TY - JOUR
T1 - Noncell autonomous miR-9a modulates female receptivity by constraining sensory neuron growth in Drosophila melanogaster
AU - Zhang, Tianmu
AU - Miao, Hongyu
AU - Bagley, Joshua
AU - Huang, Yongwen
AU - Kim, Woo Jae
N1 - Publisher Copyright:
© The Author(s) 2026. Published by Oxford University Press on behalf of The Genetics Society of America. All rights reserved. For commercial re-use, please contact reprints@oup.com for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site—for further information please contact journals.permissions@oup.com. This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/pages/standard-publication-reuse-rights)
PY - 2026/6
Y1 - 2026/6
N2 - Female Drosophila melanogaster undergo a dynamic transition in sexual behavior, shifting from high receptivity to active rejection of courting males. While this post-mating switch is well characterized, the molecular mechanisms governing this plasticity remain incompletely understood. Here, we identify the conserved microRNA, miR-9a, as a critical regulator of this process. We show that miR-9a mutant females exhibit a premature rejection phenotype, mimicking the behavior of mated females, which is correlated with an aberrant overgrowth of adult body wall sensory neurons. We demonstrate that this neuronal phenotype is governed by a dual regulatory system. First, in a noncell autonomous mechanism, miR-9a expression in the epidermis is required to constrain sensory neuron dendrite growth, indicating that an epithelial-derived signal patterns the underlying neuron. Second, miR-9a interacts genetically with the transcription factor senseless (sens) and the novel RNA-binding protein bruno2 (bru2). Reducing the dosage of either sens or bru2 rescues both the neuronal and behavioral defects of miR-9a mutants. Our findings reveal an integrated, inter-tissue signaling axis where epithelial miR-9a orchestrates a noncell autonomous cue that modulates a cell-intrinsic network to ensure the precise development of sensory neurons, thereby calibrating behavioral responses critical for reproductive success.
AB - Female Drosophila melanogaster undergo a dynamic transition in sexual behavior, shifting from high receptivity to active rejection of courting males. While this post-mating switch is well characterized, the molecular mechanisms governing this plasticity remain incompletely understood. Here, we identify the conserved microRNA, miR-9a, as a critical regulator of this process. We show that miR-9a mutant females exhibit a premature rejection phenotype, mimicking the behavior of mated females, which is correlated with an aberrant overgrowth of adult body wall sensory neurons. We demonstrate that this neuronal phenotype is governed by a dual regulatory system. First, in a noncell autonomous mechanism, miR-9a expression in the epidermis is required to constrain sensory neuron dendrite growth, indicating that an epithelial-derived signal patterns the underlying neuron. Second, miR-9a interacts genetically with the transcription factor senseless (sens) and the novel RNA-binding protein bruno2 (bru2). Reducing the dosage of either sens or bru2 rescues both the neuronal and behavioral defects of miR-9a mutants. Our findings reveal an integrated, inter-tissue signaling axis where epithelial miR-9a orchestrates a noncell autonomous cue that modulates a cell-intrinsic network to ensure the precise development of sensory neurons, thereby calibrating behavioral responses critical for reproductive success.
KW - Drosophila
KW - bru2
KW - mating rejection
KW - miR-9a
KW - post-mating response
KW - reproductive behavior
KW - sens
UR - https://www.scopus.com/pages/publications/105041029586
U2 - 10.1093/genetics/iyag089
DO - 10.1093/genetics/iyag089
M3 - 文章
C2 - 41902665
AN - SCOPUS:105041029586
SN - 0016-6731
VL - 233
JO - Genetics
JF - Genetics
IS - 2
M1 - iyag089
ER -