4.0 Article

1H, 13C and 15N resonance assignments and solution structures of the two RRM domains of Matrin-3

Journal

BIOMOLECULAR NMR ASSIGNMENTS
Volume 16, Issue 1, Pages 41-49

Publisher

SPRINGER
DOI: 10.1007/s12104-021-10057-0

Keywords

RRM; Matrin-3; RNA binding domain; Amyotrophic lateral sclerosis; Frontotemporal dementia

Funding

  1. RIKEN Structural Genomics/Proteomics Initiative (RSGI)
  2. National Project on Protein Structural and Functional Analyses of the Ministry of Education, Culture, Sports, Science and Technology of Japan
  3. Musashino University Gakuin Tokubetsu Kenkyuhi

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Matrin-3 is a multifunctional protein with DNA-binding and RNA-binding activities, which are associated with nuclear matrix formation, transcriptional regulation, and mRNA metabolism. Pathogenic mutations in its disordered region cause ALS and FTD, linked to its RNA-binding activity mediated by the RRM domains.
Matrin-3 is a multifunctional protein that binds to both DNA and RNA. Its DNA-binding activity is linked to the formation of the nuclear matrix and transcriptional regulation, while its RNA-binding activity is linked to mRNA metabolism including splicing, transport, stabilization, and degradation. Correspondingly, Matrin-3 has two zinc finger domains for DNA binding and two consecutive RNA recognition motif (RRM) domains for RNA binding. Matrin-3 has been reported to cause amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) when its disordered region contains pathogenic mutations. Simultaneously, it has been shown that the RNA-binding activity of Matrin-3 mediated by its RRM domains, affects the formation of insoluble cytoplasmic granules, which are related to the pathogenic mechanism of ALS/FTD. Thus, the effect of the RRM domains on the phase separation of condensed protein/RNA mixtures has to be clarified for a comprehensive understanding of ALS/FTD. Here, we report the H-1, N-15, and C-13 resonance assignments of the two RNA binding domains and their solution structures. The resonance assignments and the solution structures obtained in this work will contribute to the elucidation of the molecular basis of Matrin-3 in the pathogenic mechanism of ALS and/or FTD.

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