floridanus ants and Hierodula membranacea mantids, we tested whether this structural difference affects palatability independent of toxicity. Mantids rejected larvae with cyclopentenyl CGs more often than larvae with aliphatic CGs, despite no detectable difference in total CG content. This pattern was mirrored in extract-based assays with ants, independently of cyanide release: extracts with cyclopentenyl CGs remained deterrent, while extracts with aliphatic CGs did not differ in deterrence from water. Live larvae, by contrast, elicited similar responses from ants regardless of CG structure. These results show that variation in toxin structure can strongly affect palatability, with some compounds conferring greater protection than others. This demonstrates the importance of chemical structural diversity in the evolution of chemical defences.

evolutionary biology↗