Related Experiment Video
Updated: Jan 19, 2026

Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
Published on: October 7, 2011
Host-virus-predator coexistence in a grey-box model with dynamic optimization of host fitness
Tron Frede Thingstad1, Selina Våge2
1Department of Biological Sciences, University of Bergen, 5020, Bergen, Norway. frede.thingstad@uib.no.
Abstract:
Lytic viruses are believed to affect both flow patterns and host diversity in microbial food webs. Models resolving host and virus communities into subgroups can represent both aspects. However, when flow pattern is the prime interest, such models may seem unnecessary complex. This has led to proposals of black-box models using only total community sizes as state variables. This simplification creates a coexistence problem, however, since predator and virus communities then compete for the same, shared, prey = host community. Mathematically, this problem can be solved by introducing feedbacks allowing community-level properties to adapt. The different mathematical alternatives for such feedback represent different ecological assumptions and thus different hypotheses for how the balance between predators and viruses is controlled in nature. We here explore a model where the feedback works through an increase in host community resistance in response to high virus abundances, thereby reducing virus production. We use a dynamic "strategy" index S to describe the balance between defensive and competitive abilities in the host community, and assume the rate of change in S to be proportional to the local slope of the per capita fitness gradient for the host. We explore how such a "grey-box" model can allow stable coexistence of viruses and predators, and how equilibrium food web structure, virus-to-host ratio, and partitioning of host production varies; both as functions of host community traits, and as functions of external bottom-up and top-down drivers.
More Related Videos
11:12Protocols for Investigating the Host-tissue Distribution, Transmission-mode, and Effect on the Host Fitness of a Densovirus in the Cotton Bollworm
Published on: April 12, 2017
07:23Detecting Virus and Salivary Proteins of a Leafhopper Vector in the Plant Host
Published on: September 14, 2021
Related Concept Videos
11:28Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
11:12Protocols for Investigating the Host-tissue Distribution, Transmission-mode, and Effect on the Host Fitness of a Densovirus in the Cotton Bollworm
07:23Detecting Virus and Salivary Proteins of a Leafhopper Vector in the Plant Host
09:57Establishment of Viral Infection and Analysis of Host-Virus Interaction in Drosophila Melanogaster
09:07Using Zebrafish Models of Human Influenza A Virus Infections to Screen Antiviral Drugs and Characterize Host Immune Cell Responses
08:20RNAi Screening for Host Factors Involved in Vaccinia Virus Infection using Drosophila Cells