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Falconi, J.

Publications and source records attributed to Falconi, J..

2 recordsLinked to original sources

Tumour-derived Ilp8 and Upd3 control intestinal progenitor cells depletion during cachexia in Drosophila larvae

In animals, tumour development triggers systemic effects, impacting the physiology of distant organs. In Drosophila larvae, wing disc neoplastic tumours result in developmental delay and organ wasting reminiscent of cachexia. This paraneoplastic syndrome affects many organs, but its effects on the intestine, a key organ in the regulation of nutrient and energy homeostasis, remain understudied. We describe here that neoplastic tumours also affect the development of the larval midgut, leading to altered cell type numbers, with a depletion of the stem-cell-like Adult Midgut Precursors (AMPs), and a disorganisation of the niche cells which enter precocious differentiation. Importantly, these intestinal cell type alterations are initiated before the onset of reduced food intake, and of muscle and adipose tissue atrophies, and thus represent a new paraneoplastic phenotype. Screening for mediators, we show that tumour derived Ilp8 and Upd3 control AMPs number and niche specification respectively.

developmental biology↗

Fat body glycolysis defects inhibit mTOR and promote distant muscle disorganization through TNF-α/egr and ImpL2 signaling in Drosophila larvae

The fat body in Drosophila larvae serves as a reserve tissue and participates, through its endocrine function, in the regulation of organismal growth and homeostasis. To better understand its role in growth coordination, we induced severe fat body atrophy by knocking down in adipose cells several key enzymes of the glycolytic pathway. Our results show that impairing the last steps of glycolysis led to a drastic shrinkage in adipose cell size and lipid droplets content, and a downregulation of the mTOR pathway. Strikingly, fat body atrophy resulted in the distant disorganization of body wall muscles and the release of muscle-specific proteins in the hemolymph. Molecularly we showed that REPTOR activity was required for fat body atrophy downstream of glycolysis inhibition, and that the effect of fat body atrophy on muscles did not require upd3 secretion, but depended the production of egr/TNF- and of the insulin pathway inhibitor ImpL2.

physiology↗