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.

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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