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Oi, A.

Publications and source records attributed to Oi, A..

2 recordsLinked to original sources

A Nonsecretory Antimicrobial Peptide Mediates Inflammatory Organ Damage in Drosophila Renal Tubules

An excessive immune response damages organs, yet its molecular mechanism is incompletely understood. In this study, we used Drosophila renal tubules as a model to screen a factor mediating organ damage upon genetic activation of an innate immune Imd signalling pathway. We identified an antimicrobial peptide, Attacin-D (AttD), which causes organ damage upon Imd activation in the Malpighian tubules. Loss of AttD function suppresses most of the pathological phenotypes induced by Imd activation, such as cell death, compensatory stem cell proliferation, bloating of whole animal, susceptibility to a high salt diet, elevation of purine levels, and mortality, without compromising the immune activation. AttD is required for the immune-induced damage specifically in the Malpighian tubules but not the midgut. Interestingly, AttD uniquely lacks the signal peptide and is not secreted out from cells. Suppression of AttD almost completely attenuates mortality induced by gut tumour-induced immune activation. Our study elucidates the mechanistic effector of immune-induced organ damage.

immunology↗

Activation of innate immune signalling during development predisposes to inflammatory intestine and shortened lifespan

Early-life inflammatory response is associated with risks of age-related pathologies. How transient immune signalling activity during animal development influences life-long fitness is not well understood. Using Drosophila as a model, we find that activation of innate immune pathway IMD signalling in the developing larvae increases adult starvation resistance, decreases food intake, and shortens organismal lifespan. Interestingly, lifespan is shortened by the IMD activation in the larval gut and fat body, while starvation resistance and food intake are altered by that in neurons. The adult flies developed with IMD activation show sustained IMD activity in the gut, despite complete tissue renewal during metamorphosis. The inflammatory adult gut is associated with a greater amount of Gluconobacter sp., characteristic gut microbiota increased in response to immune activation. Removing gut microbiota by antibiotics attenuates the increase of IMD activity and rescues the shortened lifespan. This study demonstrates a tissue-specific programming effect of early-life immune activation on the adult physiology and organismal lifespan.

genetics↗