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Fluo-Cast-Bright: A Deep Learning Pipeline for the Non-Invasive Prediction of Chromatin Structure and Developmental Potential in Live Oocytes

GSE266845 Mus musculus Expression profiling by high throughput sequencing 4 samples Submitted 2025/01/29 Platform GPL21103
Summary
In mammalian oocytes, large-scale chromatin organization regulates transcription, nuclear architecture, and maintenance of chromosome stability in preparation for meiosis onset. Pre-ovulatory oocytes with distinct chromatin configuration exhibit profound differences in metabolic and transcriptional profiles that ultimately determine meiotic competence and developmental potential. Here, we developed a deep learning pipeline for the non-invasive prediction of chromatin structure and developmental potential in live mouse oocytes. Our Fluorescence prediction and Classification on Bright-field (Fluo-Cast-Bright) pipeline achieved 91.3% accuracy in the classification of chromatin state in fixed oocytes and 85.7% accuracy in live oocytes. Importantly, transcriptome analysis following non-invasive selection revealed that meiotically competent oocytes exhibit a higher expression of transcripts associated with RNA and protein nuclear export, maternal mRNA deadenylation, histone modifications, chromatin remodeling and signaling pathways regulating microtubule dynamics during the metaphase-I to metaphase-II transition. Our pipeline provides fast and non-invasive selection of meiotically competent oocytes for downstream research and clinical applications.
Published in
Fluo-Cast-Bright: a deep learning pipeline for the non-invasive prediction of chromatin structure and developmental potential in live oocytes
Zhang X, Baumann C, De La Fuente R · Communications biology 2025 · PMID 39880880 · doi:10.1038/s42003-025-07568-0
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Direct links to NCBI, no account and no request form: the whole study as GSE266845_RAW.tar, processed values as the series matrix, the supplementary file directory, and per-sample supplementary files for any of the 4 samples. Raw sequencing reads are also available from ENA.

Also filed as BioProject PRJNA1108350 and SRA study SRP506012. Searching any of these in the dataset finder brings you back here.

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