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Updated: May 10, 2026

Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
Published on: October 7, 2011
Virions at the gates: receptors and the host-virus arms race
1Department of Molecular Biology and Microbiology, Tufts University, Boston, Massachusetts, USA. john.coffin@tufts.edu
Abstract:
All viruses need to bind to specific receptor molecules on the surface of target cells to initiate infection. Virus-receptor binding is highly specific, and this specificity determines both the species and the cell type that can be infected by a given virus. In some well-studied cases, the virus-binding region on the receptor has been found to be unrelated to the receptor's normal cellular function. Resistance to virus infection can thus evolve by selection of mutations that alter amino acids in the binding region with minimal effect on normal function. This sort of positive selection can be used to infer the history of the host-virus "arms race" during their coevolution. In a new study, Demogines et al. use a combination of phylogenetic, structural, and virological analysis to infer the history and significance of positive selection on the transferrin receptor TfR1, a housekeeping protein required for iron uptake and the cell surface receptor for at least three different types of virus. The authors show that only two parts of the rodent TfR1 molecule have been subject to positive selection and that these correspond to the binding sites for two of these viruses-the mouse mammary tumor virus (a retrovirus) and Machupo virus (an arenavirus). They confirmed this result by introducing the inferred binding site mutations into the wild-type protein and testing for receptor function. Related arenaviruses are beginning to spread in human populations in South America as the cause of often fatal hemorrhagic fevers, and, although Demogines et al. could find no evidence of TfR1 mutations in this region that might have been selected as a consequence of human infection, the authors identified one such mutation in Asian populations that affects infection with these viruses.
Insights
Virus-receptor interactions drive host-virus coevolution. Researchers found positive selection on the transferrin receptor (TfR1) binding sites for specific viruses, revealing insights into host-pathogen evolutionary history.
Area of Science:
- Evolutionary Biology
- Virology
- Molecular Biology
Background:
- Viruses require specific cell surface receptors for host cell entry, dictating host and cell tropism.
- Virus-receptor binding sites can evolve independently of the receptor's primary cellular function.
- Host-virus coevolutionary dynamics can be studied by analyzing positive selection on host receptors.
Purpose of the Study:
- To investigate the evolutionary history and functional significance of positive selection on the transferrin receptor (TfR1).
- To identify specific regions of TfR1 under positive selection due to virus interactions.
- To understand the coevolutionary arms race between hosts and viruses mediated by TfR1.
Main Methods:
- Phylogenetic analysis to detect positive selection.
- Structural analysis to map selected regions on TfR1.
- Virological assays to test the functional impact of identified mutations on virus binding.
Main Results:
- Two specific regions of rodent TfR1 showed evidence of positive selection.
- These selected regions correspond to the binding sites for mouse mammary tumor virus (a retrovirus) and Machupo virus (an arenavirus).
- Experimental validation confirmed that mutations in these sites affect virus binding and receptor function.
Conclusions:
- Positive selection on TfR1 reflects a history of host-virus coevolution.
- Specific TfR1 binding sites are key targets in the evolutionary arms race with certain viruses.
- A TfR1 mutation in Asian populations may confer resistance to arenavirus infection.
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