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Rodriguez-Cordero, J. A.

Publications and source records attributed to Rodriguez-Cordero, J. A..

2 recordsLinked to original sources

Peripheral modulation of Pumilio in intestinal stem cells and the corpus allatum affects sleep latency in Drosophila

While central circuits governing sleep are well-studied, the contribution of signaling from peripheral tissues remains a critical yet less understood aspect of sleep regulation. The highly conserved RNA-binding protein Pumilio (Pum) is a post-transcriptional regulator expressed in multiple tissues that influence systemic physiology, but its role in modulating basal sleep has not been established. Although Pumilios function in central neurons has been linked to sleep homeostasis following deprivation, whether it regulates sleep through peripheral mechanisms remains unknown. Here, we use conditional genetic tools in the fruit fly Drosophila melanogaster to demonstrate that Pumilio acts in the intestinal stem cells (ISCs) and the endocrine corpus allatum (CA) to specifically regulate the transition to sleep. Reducing Pumilio function in either the ISCs or the CA independently and significantly accelerates nighttime sleep onset, while overexpression produces the opposite effect. This behavioral change is accompanied by widespread transcriptional alterations in the brain, characterized by a robust upregulation of genes involved in cellular stress responses, including Heat shock protein 83 (Hsp83). Our findings reveal a previously unrecognized gut-endocrine-brain signaling axis and identify peripheral post-transcriptional regulation as a key input to the central control of sleep behavior.

neuroscience↗

Gut microbiota as a modulator of circadian neural development in the honey bee model.

Disruption in gut microbiota during the early postnatal period can disrupt normal neural development and result in long-term behavioral alterations1. Similar to other neural systems, the circadian clock mechanism continues to mature after birth2, yet how microbial disturbances in the early period influence the onset of circadian rhythms and the development of central clock mechanisms remains poorly understood. Here we studied whether early-life gut dysbiosis affects the ontogeny of behavioral circadian rhythms and the maturation of clock neurons using the honey bee (Apis mellifera), a model organism that shares features of postnatal development of behavioral circadian rhythm and clock system3-5 with humans6. Our findings demonstrate that antibiotic-treated and gnotobiotic-reared bees display reduced rhythmicity compared to controls. These treatments also impair the development of the circadian pacemaker, marked by fewer Pigment-Dispersing Factor (PDF)-expressing neurons. Additionally, antibiotic exposure increased the expression of the Insulin-like Growth Factor Binding Protein Acid Labile Subunit (IGFALS) in early ages, which stabilizes the IGF-1/27, a hormone important for neurodevelopmental processes42. Together, these results identify gut microbiota as a modulator of circadian development. Our work provides an understanding of how early-life microbial disruptions influence the development of circadian rhythms, providing information that may extend to other animals, including humans.

neuroscience↗