Mutations in the Influenza A Virus M1 Protein Enhance Virus Budding To Complement Lethal Mutations in the M2

Hsuan Liu1, Michael L Grantham1, Andrew Pekosz2

  • 1W. Harry Feinstone Department of Molecular Microbiology and Immunology, Johns Hopkins University Bloomberg School of Public Health, Baltimore, Maryland, USA.

Journal of Virology
|October 20, 2017
PubMed

Insights

Mutations in the influenza A virus M1 protein can compensate for a lethal M2 mutation, restoring virus production and filament formation. However, optimal infectivity still requires the M2 protein's cytoplasmic tail.

Area of Science:

  • Virology
  • Molecular Biology
  • Cell Biology

Background:

  • Influenza A virus assembly relies on M1 and M2 proteins for particle morphology and production.
  • A specific mutation in the M2 protein (Y76A) impairs infectious virus production and filament formation, with minor effects on budding.
  • Identifying compensatory mechanisms is crucial for understanding influenza virus assembly.

Purpose of the Study:

  • To identify mutations in the M1 protein that can suppress the lethal phenotype of the M2 Y76A mutation.
  • To investigate the complementary roles of M1 and M2 proteins in influenza A virus assembly, budding, and infectivity.

Main Methods:

  • A novel selection method was employed to screen for mutations in the M1 protein.
  • M1 suppressor mutations were introduced and tested for their ability to complement the M2 Y76A mutation.
  • Virus production, budding, filament formation, and infectivity were assessed in the presence and absence of specific M1 and M2 mutations.

Main Results:

  • Seven M1 mutations (at residues 73, 94, 135, 136, 138, or a double mutation 93/244) were identified as suppressors of the M2 Y76A mutation.
  • These M1 suppressor mutations restored infectious virus production and enhanced budding and filament formation, even without M2.
  • Optimal infectious virus replication remained dependent on the M2 protein's distal cytoplasmic tail.

Conclusions:

  • Influenza A virus budding and genome incorporation can occur independently.
  • M1 and M2 proteins play complementary roles in virus assembly, with some functional redundancy.
  • M1 suppressor mutations highlight the intricate coordination required for efficient influenza virus particle production.

Related Concept Videos

Leaky Scanning02:28

Leaky Scanning

During most eukaryotic translation processes, the small 40S ribosome subunit scans an mRNA from its 5' end until it encounters the first start AUG codon. The large 60S ribosomal subunit then joins the smaller one to initiate protein synthesis. The location of the translation initiation is largely determined by the nucleotides near the start codon as there may be multiple translation initiation sites present on the mRNA.  Marilyn Kozak discovered that the sequence RCCAUGG (where R...
5.8K
Viral Mutations00:36

Viral Mutations

A mutation is a change in the sequence of bases of DNA or RNA in a genome. Some mutations occur during replication of the genome due to errors made by the polymerase enzymes that replicate DNA or RNA. Unlike DNA polymerase, RNA polymerase is prone to errors because it is not capable of “proofreading” its work. Viruses with RNA-based genomes, like HIV, therefore accrue mutations faster than viruses with DNA-based genomes. Because mutation and recombination provide the raw material...
40.0K
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
6.7K
Mutations in Microorganisms01:18

Mutations in Microorganisms

Mutations are heritable changes in an organism’s genome involving alterations in the base sequence of DNA or RNA. These changes can influence cellular processes and phenotypic traits, potentially transforming the unaltered wild type into a mutant form. Such changes, termed forward mutations, are pivotal in shaping the genetic diversity of organisms.RNA viruses exhibit the highest mutation rates due to the absence of robust proofreading mechanisms during genome replication. In contrast,...
829