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Detection of prokaryotic mRNA signifies microbial viability and promotes immunity
Leif E Sander1, Michael J Davis, Mark V Boekschoten
1Immunology Institute, Department of Medicine, Mount Sinai School of Medicine, 1425 Madison Avenue, New York, New York 10029, USA.
Abstract:
Live vaccines have long been known to trigger far more vigorous immune responses than their killed counterparts. This has been attributed to the ability of live microorganisms to replicate and express specialized virulence factors that facilitate invasion and infection of their hosts. However, protective immunization can often be achieved with a single injection of live, but not dead, attenuated microorganisms stripped of their virulence factors. Pathogen-associated molecular patterns (PAMPs), which are detected by the immune system, are present in both live and killed vaccines, indicating that certain poorly characterized aspects of live microorganisms, not incorporated in dead vaccines, are particularly effective at inducing protective immunity. Here we show that the mammalian innate immune system can directly sense microbial viability through detection of a special class of viability-associated PAMPs (vita-PAMPs). We identify prokaryotic messenger RNA as a vita-PAMP present only in viable bacteria, the recognition of which elicits a unique innate response and a robust adaptive antibody response. Notably, the innate response evoked by viability and prokaryotic mRNA was thus far considered to be reserved for pathogenic bacteria, but we show that even non-pathogenic bacteria in sterile tissues can trigger similar responses, provided that they are alive. Thus, the immune system actively gauges the infectious risk by searching PAMPs for signatures of microbial life and thus infectivity. Detection of vita-PAMPs triggers a state of alert not warranted for dead bacteria. Vaccine formulations that incorporate vita-PAMPs could thus combine the superior protection of live vaccines with the safety of dead vaccines.
Insights
Live vaccines elicit stronger immune responses because the immune system detects microbial viability. Prokaryotic messenger RNA acts as a viability-associated pattern, triggering robust immunity for safer, more effective vaccines.
Area of Science:
- Immunology
- Microbiology
- Vaccinology
Background:
- Live vaccines induce stronger immune responses than killed vaccines, attributed to microbial replication and virulence factors.
- Protective immunity can be achieved with live, attenuated microorganisms lacking virulence factors.
- Pathogen-associated molecular patterns (PAMPs) are present in both live and killed vaccines, but live vaccines induce superior immunity.
Purpose of the Study:
- To investigate how the mammalian innate immune system distinguishes between live and dead microorganisms.
- To identify specific molecular components of live bacteria responsible for enhanced immune responses.
- To explore the potential of these components in developing safer and more effective vaccine formulations.
Main Methods:
- Investigated the innate immune system's ability to sense microbial viability.
- Identified prokaryotic messenger RNA as a novel viability-associated PAMP (vita-PAMP).
- Analyzed the innate and adaptive immune responses elicited by vita-PAMPs.
Main Results:
- The mammalian innate immune system directly senses microbial viability via vita-PAMPs.
- Prokaryotic messenger RNA was identified as a vita-PAMP, present only in viable bacteria.
- Recognition of vita-PAMPs elicits a unique innate response and a robust adaptive antibody response, even from non-pathogenic bacteria.
Conclusions:
- The immune system actively assesses infectious risk by detecting microbial life signatures (vita-PAMPs).
- Detection of vita-PAMPs triggers a heightened alert state compared to dead bacteria.
- Vaccine formulations incorporating vita-PAMPs could offer the safety of killed vaccines with the efficacy of live vaccines.
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