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Ohhara, Y.

Publications and source records attributed to Ohhara, Y..

2 recordsLinked to original sources

Two Cytochrome P450 epoxidases mediate juvenile hormone biosynthesis in Drosophila melanogaster

Juvenile hormones (JHs) mediate various biological processes such as development and reproduction in insects. Although pleiotropic functions of JHs are well investigated in the fruit fly Drosophila melanogaster, their biosynthetic mechanisms are less well understood, partly because many JH biosynthetic enzymes still remain unidentified in this important model species. Here we report that two cytochrome P450 (CYP) epoxidases mediate JH biosynthesis in D. melanogaster. In addition to previously reported Cyp6g2, a second epoxidase, Cyp6a13, also functions in the corpus allatum, the major JH biosynthetic endocrine gland. Combined mutations of the genes encoding these enzymes cause developmental and reproductive defects, which can be rescued by JH application. JH biosynthetic functions of these genes were further confirmed by using a heterologous expression system and ex vivo tissue culture. Collectively, our results indicate that these two CYP epoxidases function cooperatively to mediate JH biosynthesis in D. melanogaster. HighlightsO_LIDrosophila Cyp6g2 and Cyp6a13 are highly expressed in the corpus allatum. C_LIO_LICombined knockout mutants of the CYP genes exhibit developmental and reproductive defects. C_LIO_LIMutant phenotypes were rescued by feeding juvenile hormones. C_LIO_LIBoth Cyp6g2 and Cyp6a13 catalyze epoxidation of juvenile hormone precursors. C_LI

developmental biology↗

NudC moonlights in ribosome biogenesis and homeostasis in Drosophila melanogaster polyploid cells

Ribosomes, the cellular machinery responsible for protein synthesis, are fundamental across all kingdoms of life. Disruption in ribosome biogenesis (RiBi) can cause severe ribosomopathies, underscoring the critical need for precise regulatory mechanisms governing RiBi. In this study, we identified the gene NudC (nuclear distribution C, dynein complex regulator), a previously unrecognized regulator of RiBi in polyploid cells of Drosophila melanogaster larvae. RNAi-mediated depletion of NudC in polyploid salivary gland cells led to a significant reduction in ribosome abundance, accompanied by the loss of ribosome-binding sites on rough endoplasmic reticulum and impaired translation. These defects are linked to decreased levels of nucleolar ribosomal RNA. Notably, NudC knockdown also triggered a homeostatic response, characterized by increased transcription and translation of both ribosome biogenesis factors (RBFs) and ribosomal proteins. This response parallels that seen in RBF-deficient cells, suggesting that NudC and RBFs cooperate to maintain RiBi homeostasis. Meanwhile, NudC-deficient cells exhibited chromosome abnormalities, activated JNK signaling, and underwent autophagy, closely resembling the defects observed upon loss of RBFs. Finally, our findings suggest that the role of NudC in RiBi is independent of its established function in dynein regulation, indicating the moonlighting role in RiBi played by this gene. Together, these results uncover a new, fundamental function for NudC in maintaining RiBi and homeostasis in polyploid cells, with broader implications for understanding conserved mechanisms of NudC function and RiBi across species.

cell biology↗