A Single Residue in Ebola Virus Receptor NPC1 Influences Cellular Host Range in Reptiles.

Esther Ndungo1 Andrew S Herbert2 Matthijs Raaben3,4 Gregor Obernosterer4 Rohan Biswas1 Emily Happy Miller1 Ariel S Wirchnianski2 Jan E Carette5 Thijn R Brummelkamp4 Sean P Whelan6 John M Dye2 Kartik Chandran1
Affiliations 6 institutions
  1. Department of Microbiology and Immunology, Albert Einstein College of Medicine, Bronx, New York, USA.
  2. United States Army Medical Research Institute of Infectious Diseases, Fort Detrick, Maryland, USA.
  3. Department of Microbiology and Immunobiology, Harvard Medical School, Boston, Massachusetts, USA
  4. Netherlands Cancer Institute, Amsterdam, The Netherlands.
  5. Department of Microbiology and Immunology, Stanford University School of Medicine, Stanford, California, USA.
  6. Department of Microbiology and Immunobiology, Harvard Medical School, Boston, Massachusetts, USA.

Abstract

Filoviruses are the causative agents of an increasing number of disease outbreaks in human populations, including the current unprecedented Ebola virus disease (EVD) outbreak in western Africa. One obstacle to controlling these epidemics is our poor understanding of the host range of filoviruses and their natural reservoirs. Here, we investigated the role of the intracellular filovirus receptor, Niemann-Pick C1 (NPC1) as a molecular determinant of Ebola virus (EBOV) host range at the cellular level. Whereas human cells can be infected by EBOV, a cell line derived from a Russell's viper (Daboia russellii) (VH-2) is resistant to infection in an NPC1-dependent manner. We found that VH-2 cells are resistant to EBOV infection because the Russell's viper NPC1 ortholog bound poorly to the EBOV spike glycoprotein (GP). Analysis of panels of viper-human NPC1 chimeras and point mutants allowed us to identify a single amino acid residue in NPC1, at position 503, that bidirectionally influenced both its binding to EBOV GP and its viral receptor activity in cells. Significantly, this single residue change perturbed neither NPC1's endosomal localization nor its housekeeping role in cellular cholesterol trafficking. Together with other recent work, these findings identify sequences in NPC1 that are important for viral receptor activity by virtue of their direct interaction with EBOV GP and suggest that they may influence filovirus host range in nature. Broader surveys of NPC1 orthologs from vertebrates may delineate additional sequence polymorphisms in this gene that control susceptibility to filovirus infection. IMPORTANCE Identifying cellular factors that determine susceptibility to infection can help us understand how Ebola virus is transmitted. We asked if the EBOV receptor Niemann-Pick C1 (NPC1) could explain why reptiles are resistant to EBOV infection. We demonstrate that cells derived from the Russell's viper are not susceptible to infection because EBOV cannot bind to viper NPC1. This resistance to infection can be mapped to a single amino acid residue in viper NPC1 that renders it unable to bind to EBOV GP. The newly solved structure of EBOV GP bound to NPC1 confirms our findings, revealing that this residue dips into the GP receptor-binding pocket and is therefore critical to the binding interface. Consequently, this otherwise well-conserved residue in vertebrate species influences the ability of reptilian NPC1 proteins to bind to EBOV GP, thereby affecting viral host range in reptilian cells.

Supporting text Virus Host Location
Ebola virus 18 endosomal receptor 1 filovirus 15 intracellular receptor 1 Niemann-Pick C1 3 NPC1 2 reptiles 2 viral receptor 3 virus-host interactions 4

Evidence records

2 total
Experimental Infection
1 records · 1 evidence types
Evidence type
1 records
OVE2349
Key finding

Ebola virus failed to infect a Russell's viper (Daboia russellii) VH-2 cell line, while human cells were susceptible, showing NPC1-dependent host-specific resistance.

Virus
Host
Location
Not specified
Supporting text

Whereas human cells can be infected by EBOV, a cell line derived from a Russell's viper (Daboia russellii) (VH-2) is resistant to infection in an NPC1-dependent manner.

Method
cell culture infection | NPC1-dependent entry assay | receptor-binding analysis
Experimental system
cell culture infection assay comparing reptile and human cells
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE2350
Key finding

The Russell's viper NPC1 ortholog bound poorly to the Ebola virus glycoprotein, and residue 503 of NPC1 was identified as a key determinant of its receptor activity for EBOV entry.

Virus
Host
Location
Not specified
Supporting text

We found that VH-2 cells are resistant to EBOV infection because the Russell's viper NPC1 ortholog bound poorly to the EBOV spike glycoprotein (GP). Analysis of panels of viper-human NPC1 chimeras and point mutants allowed us to identify a single amino acid residue in NPC1, at position 503, that bidirectionally influenced both its binding to EBOV GP and its viral receptor activity in cells.

Method
binding assays | chimeric receptor analysis | point mutation analysis
Receptors
NPC1