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Rapid Magnetic-microbead Method for Efficient Purification of Low-density Neutrophils
Published on: November 11, 2025
Immune Delay, Beyond Immune Evasion, as a Driver of Pathogen Propagation Competence Through Neutrophil Dysregulation,
Jan J M Cuppen1,2, Huub F J Savelkoul1
1Cell Biology and Immunology Group, Wageningen University and Research, 6708 PB Wageningen, The Netherlands.
Abstract:
This paper proposes that immune delay, beyond immune evasion, is key in the propagation competence of major viral and bacterial infections, and that the dynamics of infection and immune response suggest possibilities for mitigating the ensuing infectious diseases. Recent data show a critical role of neutrophils at various stages of viral and bacterial infections, revealing how early activation of neutrophils could help mitigate infectious diseases. It could prevent the gradual overactivation of subclasses of neutrophils and probably not induce it. In respiratory virus infections, an immune delay of several days allows the development of a high viral load supporting infectivity towards further hosts when a delayed and increased immune response takes place. Virus variants will optimize immune delay towards highest infectivity, supporting pandemic potential. The influenza virus, coronavirus, and several major bacterial infections exhibit such immune delay capability. Recurrent urinary tract infections (rUTI) are common, often associated with the causative uropathogenic E. coli (UPEC) that has this capability, suggesting that immune delay is crucial in the pathogenesis of rUTI and other widespread bacterial infections. Counteracting immune delay, therefore, is a promising approach for mitigating infectious diseases with epidemic and pandemic presence or potential. Previously proven low-frequency electromagnetic field (LF-EMF)-induced neutrophil activation is such an approach.
Insights
Immune delay, not just evasion, drives infectious disease spread. Early neutrophil activation, potentially via low-frequency electromagnetic fields (LF-EMF), can mitigate infections like influenza and recurrent urinary tract infections (rUTI).
Area of Science:
- Immunology
- Infectious Diseases
- Microbiology
Background:
- Immune evasion is a known factor in infectious disease propagation.
- Neutrophils play a critical role in both viral and bacterial infections.
- A significant delay in immune response contributes to high pathogen loads and infectivity.
Purpose of the Study:
- To propose immune delay as a key factor in infectious disease propagation.
- To explore the role of neutrophils in mitigating infectious diseases.
- To investigate counteracting immune delay as a therapeutic strategy.
Main Methods:
- Analysis of recent data on neutrophil function in infections.
- Review of infection dynamics and immune response patterns.
- Examination of immune delay capabilities in various pathogens.
Main Results:
- Immune delay, beyond immune evasion, is crucial for pathogen propagation.
- Early neutrophil activation can mitigate infectious diseases by preventing overactivation.
- Pathogens like influenza virus, coronavirus, and UPEC exhibit immune delay capabilities.
Conclusions:
- Counteracting immune delay is a promising strategy for managing epidemic and pandemic diseases.
- Low-frequency electromagnetic field (LF-EMF)-induced neutrophil activation is a potential approach to counter immune delay.
- Understanding immune delay is vital for developing new treatments for widespread infections.
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