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Blencowe, B. J.

Publications and source records attributed to Blencowe, B. J..

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

Whippet: an efficient method for the detection and quantification of alternative splicing reveals extensive transcriptomic complexity

Alternative splicing (AS) is a widespread process underlying the generation of transcriptomic and proteomic diversity in metazoans. Major challenges in comprehensively detecting and quantifying patterns of AS are that RNA-seq datasets are expanding near exponentially, while existing analysis tools are computationally inefficient and ineffective at handling complex splicing patterns. Here, we describe Whippet, a method that rapidly, and with minimal hardware requirements, models and quantifies splicing events of any complexity without significant loss of accuracy. Using an entropic measure of splicing complexity, Whippet reveals that approximately 33% of human protein coding genes contain complex AS events that result in substantial expression of multiple splice isoforms. These events frequently affect tandem arrays of folded protein domains. Remarkably, high-entropy AS events are more prevalent in tumour relative to matched normal tissues, and these differences correlate with increased expression of proto-oncogenic splicing factors. Whippet thus affords the rapid and accurate analysis of AS events of any complexity, and as such will facilitate biomedical research.

genomics