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Prokaryotic RNA Associated to Bacterial Viability Induces Polymorphonuclear Neutrophil Activation
Nahuel Rodriguez-Rodrigues1, Luis A Castillo1, Verónica I Landoni1
1Laboratorio de Fisiología de los Procesos Inflamatorios, Instituto de Medicina Experimental CONICET, Academia Nacional de MedicinaBuenos Aires, Argentina.
Abstract:
Polymorphonuclear neutrophils (PMN) are the first cellular line of antibacterial host defense. They sense pathogens through recognition of pathogen-associated molecular patterns (PAMPs) by innate pattern recognition receptors, such as Toll-like receptors (TLR). The aim of this study was to investigate whether PMN sense bacterial viability and explore which viability factor could be involved in this phenomenon. For this purpose, different functions were evaluated in isolated human PMN using live Escherichia coli (Ec) and heat-killed Ec (HK-Ec). We found that bacterial viability was indispensable to induce PMN activation, as measured by forward-scatter (FSC) increase, CD11b surface expression, chemotaxis, reactive oxygen species (ROS) generation and neutrophil extracellular trap (NET) formation. As uncapped non-polyadenylated prokaryotic mRNA has been recognized as a PAMP associated to bacterial viability by macrophages and dendritic cells, total prokaryotic RNA (pRNA) from live Ec was purified and used as a stimulus for PMN. pRNA triggered similar responses to those observed with live bacteria. No RNA could be isolated from HK-Ec, explaining the lack of effect of dead bacteria. Moreover, the supernatant of dead bacteria was able to induce PMN activation, and this was associated with the presence of pRNA in this supernatant, which is released in the killing process. The induction of bactericidal functions (ROS and NETosis) by pRNA were abolished when the supernatant of dead bacteria or isolated pRNA were treated with RNAse. Moreover, endocytosis was necessary for pRNA-induced ROS generation and NETosis, and priming was required for the induction of pRNA-induced ROS in whole blood. However, responses related to movement and degranulation (FSC increase, CD11b up-regulation, and chemotaxis) were still triggered when pRNA was digested with RNase, and were not dependent on pRNA endocytosis or PMN priming. In conclusion, our results indicate that PMN sense live bacteria through recognition of pRNA, and this sensing triggers potent bactericidal mechanisms.
Insights
Polymorphonuclear neutrophils (PMN) sense bacterial viability through prokaryotic RNA (pRNA). This recognition activates potent bactericidal mechanisms, crucial for antibacterial host defense.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Polymorphonuclear neutrophils (PMN) are key in antibacterial defense, recognizing pathogens via pattern recognition receptors.
- Bacterial viability sensing by PMN is poorly understood, yet crucial for effective immune responses.
Purpose of the Study:
- To investigate if PMN can sense bacterial viability.
- To identify the bacterial factor responsible for triggering PMN activation.
Main Methods:
- Isolated human PMN functions were assessed using live and heat-killed Escherichia coli (Ec).
- Prokaryotic RNA (pRNA) from live Ec was purified and used as a stimulus.
- PMN responses including CD11b expression, ROS generation, and NET formation were measured.
- RNAse treatment and endocytosis inhibition were employed to dissect pRNA's role.
Main Results:
- Bacterial viability was essential for PMN activation, including degranulation and chemotaxis.
- Purified pRNA from live Ec mimicked live bacteria-induced PMN activation.
- pRNA in dead bacterial supernatant induced PMN activation, dependent on RNAse sensitivity.
- pRNA-induced ROS and NETosis required endocytosis, while degranulation responses did not.
Conclusions:
- PMN recognize live bacteria primarily through sensing prokaryotic RNA (pRNA).
- pRNA recognition triggers potent bactericidal mechanisms, including ROS generation and NETosis.
- Distinct PMN functions are differentially regulated by pRNA sensing, highlighting complex immune signaling.
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