Abstract
<jats:p>Vacuolar ATPases (V-ATPases) are highly conserved multi-subunit proton pumps that drive the acidification of intracellular vesicles, especially endosomes and lysosomes. By regulating progressive acidification of the endolysosomal pathway, V-ATPase activity impacts signaling transduction pathways both positively (e.g., internalization and activation of receptor-ligand complexes in endosomes) and negatively (e.g., degradation of pathway mediators in lysosomes). While the role of V-ATPases in human neurodegenerative diseases and cancer has been extensively studied, the requirement for these proteins in intestinal restitution remains poorly understood. Here, we use Drosophila to study the role of V-ATPases in regulating intestinal-injury and repair driven by excessive oxidative stress. We find that RNAi driven depletion of multiple subunits of the V-ATPase complex suppressed oxidative stress-induced lethality. By contrast, depletion of the main lysosomal catabolic enzyme in Drosophila (Cathepsin-D) had no effect. On a cellular level, these effects map to absorptive enterocytes (ECs) of the Drosophila intestine. Molecular analysis of intestines following injury by oxidative stress compared to uninjured controls reveals increased cell death, increased JNK-pathway activity, and increased IMD/NF-κB pathway signaling reporter expression compared to uninjured controls. Depletion of Vha44 (subunit C of the V1 complex) was sufficient to suppress the increased cell death, JNK pathway, and IMD/NF-κB pathway markers induced by oxidative stress in the intestine. Furthermore, overexpression of the MAP3K TAK1 enhanced death, JNK pathway and IMD/NF-κB pathway activation in a Vha44 dependent manner. These findings suggest that inhibition of V-ATPase activity can protect against intestinal injury caused by excessive oxidative stress. On a molecular level, we find that attenuation of endolysosomal acidification dampens pro-apoptotic JNK and IMD/NF-κB pathways, highlighting endosomal acidification as a potential amplifier of excessive oxidative stress.</jats:p>