Transcriptional dynamics reveal critical roles for non-coding RNAs in the immediate-early response
Stuart Aitken1, Shigeyuki Magi2, Ahmad M N Alhendi3
1MRC Institute of Genetics and Molecular Medicine, University of Edinburgh, Edinburgh, United Kingdom.
Abstract:
The immediate-early response mediates cell fate in response to a variety of extracellular stimuli and is dysregulated in many cancers. However, the specificity of the response across stimuli and cell types, and the roles of non-coding RNAs are not well understood. Using a large collection of densely-sampled time series expression data we have examined the induction of the immediate-early response in unparalleled detail, across cell types and stimuli. We exploit cap analysis of gene expression (CAGE) time series datasets to directly measure promoter activities over time. Using a novel analysis method for time series data we identify transcripts with expression patterns that closely resemble the dynamics of known immediate-early genes (IEGs) and this enables a comprehensive comparative study of these genes and their chromatin state. Surprisingly, these data suggest that the earliest transcriptional responses often involve promoters generating non-coding RNAs, many of which are produced in advance of canonical protein-coding IEGs. IEGs are known to be capable of induction without de novo protein synthesis. Consistent with this, we find that the response of both protein-coding and non-coding RNA IEGs can be explained by their transcriptionally poised, permissive chromatin state prior to stimulation. We also explore the function of non-coding RNAs in the attenuation of the immediate early response in a small RNA sequencing dataset matched to the CAGE data: We identify a novel set of microRNAs responsible for the attenuation of the IEG response in an estrogen receptor positive cancer cell line. Our computational statistical method is well suited to meta-analyses as there is no requirement for transcripts to pass thresholds for significant differential expression between time points, and it is agnostic to the number of time points per dataset.
Insights
Immediate-early genes (IEGs) orchestrate cell fate but their specificity and non-coding RNA roles remain unclear. This study reveals non-coding RNAs often initiate the earliest transcriptional responses, preceding protein-coding IEGs.
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- The immediate-early response (IEG) is crucial for cell fate determination following extracellular stimuli and is frequently disrupted in cancers.
- The precise stimulus- and cell-type specificity of IEGs, along with the functions of non-coding RNAs within this response, are not fully elucidated.
Purpose of the Study:
- To comprehensively investigate the induction dynamics of the immediate-early response across diverse cell types and stimuli.
- To explore the role of non-coding RNAs in the initiation and attenuation of the immediate-early gene response.
Main Methods:
- Utilized cap analysis of gene expression (CAGE) time series data to directly measure promoter activities over time.
- Developed a novel computational method to identify transcripts with immediate-early gene-like expression dynamics.
- Analyzed matched small RNA sequencing data to investigate the functional roles of non-coding RNAs.
Main Results:
- Identified that early transcriptional responses frequently involve non-coding RNAs generated by promoters, often preceding canonical protein-coding immediate-early genes.
- Demonstrated that the transcriptional response of both protein-coding and non-coding IEGs is linked to a pre-existing poised and permissive chromatin state.
- Discovered a novel set of microRNAs involved in attenuating the immediate-early gene response in estrogen receptor-positive cancer cells.
Conclusions:
- Non-coding RNAs play a significant, often pioneering, role in the immediate-early gene response.
- The chromatin state is a key determinant of immediate-early gene inducibility, irrespective of protein synthesis.
- MicroRNAs are implicated in the regulatory feedback mechanisms of the immediate-early response in cancer cells.
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