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Perez, M. S.

Publications and source records attributed to Perez, M. S..

3 recordsLinked to original sources

Relaxin signaling is critical for virgin female reproductive physiology in Drosophila

Ovulation enables mature oocytes to exit the ovary for potential fertilization. In Drosophila, ovulation is induced by mating but also occurs spontaneously in virgins, with rates varying widely in natural populations: short oocyte retention is ancestral, while longer retention is favored in colder climates. The molecular regulation of spontaneous ovulation remains unclear. Here, we show that disrupting the relaxin/insulin-like peptide Dilp8 or its receptor Lgr3--an orthologue of vertebrate RXFP1/2--in follicle cells or specific neurons, respectively, delays ovulation, slows average egg transit time in the reproductive tract, and facilitates oogenesis progression beyond [~]2 mature oocytes per ovariole, leading to mature follicle accumulation in the ovary. Mating largely rescues these defects, suggesting the pathway is dispensable post-mating. Dilp8-Lgr3 signaling ensures high oocyte quality by promoting elimination of lower-quality aging oocytes and by antagonizing oogenesis progression via an undefined mechanism downstream of Lgr3+ neurons. Our findings provide a molecular basis for oocyte retention time regulation in Drosophila involving ovarian-nervous system cross-talk, and bring further support for an ancient, conserved role for relaxin-like signaling in regulating ovulation and overall female reproductive physiology. Summary statementThis study uncovers how ovary-neuron communication promotes spontaneous ovulation and prevents buildup of aging eggs, ensuring optimal egg quality in fruit flies.

physiology↗

Comparative transcriptomic rhythms in the mouse and human prefrontal cortex

Alterations in multiple subregions of the human prefrontal cortex (PFC) have been heavily implicated in psychiatric diseases. Moreover, emerging evidence suggests that circadian rhythms in gene expression are present across the brain, including in the PFC, and that these rhythms are altered in disease. However, investigation into the potential circadian mechanisms underlying these diseases in animal models must contend with the fact that the human PFC is highly evolved and specialized relative to that of rodents. Here, we use RNA sequencing to lay the groundwork for translational studies of molecular rhythms through a sex-specific, cross species comparison of transcriptomic rhythms between the mouse medial PFC (mPFC) and two subregions of the human PFC, the anterior cingulate cortex (ACC) and the dorsolateral PFC (DLPFC). We find that while circadian rhythm signaling is conserved across species and subregions, there is a phase shift in the expression of core clock genes between the mouse mPFC and human PFC subregions that differs by sex. Furthermore, we find that the identity of rhythmic transcripts is largely unique between the mouse mPFC and human PFC subregions, with the most overlap (20%, 236 transcripts) between the mouse mPFC and the human ACC in females. Nevertheless, we find that basic biological processes are enriched for rhythmic transcripts across species, with key differences between regions and sexes. Together, this work highlights both the evolutionary conservation of transcriptomic rhythms and the advancement of the human PFC, underscoring the importance of considering cross-species differences when using animal models.

neuroscience↗

Drosophila Glue Expulsion and Spreading Behavior is Modulated by Neuropeptidergic Mip-SPR Signaling from a Descending Command Neuron

At the end of their growth phase, Drosophila larvae remodel their bodies, firmly glue themselves to a substrate, and harden their cuticle in preparation for metamorphosis. This process is termed pupariation and it is triggered by a surge in the steroid hormone ecdysone. Substrate attachment is achieved by a recently-described pupariation subprogram called glue expulsion and spreading behavior (GSB). An epidermis-to-CNS Dilp8-Lgr3 relaxin signaling event that occurs downstream of ecdysone after pupariation initiation is critical for unlocking progression of the pupariation motor program towards GSB, but the factors and circuits acting downstream of Lgr3 signaling remain unknown. Here, we screened for such factors using cell type-specific RNA interference (RNAi) and behavioral monitoring. We identify Myoinhibiting peptide (Mip) and its highly conserved neuronal receptor, Sex peptide receptor (SPR), as a critical neuropeptidergic signaling pathway required to trigger and modulate multiple action components of GSB. In addition, we find that Mip is specifically required in a pair of descending neurons, whose optogenetic activation at a specific competence window triggers GSB-like behavior and whose neurogenetic silencing completely abrogates GSB without overtly affecting other pupariation components. This strongly suggests that these descending Mip neurons are developmentally-regulated GSB command neurons. Dissection of the GSB action components via muscle calcium-level monitoring coupled with cell-type specific RNAi indicates that Mip acts on multiple SPR-positive neuronal populations, which collectively define and pattern the sequence and timing of GSB actions. Hence, we have identified a pair of descending command neurons that utilize both synaptic transmission and neuropeptidergic signaling to trigger and modulate a complex innate behavior in Drosophila. Our results advance our molecular and cellular understanding of pupariation control, reveal the complexity of glue expulsion and spreading behavior control, provide insight into conserved aspects of Mip-SPR signaling in animals, and contribute to the understanding of how multi-step innate behaviors are coordinated in time and with other developmental processes through command neurons and neuropeptidergic signaling.

neuroscience↗