Adaptive mutations in the nuclear export protein of human-derived H5N1 strains facilitate a polymerase activity-enhancing conformation.

Peter Reuther1 Sebastian Giese Veronika Götz Normann Kilb Benjamin Mänz Linda Brunotte Martin Schwemmle
Affiliations 1 institutions
  1. Institute for Virology, University Medical Center Freiburg, Freiburg, Germany.

Abstract

The nuclear export protein (NEP) (NS2) of the highly pathogenic human-derived H5N1 strain A/Thailand/1(KAN-1)/2004 with the adaptive mutation M16I greatly enhances the polymerase activity in human cells in a concentration-dependent manner. While low NEP levels enhance the polymerase activity, high levels are inhibitory. To gain insights into the underlying mechanism, we analyzed the effect of NEP deletion mutants on polymerase activity after reconstitution in human cells. This revealed that the polymerase-enhancing function of NEP resides in the C-terminal moiety and that removal of the last three amino acids completely abrogates this activity. Moreover, compared to full-length NEP, the C-terminal moiety alone exhibited significantly higher activity and seemed to be deregulated, since even the highest concentration did not result in an inhibition of polymerase activity. To determine transient interactions between the N- and C-terminal domains in cis, we fused both ends of NEP to a split click beetle luciferase and performed fragment complementation assays. With decreasing temperature, increased luciferase activity was observed, suggesting that intramolecular binding between the C- and N-terminal domains is preferentially stabilized at low temperatures. This stabilizing effect was significantly reduced with the adaptive mutation M16I or a combination of adaptive mutations (M16I, Y41C, and E75G), which further increased polymerase activity also at 34°C. We therefore propose a model in which the N-terminal moiety of NEP exerts an inhibitory function by back-folding to the C-terminal domain. In this model, adaptive mutations in NEP decrease binding between the C- and N-terminal domains, thereby allowing the protein to "open up" and become active already at a low temperature.

Supporting text Virus Host Location
Mutation 209 Cell Nucleus 1 HEK293 Cells 61 Humans 1440 Influenza A Virus, H5N1 Subtype 300 Protein Conformation 44 Protein Folding 3 Protein Transport 1 Temperature 7 Viral Nonstructural Proteins 28 Virus Replication 191

Evidence records

2 total
Functional Mechanism
2 records · 1 evidence types
Evidence type
2 records
OVE1616
Key finding

Mutation M16I in the nuclear export protein (NEP) of human-derived H5N1 strain A/Thailand/1(KAN-1)/2004 enhances viral polymerase activity in human cells.

Virus
Host
Not specified
Location
Not specified
Supporting text

The nuclear export protein (NEP) (NS2) of the highly pathogenic human-derived H5N1 strain A/Thailand/1(KAN-1)/2004 with the adaptive mutation M16I greatly enhances the polymerase activity in human cells in a concentration-dependent manner.

Genes or proteins
nuclear export protein (NEP) | NS2
Mutations
M16I
Mechanism types
replication adaptation
OVE1617
Key finding

Adaptive mutations M16I, Y41C, and E75G in the NEP of H5N1 strain A/Thailand/1(KAN-1)/2004 reduce domain binding and increase polymerase activity at lower temperature.

Virus
Host
Not specified
Location
Not specified
Supporting text

This stabilizing effect was significantly reduced with the adaptive mutation M16I or a combination of adaptive mutations (M16I, Y41C, and E75G) in the NEP of the highly pathogenic human-derived H5N1 strain A/Thailand/1(KAN-1)/2004, which further increased polymerase activity also at 34°C.

Genes or proteins
nuclear export protein (NEP)
Mutations
M16I | Y41C | E75G
Mechanism types
replication adaptation