Deciphering the RNA-binding protein interaction with the mRNAs encoded from human chromosome 15q11.2 BP1-BP2

Smruti Rekha Biswal1, Mandakini Singh1, Sushree Lipsa Lopamudra Dwibedy1

  • 1Department of Life Science, National Institute of Technology (NIT), Rourkela, Odisha, 769008, India.

Insights

This study identifies RNA-binding proteins interacting with genes in the 15q11.2 microdeletion region, crucial for understanding Burnside-Butler Syndrome and neurodevelopmental disorders.

Area of Science:

  • Genetics and Molecular Biology
  • Neurodevelopmental Disorders
  • Genomic Imprinting

Background:

  • 15q11.2 microdeletion (Burnside-Butler susceptibility region) is linked to developmental delays and behavioral issues.
  • This region contains four conserved genes: NIPA1, NIPA2, CYFIP1, and TUBGCP5.
  • Understanding gene regulation in this region is key to neurodevelopmental disorder research.

Purpose of the Study:

  • To identify RNA-binding proteins (RBPs) interacting with the four genes in the 15q11.2 BP1-BP2 microdeletion region.
  • To elucidate the role of these RBP interactions in the molecular pathology of Burnside-Butler Syndrome.
  • To explore the functional significance of these interactions in normal development and neurodevelopmental disorders.

Main Methods:

  • In silico analysis to predict potential RBPs binding to the 15q11.2 region.
  • Enhanced crosslinking and immunoprecipitation (eCLIP) to analyze RBP interactions.
  • Electrophoretic mobility shift assay (EMSA) and Western blotting to validate specific RBP-mRNA interactions.

Main Results:

  • Most identified RBPs interacting with the 15q11.2 region are involved in post-transcriptional gene regulation.
  • Specific RBPs, FASTKD2 and EFTUD2, were validated to bind exon-intron junctions of CYFIP1 and TUBGCP5.
  • Binding to exon-intron junctions suggests a role for these RBPs in RNA splicing.

Conclusions:

  • The study reveals key RBP interactions within the 15q11.2 microdeletion region, primarily in post-transcriptional regulation and splicing.
  • These findings deepen the understanding of Burnside-Butler Syndrome's molecular basis.
  • Identifying these intricate relationships may pave the way for novel therapeutic strategies for neurodevelopmental disorders.

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