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Updated: Aug 30, 2026

Extended Live Imaging of Female Drosophila melanogaster Germline Stem Cell Niches
Published on: December 20, 2024
Starve-Feed Cycles Direct Quiescence to Proliferation Transitions in Drosophila Follicle Stem Cells via
Eric H Lee1, Jacqueline C Simonet1, Daniel Zinshteyn1
1Fox Chase Cancer Center, Program in Cancer Signaling and Microenvironment, Philadelphia 19111 USA.
Abstract:
Stem cell quiescence is a reversible state in which cells temporarily exit the cell cycle but remain poised to re-enter on cue. Robust protection of the balance between stem cell quiescence and proliferation (Q->P) is critical for long-term tissue health. Proliferation without proper resources drives disease states including cancer or birth defects. Conversely, extended periods of quiescence can lead to irreversible senescence, causing stem cell loss, aging symptoms, and vulnerability to oncogenic transformation. Diet is a central regulator of Q->P. Tissue stem cells are particularly impacted, entering periods of quiescence during nutrient restriction, with rapid induction of proliferation upon feeding. We demonstrated previously that the Hedgehog (Hh) signaling pathway is necessary and sufficient for controlling Q->P responses to dietary changes in epithelial Follicle Stem Cells (FSCs) in the fly ovary. The Hh effector, Cubitus Interruptus (Ci), is a transcriptional regulator that mediates the feeding response. To identify Q->P regulators induced upon Hh signaling, we labeled transcripts that are induced in FSCs during the 6-hour Q->P timecourse using thiouracil tagging (TU-tagging), and sequenced TU-tagged transcripts versus total Input to prioritize candidates. Unexpectedly, cell cycle regulators were not induced, suggesting that other mechanisms control Q->P in FSCs. We describe a sequential screening approach that uncovered seven novel, feeding-dependent Q->P regulators, including a cholesterol transporter and, surprisingly, glial and neuronal regulators. Our results highlight the importance of dynamic regulation of gene expression for translation of dietary signals by stem cells, uncovering new pathways for mechanistic investigation.
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