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Maltepes, M. A.

Publications and source records attributed to Maltepes, M. A..

3 recordsLinked to original sources

Host type governs influenza evolutionary strategy across reservoir and spillover hosts

Despite its high propensity for host switching, the evolutionary mechanisms underlying influenza host adaptation remain unclear. H3Nx influenza viruses are uniquely generalist, with long-term lineages that circulate in avian, human, swine, equine, and canine hosts. Using 13,295 H3Nx sequences, we quantified host-specific adaptive evolution and developed a pipeline to map reassortment events onto trees with measures of statistical uncertainty. We find that while H3Nx viruses in mammals undergo adaptive evolution in HA and NA, viruses in birds experience very little directional selection. Instead, avian lineages exhibit high rates of reassortment, frequently generating novel reassortant lineages that persist transiently and turn over rapidly. 29.8-47.4% of all avian reassortant lineages are purged within the first year of circulation, and reassortment shows no fitness benefit in birds. In contrast, reassorted lineages in swine are more likely to persist long-term, suggesting that reassortment in swine may be broadly beneficial. Segment-specific reassortment patterns were also distinct between avian and mammalian viruses, with NA reassorting more frequently than expected in birds, but less frequently than expected in swine. Reassortment events are enriched between mammalian, but not avian, host switches, suggesting that reassortment may be most beneficial for mediating host switches among mammalian species. Together, our data suggest that host differences drive fundamentally different evolutionary outcomes for influenza viruses, transitioning from reassortment-dominant evolution in their avian reservoir, to varying degrees of adaptation upon establishment in mammals.

evolutionary biology↗

Fatal Human H3N8 Influenza Virus has a Moderate Pandemic Risk

In China, low pathogenic avian influenza (LPAI) H3N8 virus is widespread among chickens and has recently caused three zoonotic infections, with the last one in 2023 being fatal. Here we evaluated the relative pandemic risk of this 2023 zoonotic H3N8 influenza virus, utilizing our previously published decision tree. Serological analysis indicated that a large proportion of the human population does not have any cross-neutralizing antibodies against this H3N8 strain. LPAI H3N8 displayed a dual affinity for 2-3 and 2-6 sialic acids and replicated efficiently in human bronchial epithelial cells. Furthermore, we observed H3N8 transmission via direct contact but not aerosols to ferrets with pre-existing H3N2 immunity. Although pre-existing H3N2 immunity resulted in a shortened disease course in ferrets, it did not reduce disease severity or replication in the respiratory tract. This study suggests that this zoonotic H3N8 strain has moderate pandemic potential and emphasizes the continued need for avian influenza surveillance.

microbiology↗

The Evolution and Epidemiology of H3N2 Canine Influenza Virus After 20 Years in Dogs

The H3N2 canine influenza virus (CIV) emerged from an avian reservoir in Asia around 2004. As the virus has now been circulating entirely among dogs for 20 years, we here update our understanding of the evolution of virus in its new host. As a host-switched virus, H3N2 CIV will also reveal any host-adaptive changes arising during thousands of infections within its new host, and our analysis showed that the virus has evolved at a constant rate. CIV was first introduced into North America in 2015 from Korea, and we specifically examined the epidemiology of the virus among dogs in North America since then, including local outbreaks, regional die-outs, and repeated reintroduction from Asia. The H3N2 CIV now appears endemic only in China after dying out in South Korea around 2017. Virus lineages circulating in China appear to have seeded the most recent US outbreaks - with 2 or 3 introductions into North America during the past 3 years. Combining clinical reports, diagnostic testing data, and analysis of viral genomes we show that the virus spreads rapidly among dogs in kennels and shelters in different regions - likely dying out locally after all those animals become infected and immune. The overall epidemic therefore requires longer-distance dispersal of virus to initiate outbreaks in new locations. Patterns of spread in the USA may select viruses most adapted to those dense populations, which may lack the properties required for efficient long-distance transfers to other dog populations that would keep the virus in prolonged circulation. IMPORTANCEViruses occasionally jump into new hosts to cause epidemics and may spread widely due to movement of humans or animals, or their viruses, with profound consequences for global health. The emergence and epidemiology of new epidemic viruses in companion animals provides a model for understanding disease dynamics and evolution. The H3N2 canine influenza virus arose from an avian virus, and infected dogs provide many opportunities for human exposure. H3N2 CIV transmission is dominated by fast-moving outbreaks within dense populations in animal shelters or kennels, while sustaining the epidemic likely requires movement of virus to more distant dog populations. Viral spread within North Americahas only been sustained for a few years at a time after which the virus dies out. The epidemiological and evolutionary dynamics of this virus in this structured host population shows how an acute respiratory pathogen can emerge and spread in a new host and population.

microbiology↗