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Radiation Exposure Induces Inflammasome Pathway Activation in Immune Cells

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Abstract Radiation exposure induces cell and tissue damage, causing local and systemic inflammatory responses. Because the inflammasome pathway is triggered by cell death and danger-associated molecular patterns, we hypothesized that the inflammasome may signal acute and chronic immune responses to radiation. Using a mouse radiation model, we show that radiation induces a dose-dependent increase in inflammasome activation in macrophages, dendritic cells, NK cells, T cells, and B cells as judged by cleaved caspase-1 detection in cells. Time course analysis showed the appearance of cleaved caspase-1 in cells by day 1 and sustained expression until day 7 after radiation. Also, cells showing inflammasome activation coexpressed the cell surface apoptosis marker annexin V. The role of caspase-1 as a trigger for hematopoietic cell losses after radiation was studied in caspase-1−/− mice. We found less radiation-induced cell apoptosis and immune cell loss in caspase-1−/− mice than in control mice. Next, we tested whether uric acid might mediate inflammasome activation in cells by treating mice with allopurinol and discovered that allopurinol treatment completely blocked caspase-1 activation in cells. Finally, we demonstrate that radiation-induced caspase-1 activation occurs by a Nod-like receptor family protein 3–independent mechanism because radiation-exposed Nlrp3−/− mice showed caspase-1 activation profiles that were indistinguishable from those of wild-type mice. In summary, our data demonstrate that inflammasome activation occurs in many immune cell types following radiation exposure and that allopurinol prevented radiation-induced inflammasome activation. These results suggest that targeting the inflammasome may help control radiation-induced inflammation.
Title: Radiation Exposure Induces Inflammasome Pathway Activation in Immune Cells
Description:
Abstract Radiation exposure induces cell and tissue damage, causing local and systemic inflammatory responses.
Because the inflammasome pathway is triggered by cell death and danger-associated molecular patterns, we hypothesized that the inflammasome may signal acute and chronic immune responses to radiation.
Using a mouse radiation model, we show that radiation induces a dose-dependent increase in inflammasome activation in macrophages, dendritic cells, NK cells, T cells, and B cells as judged by cleaved caspase-1 detection in cells.
Time course analysis showed the appearance of cleaved caspase-1 in cells by day 1 and sustained expression until day 7 after radiation.
Also, cells showing inflammasome activation coexpressed the cell surface apoptosis marker annexin V.
The role of caspase-1 as a trigger for hematopoietic cell losses after radiation was studied in caspase-1−/− mice.
We found less radiation-induced cell apoptosis and immune cell loss in caspase-1−/− mice than in control mice.
Next, we tested whether uric acid might mediate inflammasome activation in cells by treating mice with allopurinol and discovered that allopurinol treatment completely blocked caspase-1 activation in cells.
Finally, we demonstrate that radiation-induced caspase-1 activation occurs by a Nod-like receptor family protein 3–independent mechanism because radiation-exposed Nlrp3−/− mice showed caspase-1 activation profiles that were indistinguishable from those of wild-type mice.
In summary, our data demonstrate that inflammasome activation occurs in many immune cell types following radiation exposure and that allopurinol prevented radiation-induced inflammasome activation.
These results suggest that targeting the inflammasome may help control radiation-induced inflammation.

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