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Biology subjects

Rehnitz, J.

Publications and source records attributed to Rehnitz, J..

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↗

Genomic instability in patients with sex determination defects and germ cell cancer

The ability to transmit genetic information through generations depends on preservation of genome integrity. Genetic abnormalities affect cell differentiation, causing tissue specification defects and cancer. We addressed genomic instability in individuals with Differences of Sex Development (DSD), characterized by gonadal dysgenesis, infertility, high susceptibility for different types of cancer, especially Germ Cell Tumors (GCT), and in men with testicular GCTs. Whole proteome analysis of leukocytes, supported by specific gene expression assessment, and dysgenic gonads characterization, uncovered DNA damage phenotypes with altered innate immune response and autophagy. Further examination of DNA damage response revealed a reliance on deltaTP53, which was compromised by mutations in the transactivation domain in DSD-patients with GCT. Accordingly, drug-induced rescue of DNA damage was achieved by autophagy inhibition but not by stabilization of TP53 in DSD-patients blood in vitro. This study elucidates possibilities for prophylactic treatments of DSD patients as well as new diagnostic approaches of GCT. TeaserDNA damage phenotypes accompany aneuploidy of sex chromosomes and link to infertility and high propensity to germ cell tumor development.

genetics↗