Polycystic Ovary Syndrome (PCOS) is the most common hormonal disorder among women of reproductive age, affecting up to 15% of women globally. Despite its high prevalence and major impacts on reproductive health, fertility, metabolism, and mental wellbeing, the causes of PCOS remain unclear, and no definitive cure currently exists. This gap in knowledge severely limits the development of targeted therapies and preventive strategies.
The DROPCOS project aimed to develop and utilize a novel genetic animal model of PCOS, using Drosophila melanogaster, to uncover the biological mechanisms underlying the syndrome. While PCOS is typically diagnosed during adolescence or adulthood, emerging evidence suggests that its roots may lie much earlier in life, potentially even during embryonic development. The project aimed to test this hypothesis by examining how neuroendocrine signaling, fat metabolism, and ovarian development are coordinated during early life stages.
Specifically, the project investigated the role of genes involved in inter-organ communication, particularly between the brain, fat body (the fly equivalent of adipose tissue), and ovaries. The central objective was to characterize how disruptions in this neuroendocrine-adipose-gonadal axis can lead to PCOS-like features, such as excess germline stem cell proliferation, cystic ovaries, and metabolic imbalances.
This project contributes to addressing a major global health issue and provides a cost-effective, high-throughput genetic platform for exploring potential therapeutic targets and early biomarkers of PCOS.