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Quiescence to emergence: Does nairovirus diversity loss increase disease transmission, severity and the risk of emergence?

Lead Research Organisation: University of Glasgow
Department Name: College of Medical, Veterinary, Life Science

Abstract

Disease emergence occurs when a pathogen spills over into and spreads in a novel host population, or when established host-pathogen interactions change, leading to an increase in the incidence and / or severity of disease. The role of biodiversity in disease emergence has been investigated primarily from two angles: First, emergence risk may be exacerbated in areas where host populations of interest about biodiversity hotspots, since these are likely to contain a multitude of candidate pathogens -- some poised for emergence. On the other hand, host diversity may dilute emergence risk for some generalist pathogens, because the most competent hosts tend to be less abundant in diverse ecological communities. As such, in the context of disease emergence, pathogen biodiversity is typically thought to pose a threat, whereas host biodiversity is often considered to offer protection. Since host and pathogen biodiversity are tightly linked, the consequences of biodiversity loss for disease emergence are thus difficult to predict.

Here we offer a novel perspective on the links between biodiversity loss and disease emergence: We hypothesize that the loss of pathogen biodiversity may contribute to disease emergence risk, because it reduces the richness of (mild / subclinical) infections by pathogens that are related to, but distinct from the dangerous infectious agents that are most likely to cause disease emergence. Specifically, we posit that exposure to diverse related pathogens prompts hosts to establish multivalent cross-reactive antibody portfolios, which can (i) prevent severe disease, (ii) reduce transmission, and ultimately (iii) limit the risk of emergence of potentially harmful pathogens into ecological niches that they could occupy. If true, these insights could be applied to (iv) design multivalent "portfolio" vaccines, which can provide relatively stable protection against broad viral lineages. We propose to investigate these ideas using East African nairoviruses as a model system, which include important animal (e.g. Nairobi Sheep Disease Virus, NSDV) and zoonotic (e.g. Crimean-Congo Haemorrhagic Fever Virus, CCHFV) pathogens, as well as species not known to cause disease in either host (e.g. Dugbe virus, Macira virus). Conceptually, the plausibility of our hypothesis is supported by examples of human disease emergence (e.g. influenza, monkeypox) driven by a population-level decline in natural or vaccine-induced pathogen exposure.

With this study, we hope to contribute significantly in two connected areas of investigation. First, we re-cast competitive exclusion and community invasibility, familiar concepts in community ecology, in the context of co-circulating related pathogens. Immuno-epidemiological models are pivotal here, because they link mechanisms that occur within individual hosts (i.e., cross-immunity among related pathogens) with consequences that play out in host, vector and pathogen communities. As such, the proposed work establishes a versatile, data-driven multi-scale modeling platform to understand how the diversity of related pathogens mediates disease emergence risk. Second, we leverage this new perspective on emergence risk to pioneer a novel approach to vaccine design. Conventionally, vaccines are tightly targeted to prevent infection by well characterized pathogens: a powerful approach, albeit with limitations in the face of novel pathogen threats. Our work evaluates the idea that broadly targeted "portfolio" vaccines could reduce the risk and possible impacts of disease emergence - potentially shifting the role of vaccines in pandemic preparedness from response to prevention.

Publications

10 25 50
 
Description EEID Nairovirus One Health Collaboration (Pirbright-ILRI-Oxford-OSU-CVR) 
Organisation International Livestock Research Institute (ILRI)
Country Kenya 
Sector Charity/Non Profit 
PI Contribution This collaboration brings together researchers from the Pirbright Institute, the International Livestock Research Institute, the University of Oxford, and Oregon State University, working with the MRC-University of Glasgow Centre for Virus Research. The partnership forms part of an Ecology and Evolution of Infectious Diseases (EEID) programme investigating nairovirus diversity, cross-reactivity and emergence risk in East Africa. The collaboration integrates expertise across virology, veterinary science, ecology, immunology, epidemiology and computational biology to better understand the drivers of zoonotic spillover and disease emergence.
Collaborator Contribution Ongoing research collaborationThe Glasgow team leads the human virology and genomic analysis components of the collaboration, focusing on characterising nairovirus diversity and cross-reactive immune responses in human populations exposed to tick-borne viruses. Researchers at CVR contribute expertise in viral genomics, serology, metagenomic sequencing and evolutionary analysis of emerging viruses. The team also coordinates integration of genomic and immunological datasets generated through human surveillance studies and contributes to the design and analysis of serosurveys in endemic regions. The Glasgow group additionally contributes computational analysis and modelling to understand how viral diversity and immune cross-reactivity influence transmission risk, disease severity and emergence potential. Partner institutions contribute complementary expertise across animal health, ecology and vector biology. Researchers at the Pirbright Institute provide expertise in livestock infection biology, tick-borne virus ecology and immune responses in animal hosts, including experimental and field studies of tick-host-virus interactions. The International Livestock Research Institute contributes expertise in livestock health systems, field epidemiology and surveillance of zoonotic pathogens in African farming communities, facilitating field studies and sampling in endemic regions. Researchers at the University of Oxford contribute expertise in evolutionary biology, pathogen genomics and modelling of infectious disease emergence, helping integrate ecological and genomic data to understand pathogen evolution and spillover risk. Oregon State University contributes expertise in disease ecology, wildlife reservoirs and the evolutionary dynamics of zoonotic pathogens, supporting analysis of ecological drivers of viral emergence. Together, the collaboration integrates human, livestock and ecological datasets to understand how viral diversity and host immunity influence the emergence of nairovirus infections.
Impact This collaboration supports a large interdisciplinary research programme investigating nairovirus diversity and emergence risk at the human-livestock-vector interface. Initial activities have included: planning and coordination of multi-country field studies in East Africa development and validation of serological assays to detect cross-reactive immune responses to nairoviruses design of serosurveys to estimate exposure to Crimean-Congo haemorrhagic fever virus and related viruses in human and livestock populations integration of ecological, genomic and epidemiological datasets to investigate drivers of zoonotic emergence The collaboration is multi-disciplinary, involving expertise in: virology veterinary science disease ecology vector biology epidemiology immunology genomics and bioinformatics mathematical and evolutionary modelling
Start Year 2025
 
Description EEID Nairovirus One Health Collaboration (Pirbright-ILRI-Oxford-OSU-CVR) 
Organisation Oregon State University
Country United States 
Sector Academic/University 
PI Contribution This collaboration brings together researchers from the Pirbright Institute, the International Livestock Research Institute, the University of Oxford, and Oregon State University, working with the MRC-University of Glasgow Centre for Virus Research. The partnership forms part of an Ecology and Evolution of Infectious Diseases (EEID) programme investigating nairovirus diversity, cross-reactivity and emergence risk in East Africa. The collaboration integrates expertise across virology, veterinary science, ecology, immunology, epidemiology and computational biology to better understand the drivers of zoonotic spillover and disease emergence.
Collaborator Contribution Ongoing research collaborationThe Glasgow team leads the human virology and genomic analysis components of the collaboration, focusing on characterising nairovirus diversity and cross-reactive immune responses in human populations exposed to tick-borne viruses. Researchers at CVR contribute expertise in viral genomics, serology, metagenomic sequencing and evolutionary analysis of emerging viruses. The team also coordinates integration of genomic and immunological datasets generated through human surveillance studies and contributes to the design and analysis of serosurveys in endemic regions. The Glasgow group additionally contributes computational analysis and modelling to understand how viral diversity and immune cross-reactivity influence transmission risk, disease severity and emergence potential. Partner institutions contribute complementary expertise across animal health, ecology and vector biology. Researchers at the Pirbright Institute provide expertise in livestock infection biology, tick-borne virus ecology and immune responses in animal hosts, including experimental and field studies of tick-host-virus interactions. The International Livestock Research Institute contributes expertise in livestock health systems, field epidemiology and surveillance of zoonotic pathogens in African farming communities, facilitating field studies and sampling in endemic regions. Researchers at the University of Oxford contribute expertise in evolutionary biology, pathogen genomics and modelling of infectious disease emergence, helping integrate ecological and genomic data to understand pathogen evolution and spillover risk. Oregon State University contributes expertise in disease ecology, wildlife reservoirs and the evolutionary dynamics of zoonotic pathogens, supporting analysis of ecological drivers of viral emergence. Together, the collaboration integrates human, livestock and ecological datasets to understand how viral diversity and host immunity influence the emergence of nairovirus infections.
Impact This collaboration supports a large interdisciplinary research programme investigating nairovirus diversity and emergence risk at the human-livestock-vector interface. Initial activities have included: planning and coordination of multi-country field studies in East Africa development and validation of serological assays to detect cross-reactive immune responses to nairoviruses design of serosurveys to estimate exposure to Crimean-Congo haemorrhagic fever virus and related viruses in human and livestock populations integration of ecological, genomic and epidemiological datasets to investigate drivers of zoonotic emergence The collaboration is multi-disciplinary, involving expertise in: virology veterinary science disease ecology vector biology epidemiology immunology genomics and bioinformatics mathematical and evolutionary modelling
Start Year 2025
 
Description EEID Nairovirus One Health Collaboration (Pirbright-ILRI-Oxford-OSU-CVR) 
Organisation The Pirbright Institute
Country United Kingdom 
Sector Academic/University 
PI Contribution This collaboration brings together researchers from the Pirbright Institute, the International Livestock Research Institute, the University of Oxford, and Oregon State University, working with the MRC-University of Glasgow Centre for Virus Research. The partnership forms part of an Ecology and Evolution of Infectious Diseases (EEID) programme investigating nairovirus diversity, cross-reactivity and emergence risk in East Africa. The collaboration integrates expertise across virology, veterinary science, ecology, immunology, epidemiology and computational biology to better understand the drivers of zoonotic spillover and disease emergence.
Collaborator Contribution Ongoing research collaborationThe Glasgow team leads the human virology and genomic analysis components of the collaboration, focusing on characterising nairovirus diversity and cross-reactive immune responses in human populations exposed to tick-borne viruses. Researchers at CVR contribute expertise in viral genomics, serology, metagenomic sequencing and evolutionary analysis of emerging viruses. The team also coordinates integration of genomic and immunological datasets generated through human surveillance studies and contributes to the design and analysis of serosurveys in endemic regions. The Glasgow group additionally contributes computational analysis and modelling to understand how viral diversity and immune cross-reactivity influence transmission risk, disease severity and emergence potential. Partner institutions contribute complementary expertise across animal health, ecology and vector biology. Researchers at the Pirbright Institute provide expertise in livestock infection biology, tick-borne virus ecology and immune responses in animal hosts, including experimental and field studies of tick-host-virus interactions. The International Livestock Research Institute contributes expertise in livestock health systems, field epidemiology and surveillance of zoonotic pathogens in African farming communities, facilitating field studies and sampling in endemic regions. Researchers at the University of Oxford contribute expertise in evolutionary biology, pathogen genomics and modelling of infectious disease emergence, helping integrate ecological and genomic data to understand pathogen evolution and spillover risk. Oregon State University contributes expertise in disease ecology, wildlife reservoirs and the evolutionary dynamics of zoonotic pathogens, supporting analysis of ecological drivers of viral emergence. Together, the collaboration integrates human, livestock and ecological datasets to understand how viral diversity and host immunity influence the emergence of nairovirus infections.
Impact This collaboration supports a large interdisciplinary research programme investigating nairovirus diversity and emergence risk at the human-livestock-vector interface. Initial activities have included: planning and coordination of multi-country field studies in East Africa development and validation of serological assays to detect cross-reactive immune responses to nairoviruses design of serosurveys to estimate exposure to Crimean-Congo haemorrhagic fever virus and related viruses in human and livestock populations integration of ecological, genomic and epidemiological datasets to investigate drivers of zoonotic emergence The collaboration is multi-disciplinary, involving expertise in: virology veterinary science disease ecology vector biology epidemiology immunology genomics and bioinformatics mathematical and evolutionary modelling
Start Year 2025
 
Description EEID Nairovirus One Health Collaboration (Pirbright-ILRI-Oxford-OSU-CVR) 
Organisation University of Oxford
Country United Kingdom 
Sector Academic/University 
PI Contribution This collaboration brings together researchers from the Pirbright Institute, the International Livestock Research Institute, the University of Oxford, and Oregon State University, working with the MRC-University of Glasgow Centre for Virus Research. The partnership forms part of an Ecology and Evolution of Infectious Diseases (EEID) programme investigating nairovirus diversity, cross-reactivity and emergence risk in East Africa. The collaboration integrates expertise across virology, veterinary science, ecology, immunology, epidemiology and computational biology to better understand the drivers of zoonotic spillover and disease emergence.
Collaborator Contribution Ongoing research collaborationThe Glasgow team leads the human virology and genomic analysis components of the collaboration, focusing on characterising nairovirus diversity and cross-reactive immune responses in human populations exposed to tick-borne viruses. Researchers at CVR contribute expertise in viral genomics, serology, metagenomic sequencing and evolutionary analysis of emerging viruses. The team also coordinates integration of genomic and immunological datasets generated through human surveillance studies and contributes to the design and analysis of serosurveys in endemic regions. The Glasgow group additionally contributes computational analysis and modelling to understand how viral diversity and immune cross-reactivity influence transmission risk, disease severity and emergence potential. Partner institutions contribute complementary expertise across animal health, ecology and vector biology. Researchers at the Pirbright Institute provide expertise in livestock infection biology, tick-borne virus ecology and immune responses in animal hosts, including experimental and field studies of tick-host-virus interactions. The International Livestock Research Institute contributes expertise in livestock health systems, field epidemiology and surveillance of zoonotic pathogens in African farming communities, facilitating field studies and sampling in endemic regions. Researchers at the University of Oxford contribute expertise in evolutionary biology, pathogen genomics and modelling of infectious disease emergence, helping integrate ecological and genomic data to understand pathogen evolution and spillover risk. Oregon State University contributes expertise in disease ecology, wildlife reservoirs and the evolutionary dynamics of zoonotic pathogens, supporting analysis of ecological drivers of viral emergence. Together, the collaboration integrates human, livestock and ecological datasets to understand how viral diversity and host immunity influence the emergence of nairovirus infections.
Impact This collaboration supports a large interdisciplinary research programme investigating nairovirus diversity and emergence risk at the human-livestock-vector interface. Initial activities have included: planning and coordination of multi-country field studies in East Africa development and validation of serological assays to detect cross-reactive immune responses to nairoviruses design of serosurveys to estimate exposure to Crimean-Congo haemorrhagic fever virus and related viruses in human and livestock populations integration of ecological, genomic and epidemiological datasets to investigate drivers of zoonotic emergence The collaboration is multi-disciplinary, involving expertise in: virology veterinary science disease ecology vector biology epidemiology immunology genomics and bioinformatics mathematical and evolutionary modelling
Start Year 2025
 
Description Pirbright-CVR One Health Computational Collaboration 
Organisation The Pirbright Institute
Country United Kingdom 
Sector Academic/University 
PI Contribution This collaboration involves researchers at the Pirbright Institute and the MRC-University of Glasgow Centre for Virus Research, working within the framework of the One Health Computational Network (OHCN). The collaboration brings together expertise in viral genomics, computational biology, epidemiology, vector biology and emerging virus research. It includes researchers working on pathogens affecting human, animal and vector populations and aims to integrate computational approaches with experimental and field-based surveillance data to improve prediction and detection of emerging epidemic threats.
Collaborator Contribution The Glasgow team contributed leadership and coordination of the One Health Computational Network and helped develop the conceptual framework for integrating genomic, ecological and epidemiological datasets across human and animal health systems. Researchers at CVR contributed expertise in viral genomics, computational analysis, epidemic modelling and pathogen surveillance, including experience from national and international genomic surveillance initiatives. The team also facilitated workshops, network meetings and the One Health Computational Network symposium held in Glasgow, which brought together partners from academic, public health and veterinary research institutions. In addition, the Glasgow group led the development of follow-on funding proposals building on the collaboration, including contributions to the INTIME Phase II interdisciplinary epidemic preparedness application and planning for future collaborative work within an MRC Centre of Research Excellence (CoRE) framework.
Impact This collaboration has resulted in the establishment of the One Health Computational Network, bringing together researchers working across human, animal and environmental health to develop computational approaches for epidemic preparedness. Key activities included a programme of joint workshops, regular network meetings and a One Health Computational Network conference held in Glasgow, which brought together researchers, policymakers and public health stakeholders. The meeting was attended by representatives from national and international public health agencies and policy organisations, including the UK Health Security Agency, Public Health Scotland, UK government departments, and international partners including the World Health Organization and European public health collaborators. The collaboration has facilitated new interdisciplinary connections between computational scientists, virologists, epidemiologists and veterinary researchers working across the human-animal interface. It has also supported the development of new collaborative research proposals, including a Phase II interdisciplinary epidemic preparedness application (INTIME) and plans for future collaboration within an MRC Centre of Research Excellence (CoRE) framework. More broadly, the network has strengthened links between academic researchers and public health stakeholders, helping identify opportunities to integrate genomic, ecological and population data to improve early detection and prediction of emerging viral threats.
Start Year 2024