Authors
Liu, Q., Ma, T., Wu, G., Tham, L., Palarca-Wong, M., Vaz, S., Allen, N., Shao, C., Tsai, A., Song, R. W., England, P. M.
Abstract
Protein is unique among macronutrients due to its nitrogen content and that its building blocks, essential amino acids, cannot be synthesized by animals. Additionally, animals lack specialized amino acid storage sites, necessitating a continuous dietary intake. In the face of insufficient dietary protein, how do animals manage nitrogen limitation? Using Drosophila, we reveal a previously undocumented nitrogen flow from phospholipids to amino acids, a process enhanced by protein deprivation. Protein restriction triggers the degradation of phosphatidylethanolamine (PE), releasing the nitrogen-containing headgroup, ethanolamine, which subsequently serves a dual function. Ethanolamine stimulates protein intake by activating protein hunger neurons and, remarkably, along with phosphoethanolamine, donates nitrogen for amino acid biosynthesis. This nitrogen transfer is mediated by the microbiome and ethanolamine-phosphate phospho-lyase (ETNPPL) pathway in fly cells. Together, our findings identify phospholipids as a hidden nitrogen reservoir and reveal an unrecognized metabolic plasticity that reallocates nitrogen to maintain protein homeostasis.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 25 Sep 2026.
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