bioRxiv Science⌕ Search

Biology subjects

Toshie, K.

Publications and source records attributed to Toshie, K..

2 recordsLinked to original sources

Microbe-dependent inter-organ communication regulates germline stem cell proliferation in Drosophila

Animals integrate environmental cues with internal physiological states through inter-organ communication to regulate reproduction. However, how environmental microbes are incorporated into these systemic pathways to control reproductive stem cell proliferation remains poorly understood. Here, we demonstrate that environmental microbes colonizing the gut promote stem cell-mediated oogenesis in Drosophila melanogaster by increasing germline stem cell (GSC) number. This process requires microbial activation of gut metabolic pathways, including glycolysis and the pentose phosphate pathway (PPP), linking microbial cues to organismal physiology. We further show that microbial cues modulate circadian clock gene expression in both the gut and brain, and that circadian gene activity in these tissues is required for microbe-induced increases in GSCs. These metabolic changes promote ecdysone and juvenile hormone signaling in ovarian somatic cells, and single-cell transcriptomic analyses further reveal cell type-specific metabolic and hormonal responses across germline and follicle cell populations. Together, our findings establish that microbe-dependent gut-mediated inter-organ communication integrates metabolism, circadian gene expression, and endocrine signaling to regulate stem cell-mediated reproduction in Drosophila.

developmental biology↗

Squash ensures Spindle-E-dependent heterotypic ping-pong amplification of piRNAs in the Drosophila ovary

The PIWI-interacting RNA (piRNA) pathway plays a crucial role in repressing mobile transposable elements (TEs) and protecting the integrity of the heritable genome in animal gonads. In the Drosophila ovary, piRNAs are produced in a membrane-less organelle called nuage, in which many piRNA factors are localized. Among them, Squash (Squ) has also been identified as a key component in piRNA-directed TE silencing. However, its molecular function remains largely unknown. Here, we demonstrate that loss of Squ leads to defective piRNA biogenesis, which is associated with the abnormal accumulation of precursor transcripts and the specific destabilization of Ago3, a member of the PIWI-family proteins. Reducing Ago3 results in enhanced homotypic piRNA amplification mediated by Aub itself, rather than the heterotypic ping-pong amplification between Aub and Ago3. Additionally, we demonstrate that Squ is a functional cofactor of the RNA helicase, Spindle-E (Spn-E), which plays a vital role in piRNA biogenesis. Point mutations that abrogate the interaction between Squ and Spn-E result in TE de-repression and defective precursor processing, suggesting that Squ works with Spn-E to ensure the proper piRNA biogenesis. These results identify Squ as a critical factor for Spn-E-dependent heterotypic ping-pong amplification of piRNAs in the Drosophila ovary.

cell biology↗