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Development and Identification of a Novel Subpopulation of Human Neutrophil-derived Giant Phagocytes In Vitro
Published on: January 25, 2017
Systemic macrophage and neutrophil destruction by secondary necrosis induced by a bacterial exotoxin in a
Ana do Vale1, Carolina Costa-Ramos, Alexandra Silva
1IBMC-Instituto de Biologia Molecular e Celular, Universidade do Porto, Portugal.
Abstract:
Bacterial modulation of phagocyte cell death is an emerging theme in pathogenesis. Here we describe the systemic destruction of macrophages and neutrophils by the Gram-negative Photobacterium damselae ssp. piscicida (Phdp) in fish pasteurellosis, a deadly systemic infection. Following experimental inoculation, Phdp spreads by bacteraemia and colonizes the organs, producing a septicaemic infection, and secretes the apoptogenic exotoxin AIP56 which is systemically disseminated. In experimental and natural pasteurellosis, destruction of macrophages and neutrophils by secondary necrosis following caspase-3-associated apoptosis was seen predominantly in the spleen, head kidney and gut lamina propria. Identical phagocyte destruction occurred after injection of rAIP56, but not of heat-inactivated rAIP56, or AIP56-negative Phdp strains, indicating that AIP56 is responsible for phagocyte destruction occurring in pasteurellosis. Active caspase-3 and active neutrophil elastase are present in the blood in advanced infection, indicating that phagocyte lysis by secondary necrosis is accompanied by release of tissue-damaging molecules. The AIP56-induced lysis of phagocytes represents a very efficient, self-amplifying etiopathogenic mechanism, because it results in two effects that operate in concert against the host, namely, evasion of the pathogen from a crucial defence mechanism through the destruction of both professional phagocytes, and release of tissue-damaging molecules. The induction by a bacterial exotoxin of in vivo systemic lysis of both professional phagocytes by secondary necrosis, now described for the first time, may represent an overlooked etiopathogenic mechanism operating in other infections of vertebrates.
Insights
The bacterial exotoxin AIP56 causes systemic destruction of macrophages and neutrophils in fish pasteurellosis. This process, termed secondary necrosis, aids pathogen evasion and releases tissue-damaging molecules.
Area of Science:
- Pathogen-host interactions
- Bacterial pathogenesis
- Cellular immunology
Background:
- Bacterial modulation of phagocyte cell death is a key factor in disease.
- Fish pasteurellosis, caused by Photobacterium damselae ssp. piscicida (Phdp), is a severe systemic infection.
- Understanding the mechanisms of phagocyte destruction is crucial for controlling infections.
Purpose of the Study:
- To investigate the role of Phdp and its exotoxin AIP56 in phagocyte destruction during fish pasteurellosis.
- To elucidate the mechanism of phagocyte lysis induced by AIP56.
- To identify potential pathogenic mechanisms in systemic bacterial infections.
Main Methods:
- Experimental inoculation of fish with Phdp.
- Administration of purified recombinant AIP56 (rAIP56).
- Histopathological analysis of infected tissues (spleen, head kidney, gut).
- Detection of active caspase-3 and neutrophil elastase in blood.
Main Results:
- Phdp caused systemic destruction of macrophages and neutrophils in infected fish.
- The exotoxin AIP56 was identified as the causative agent of phagocyte destruction.
- Phagocyte lysis occurred via secondary necrosis following caspase-3-associated apoptosis.
- Active caspase-3 and neutrophil elastase were detected in blood during advanced infection.
- AIP56-induced phagocyte lysis facilitates pathogen evasion and tissue damage.
Conclusions:
- AIP56 is a potent apoptogenic exotoxin responsible for systemic phagocyte destruction in fish pasteurellosis.
- AIP56-induced secondary necrosis is an efficient pathogenic mechanism that promotes bacterial survival and host tissue damage.
- This mechanism of bacterial exotoxin-induced systemic phagocyte lysis may be relevant to other vertebrate infections.
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