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Sample Preparation for Mass Spectrometry-based Identification of RNA-binding Regions
Published on: September 28, 2017
Structural basis for RNA recognition by the C-terminal RRM domain of human RBM45
Xi Chen1, Qinghao Wei1, Zhongmei Yang1
1Institutes of Physical Science and Information Technology, Anhui University, Hefei, Anhui, China; School of Life Sciences, Anhui University, Hefei, Anhui, China.
Abstract:
RBM45 is an RNA-binding protein with roles in neural development by regulating RNA splicing. Its dysfunction and aggregation are associated with neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS) and frontotemporal lobar dementia (FTLD). RBM45 harbors three RRM domains that potentially bind RNA. While the recognitions of RNA by its N-terminal tandem RRM domains (RRM1 and RRM2) have been well understood, the RNA-binding property of its C-terminal RRM (RRM3) remains unclear. In this work, we identified that the RRM3 of the RBM45 sequence specifically binds RNA with a GACG sequence, similar but not identical to those recognized by the RRM1 and RRM2. Further, we determined the crystal structure of RBM45RRM3 in complex with a GACG sequence-containing single-stranded DNA. Our structural results, together with the RNA-binding assays of mutants at key amino acid residues, revealed the molecular mechanism by which RBM45RRM3 recognizes an RNA sequence. Our finding on the RNA-binding property of the individual RRM module of RBM45 provides the foundation for unraveling the RNA-binding characteristics of full-length RBM45 and for understanding the biological functions of RBM45.
Insights
The RBM45 protein
Area of Science:
- Molecular Biology
- Neuroscience
- Structural Biology
Background:
- RNA-binding motif 45 (RBM45) is crucial for neural development and RNA splicing.
- RBM45 dysfunction and aggregation are linked to neurodegenerative diseases like ALS and FTLD.
- RBM45 contains three RNA recognition motif (RRM) domains, but RRM3's RNA-binding properties are unknown.
Purpose of the Study:
- To investigate the RNA-binding specificity of the RBM45 RRM3 domain.
- To elucidate the molecular mechanism of RNA recognition by RBM45 RRM3.
- To understand the role of RBM45 RRM3 in the context of full-length RBM45 function.
Main Methods:
- RNA-binding assays to determine RRM3 specificity.
- X-ray crystallography to determine the structure of RBM45 RRM3 bound to DNA.
- Site-directed mutagenesis to analyze key amino acid residues in RNA binding.
Main Results:
- RBM45 RRM3 specifically binds RNA sequences containing GACG.
- The crystal structure reveals the molecular basis for GACG sequence recognition by RBM45 RRM3.
- Mutational analysis confirms the roles of specific residues in RBM45 RRM3 RNA binding.
Conclusions:
- The RBM45 RRM3 domain has distinct RNA sequence specificity compared to RRM1 and RRM2.
- The study provides a molecular mechanism for RBM45 RRM3-mediated RNA recognition.
- Findings lay the groundwork for understanding full-length RBM45 function in neurobiology.
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