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bioRxiv · 10.1101/2021.12.11.472181

Buffering of transcription rate by mRNA half-life is a conserved feature of Rett syndrome models

Abstract

Models of MECP2 dysfunction in Rett syndrome (RTT) assume that transcription rate changes directly correlate with altered steady-state mRNA levels. However, limited evidence suggests that transcription rate changes are buffered by poorly understood compensatory post-transcriptional mechanisms. Here we measure transcription rate and mRNA half-life changes in RTT patient neurons using RATE-seq, and reinterpret nuclear and whole-cell RNAseq from Mecp2 mice. Genes are dysregulated by changing transcription rate only or half-life only and are buffered when both are changed. We utilized classifier models to understand the direction of transcription rate changes based on gene-body DNA sequence, and combined frequencies of three dinucleotides were better predictors than contributions by CA and CG. MicroRNA and RNA-Binding Protein (RBP) motifs were enriched in 3UTRs of genes with half-life changes. Motifs for nuclear localized RBPs were enriched on buffered genes with increased transcription rate. Our findings identify post-transcriptional mechanisms in humans and mice that alter half-life only or buffer transcription rate changes when a transcriptional modulator gene is mutated in a neurodevelopmental disorder.

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BibTeXRIS

Rodrigues, D. C., Mufteev, M., Yuki, K. E., Narula, A., Wei, W., Piekna, A., Liu, J., Pasceri, P., Rissland, O. S., Wilson, M. D., Ellis, J.. 2021-12-13. Buffering of transcription rate by mRNA half-life is a conserved feature of Rett syndrome models. https://doi.org/10.1101/2021.12.11.472181

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