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Updated: May 8, 2026

A Method to Assess Fc-mediated Effector Functions Induced by Influenza Hemagglutinin Specific Antibodies
Published on: February 23, 2018
Influenza A induced cellular signal transduction pathways
Paul Michael1, Danielle Brabant, Farag Bleiblo
1Department of Chemistry and Biochemistry and the Biomolecular Sciences Program, Laurentian University, Sudbury, P3E 2C6, ON, Canada;
Abstract:
Influenza A is a negative sense single stranded RNA virus that belongs to the Orthomyxoviridae Family. This enveloped virus contains 8 segments of viral RNA which encodes 11 viral proteins. Influenza A infects humans and is the causative agent of the flu. Annually it infects approximately 5% to 15% of the population world wide and results in an estimated 250,000 to 500,000 deaths a year. The nature of influenza A replication results in a high mutation rate which results in the need for seasonal vaccinations. In addition the zoonotic nature of the influenza virus allows for recombination of viral segments from different strains creating new variants that have not been encountered before. This type of mutation is the method by which pandemic strains of the flu arises. Infection with influenza results in a respiratory illness that for most individuals is self limiting. However in susceptible populations which include individuals with pre-existing pulmonary or cardiac conditions, the very young and the elderly fatal complications may arise. The most serious of these is the development of viral pneumonia which may be accompanied by secondary bacterial infections. Progression of pneumonia leads to the development of acute respiratory distress syndrome (ARDS), acute lung injury (ALI) and potentially respiratory failure. This progression is a combined effect of the host immune system response to influenza infection and the viral infection itself. This review will focus on molecular aspects of viral replication in alveolar cells and their response to infection. The response of select innate immune cells and their contribution to viral clearance and lung epithelial damage will also be discussed. Molecular aspects of antiviral response in the cells in particular the protein kinase RNA dependent response, and the oligoadenylate synthetase RNAse L system in relation to influenza infection.
Insights
Influenza A virus causes the flu, leading to millions of infections and hundreds of thousands of deaths annually. Its high mutation rate necessitates yearly vaccinations and poses pandemic risks.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Influenza A virus, a segmented RNA virus from the Orthomyxoviridae family, causes seasonal flu and potential pandemics.
- Annual global infections range from 5% to 15%, causing 250,000–500,000 deaths.
- High mutation rates and reassortment of viral segments drive the emergence of new strains and pandemic threats.
Purpose of the Study:
- This review focuses on the molecular mechanisms of Influenza A replication in alveolar cells.
- It examines cellular responses to infection, including innate immune cell roles in viral clearance and lung injury.
- Key antiviral pathways like protein kinase R (PKR) and the OAS/RNase L system are discussed.
Main Methods:
- Review of existing literature on Influenza A molecular biology and host-pathogen interactions.
- Analysis of viral replication strategies within alveolar cells.
- Examination of innate immune responses and cellular antiviral systems.
Main Results:
- Influenza A's replication cycle involves complex interactions with host alveolar cells.
- Innate immune cells play a dual role, aiding viral clearance but also contributing to lung damage.
- Antiviral pathways, including PKR and OAS/RNase L, are critical in controlling viral replication.
Conclusions:
- Understanding Influenza A's molecular replication and host response is crucial for developing effective treatments.
- The high mutation rate and pandemic potential of Influenza A underscore the need for ongoing research.
- Targeting cellular antiviral mechanisms may offer new therapeutic strategies against influenza.
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