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Hunter, C.

Publications and source records attributed to Hunter, C..

2 recordsLinked to original sources

Slow transcriptional elongation causes embryonic lethality and perturbs kinetic coupling of long neural genes

Alternative splicing (AS) is a highly regulated process that increases protein diversity and is critical for cell differentiation and development. The rate of RNA Polymerase II (RNAPII) elongation has an important role in the control of AS. We generated mouse embryonic stem cells (ESCs) knocked-in for a slow elongating form of RNAPII and show that a reduced transcriptional elongation rate causes early embryonic lethality in mice and impairs the differentiation of ESCs into the neural lineage. The reduced elongation rate caused changes in splicing and in gene expression in ESCs and along the pathway of neuronal differentiation. In particular, we found a crucial role for RNAPII elongation rate in transcription and splicing of long neuronal genes involved in synapse signaling. The impact of the kinetic coupling of RNAPII elongation rate with AS is more predominant in ESC-differentiated neurons than in pluripotent cells. Our results demonstrate the requirement for an appropriate transcriptional elongation rate to ensure proper gene expression and to regulate AS during development.

molecular biology

Comprehensive Genetic Testing for Female and Male Infertility Using Next Generation Sequencing

ObjectiveTo develop a comprehensive genetic test for female and male infertility in support of medical decisions during assisted reproductive technology (ART) protocols.\n\nDesignRetrospective analysis of results from 118 DNA samples with known variants in loci representative of female and male infertility.\n\nInterventions(s)None\n\nMain Outcome Measure(s)Next-Generation Sequencing (NGS) of 87 genes including promoters, 5 and 3 untranslated regions, exons and selected introns. In addition, sex chromosome aneuploidies and Y chromosome microdeletions are analyzed concomitantly using the same panel.\n\nResultsAnalytical accuracy was >99%, with >98% sensitivity for Single Nucleotide Variants (SNVs) and >91% sensitivity for insertions/deletions (indels). Clinical sensitivity was assessed with samples containing variants representative of male and female infertility, and it was 100% for SNVs/indels, CFTR IVS8-5T variants, sex chromosome aneuploidies and Copy Number Variants (CNVs), and >93% for Y chromosome microdeletions. Cost analysis comparing the NGS assay with standard, multiple analysis approach, shows potential savings of $2723 per case. Conclusion: A single, comprehensive, NGS panel can simplify the ordering process for healthcare providers, reduce turnaround time, and lower the overall cost of testing for genetic assessment of infertility in females and males, while maintaining accuracy.

genomics