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Updated: Jun 1, 2026

Identification of Footprints of RNA:Protein Complexes via RNA Immunoprecipitation in Tandem Followed by Sequencing (RIPiT-Seq)
Published on: July 10, 2019
A birth-to-death view of mRNA from the RNA recognition motif perspective
Terri Goss Kinzy1, Lauren A De Stefano, Anthony M Esposito
1UMDNJ Robert Wood Johnson Medical School Graduate School of Biomedical Sciences and Rutgers, The State University of New Jersey Joint Program in Molecular Biosciences, NJ; Department of Molecular Genetics, Microbiology and Immunology, UMDNJ Robert Wood Johnson Medical School, NJ.
Abstract:
RNA binding proteins are a large and varied group of factors that are the driving force behind post-transcriptional gene regulation. By analogy with transcription factors, RNA binding proteins bind to various regions of the mRNAs that they regulate, usually upstream or downstream from the coding region, and modulate one of the five major processes in mRNA metabolism: splicing, polyadenylation, export, translation and decay. The most abundant RNA binding protein domain is called the RNA Recognition Motif (RRM)1. It is probably safe to say that an RRM-containing protein is making some contact with an mRNA throughout its existence. The transcriptional counterpart would likely be the histones, yet the multitude of specific functions that are results of RRM based interactions belies the universality of the motif. This complex and diverse application of a single protein motif was used as the basis to develop an advanced graduate level seminar course in RNA:protein interactions. The course, utilizing a learner-centered empowerment model, was developed to dissect each step in RNA metabolism from the perspective of an RRM containing protein. This provided a framework to discuss the development of specificity for the RRM for each required process.
Insights
RNA binding proteins regulate gene expression post-transcriptionally. The abundant RNA Recognition Motif (RRM) enables diverse mRNA metabolism functions, forming the basis for a specialized graduate course.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- RNA binding proteins (RBPs) are crucial for post-transcriptional gene regulation.
- RBPs interact with mRNA to control splicing, polyadenylation, export, translation, and decay.
- The RNA Recognition Motif (RRM) is the most common RBP domain, essential for mRNA interactions.
Purpose of the Study:
- To develop an advanced graduate seminar on RNA:protein interactions.
- To explore the diverse functions of the RRM domain in mRNA metabolism.
- To provide a framework for understanding RRM specificity in gene regulation.
Main Methods:
- Learner-centered empowerment model for course delivery.
- Dissection of each mRNA metabolism step.
- Focus on RRM-containing proteins and their interactions.
Main Results:
- The universality and diverse applications of the RRM motif were highlighted.
- A comprehensive understanding of RRM-based interactions in mRNA metabolism was achieved.
- The seminar provided a framework for discussing RRM specificity.
Conclusions:
- The RRM domain's versatility underpins its central role in gene regulation.
- Understanding RRM function is key to deciphering post-transcriptional control.
- The developed seminar effectively addresses the complexity of RNA:protein interactions.
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