An R195K Mutation in the PA-X Protein Increases the Virulence and Transmission of Influenza A Virus in Mammalian Hosts.

Yipeng Sun1 Zhe Hu2 Xuxiao Zhang2 Mingyue Chen2 Zhen Wang2 Guanlong Xu2 Yuhai Bi3 Qi Tong2 Mingyang Wang2 Honglei Sun2 Juan Pu2 Munir Iqbal4 Jinhua Liu1
Affiliations 4 institutions
  1. Key Laboratory of Animal Epidemiology of the Ministry of Agriculture, College of Veterinary Medicine, China Agricultural University, Beijing, China [email protected] [email protected].
  2. Key Laboratory of Animal Epidemiology of the Ministry of Agriculture, College of Veterinary Medicine, China Agricultural University, Beijing, China.
  3. CAS Key Laboratory of Pathogenic Microbiology and Immunology, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Disease, Institute of Microbiology, Center for Influenza Research and Early Warning (CASCIRE), Chinese Academy of Sciences, Beijing, China.
  4. The Pirbright Institute, Pirbright, Woking, Surrey, United Kingdom.

Abstract

In the 21st century, the emergence of H7N9 and H1N1/2009 influenza viruses, originating from animals and causing severe human infections, has prompted investigations into the genetic alterations required for cross-species transmission. We previously found that replacement of the human-origin PA gene segment in avian influenza virus (AIV) could overcome barriers to cross-species transmission. Recently, it was reported that the PA gene segment encodes both the PA protein and a second protein, PA-X. Here, we investigated the role of PA-X. We found that an H9N2 avian influenza reassortant virus bearing a human-origin H1N1/2009 PA gene was attenuated in mice after the loss of PA-X. Reverse genetics analyses of PA-X substitutions conserved in human influenza viruses indicated that R195K, K206R, and P210L substitutions conferred significantly increased replication and pathogenicity on H9N2 virus in mice and ferrets. PA-X R195K was present in all human H7N9 and H1N1/2009 viruses and predominated in human H5N6 viruses. Compared with PA-X 195R, H7N9 influenza viruses bearing PA-X 195K showed increased replication and transmission in ferrets. We further showed that PA-X 195K enhanced lung inflammatory responses, potentially due to decreased host shutoff function. A competitive transmission study in ferrets indicated that 195K provides a replicative advantage over 195R in H1N1/2009 viruses. In contrast, PA-X 195K did not influence the virulence of H9N2 AIV in chickens, suggesting that the effects of the substitution were mammal specific. Therefore, future surveillance efforts should scrutinize this region of PA-X because of its potential impact on cross-species transmission of influenza viruses.IMPORTANCE Four influenza pandemics in humans (the Spanish flu of 1918 [H1N1], the Asian flu of 1957 [H2N2], the Hong Kong flu of 1968 [H3N2], and the swine origin flu of 2009 [H1N1]) are all proposed to have been caused by avian or swine influenza viruses that acquired virulence factors through adaptive mutation or reassortment with circulating human viruses. Currently, influenza viruses circulating in animals are repeatedly transmitted to humans, posing a significant threat to public health. However, the molecular properties accounting for interspecies transmission of influenza viruses remain unclear. In the present study, we demonstrated that PA-X plays an important role in cross-species transmission of influenza viruses. At least three human-specific amino acid substitutions in PA-X dramatically enhanced the adaptation of animal influenza viruses in mammals. In particular, PA-X 195K might have contributed to cross-species transmission of H7N9, H5N6, and H1N1/2009 viruses from animal reservoirs to humans.

Supporting text Virus Host Location
cross-species transmission 75 influenza virus 29 PA-X 2 virulence 116 Influenza A virus 186 Influenza, Human 286 Mutation, Missense 26 Virulence Factors 9 A549 Cells 14 Amino Acid Substitution 81 Animals 1949 Dogs 177 HEK293 Cells 61 Humans 1441 Madin Darby Canine Kidney Cells 36 Repressor Proteins 2 Viral Nonstructural Proteins 28 PA-X protein, influenza A virus 2

Evidence records

7 total
Experimental Infection
4 records · 2 evidence types
Evidence type
2 records
OVE3672
Key finding

H9N2 avian influenza virus carrying R195K, K206R, and P210L substitutions in PA‑X showed significantly increased replication and pathogenicity in mice.

Virus
Host
Location
Not specified
Supporting text

Reverse genetics analyses of PA‑X substitutions conserved in human influenza viruses indicated that R195K, K206R, and P210L substitutions conferred significantly increased replication and pathogenicity on H9N2 virus in mice and ferrets.

Method
reverse genetics analysis | infection experiment | pathogenicity assessment in animal model
Experimental system
mice infection model
OVE3673
Key finding

H9N2 avian influenza virus carrying R195K, K206R, and P210L substitutions in PA‑X exhibited significantly increased replication and pathogenicity in ferrets.

Virus
Host
Location
Not specified
Supporting text

Reverse genetics analyses of PA‑X substitutions conserved in human influenza viruses indicated that R195K, K206R, and P210L substitutions conferred significantly increased replication and pathogenicity on H9N2 virus in mice and ferrets.

Method
reverse genetics analysis | infection experiment | pathogenicity assessment in animal model
Experimental system
ferret infection model
Evidence type
2 records
OVE3674
Key finding

H7N9 influenza viruses bearing the PA-X 195K substitution showed increased transmission in ferrets compared with viruses carrying PA-X 195R.

Virus
Host
Location
Not specified
Supporting text

Compared with PA-X 195R, H7N9 influenza viruses bearing PA-X 195K showed increased replication and transmission in ferrets.

Method
reverse genetics | ferret transmission experiment | viral titration | comparison of PA-X variants
Experimental system
ferret contact transmission model under controlled laboratory conditions
OVE3675
Key finding

In ferret competitive transmission experiments, the H1N1/2009 virus carrying PA-X 195K had a replicative advantage over the 195R variant.

Virus
Host
Location
Not specified
Supporting text

A competitive transmission study in ferrets indicated that 195K provides a replicative advantage over 195R in H1N1/2009 viruses.

Method
competitive ferret transmission assay | reverse genetics | quantitative viral load analysis | comparison of PA-X variants
Experimental system
competitive ferret contact transmission model under controlled laboratory conditions
Functional Mechanism
3 records · 1 evidence types
Evidence type
3 records
OVE3676
Key finding

The R195K substitution in the influenza A virus PA‑X protein increases virulence and transmission in mammalian hosts, representing a mammal‑specific molecular adaptation.

Virus
Host
Not specified
Location
Not specified
Supporting text

An R195K Mutation in the PA‑X Protein Increases the Virulence and Transmission of Influenza A Virus in Mammalian Hosts.

Genes or proteins
PA‑X
Mutations
R195K
Mechanism types
virulence adaptation | transmission fitness | host-range expansion
OVE3677
Key finding

The PA‑X R195K substitution is fixed or predominant in human H7N9, H1N1/2009, and H5N6 influenza viruses, indicating a human‑specific adaptive genotype associated with mammalian host adaptation.

Virus
Host
Not specified
Location
Not specified
Supporting text

PA‑X R195K was present in all human H7N9 and H1N1/2009 viruses and predominated in human H5N6 viruses.

Genes or proteins
PA‑X
Mutations
R195K
Mechanism types
host-range expansion | replication adaptation
OVE3679
Key finding

Human-specific amino acid substitutions in the PA-X protein enhanced adaptation of avian influenza viruses in mammalian hosts, supporting animal-to-animal cross-species transmission.

Virus
Host
Location
Not specified
Supporting text

At least three human-specific amino acid substitutions in PA-X dramatically enhanced the adaptation of animal influenza viruses in mammals.

Mechanism types
host adaptation | adaptive mutation