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Daugelaite, K.

Publications and source records attributed to Daugelaite, K..

2 recordsLinked to original sources

Superovulation and aging perturb oocyte-granulosa cell communication

In vitro fertilization has been developed to overcome reduced fertility, which is increasingly due to a decline in reproductive cell quality during aging. Here, we quantitatively investigated the interplay between superovulation and aging in mouse oocytes and their paired granulosa cells using newly adapted isolation techniques. We tested the hypothesis that superovulation disrupts oocyte maturation, revealing the key intercellular communication pathways dysregulated by forced hormonal stimulation. We further demonstrated that granulosa cell transcriptional markers can prospectively predict an associated oocytes early developmental potential. By using naturally ovulated old mice as a non-stimulated reference, we showed that aging and superovulation dysregulate similar genes and interact with each other. By comparing mice and human transcriptional responses of granulosa cells, we found that age-related dysregulation of hormonal responses and cell cycle pathways was shared, though substantial divergence exists in other pathways. HighlightsO_LISuperovulation perturbs cumulus-oocyte communication C_LIO_LIGranulosa cell transcription predicts superovulated oocyte quality C_LIO_LISuperovulation and aging non-additively perturb similar sets of genes C_LI

developmental biology↗

The function and decline of the female reproductive tract at single-cell resolution

The female reproductive tract (FRT) undergoes extensive remodeling during each reproductive cycle, regulated by systemic changes in sex hormones. Whether this recurrent remodeling influences a specific organs aging trajectory is unknown. To address this, we systematically characterized at single-cell resolution the morphological and transcriptional changes that occur in ovary, oviduct, uterus, cervix, and vagina at each phase of the mouse estrus cycle, during decidualization, and into aging. Transcriptional and cell-to-cell communication networks in estrus cycle and aging are enriched for ECM reorganization and inflammation, two essential components of FRT remodeling. We directly link the organ-specific level of these two processes over reproductive lifespan with the gradual, age-related development of fibrosis and chronic inflammation. Our data represent a comprehensive atlas of the FRT lifespan, revealing pathological consequences of incomplete resolution of recurrent inflammation and tissue repair.

genomics↗