A telomere-binding protein (TRF2/MTBP) from mouse nuclear matrix with motives of an intermediate filament-type rod

Alexey P Voronin1, Ivan B Lobov, Eric Gilson

  • 1Institute of Cytology, Russian Academy of Sciences, St. Petersburg, Russia.

Insights

Telomere-membrane binding protein (MTBP) is immunologically identical to TRF2, a key protein in vertebrate telomeres. This finding suggests MTBP/TRF2 may anchor telomeres to the nuclear envelope in somatic cells.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Genetics

Background:

  • Telomeres are protective caps at chromosome ends, crucial for genomic stability.
  • Telomere-membrane binding protein (MTBP) was previously identified in frog oocyte nuclei.
  • The function and identity of MTBP in somatic cells remained unclear.

Purpose of the Study:

  • To investigate the identity and function of MTBP in vertebrate somatic cells.
  • To determine if MTBP is related to known telomeric DNA-binding proteins.
  • To explore the potential role of MTBP in telomere-nuclear envelope interactions.

Main Methods:

  • Immunological cross-reactivity studies using antibodies against MTBP and intermediate filament proteins.
  • Amino acid sequence homology analysis.
  • Ion-exchange chromatography, gel shift assays, and Western blotting on mouse nuclear extracts.
  • In situ hybridization and immunofluorescence microscopy in mouse cells.
  • Co-localization studies with nuclear envelope markers like lamin B.

Main Results:

  • Immunological evidence strongly suggests MTBP is identical to vertebrate telomere-repeat factor 2 (TRF2).
  • MTBP/TRF2 shares sequence homology and cross-reacts with antibodies recognizing intermediate filament protein motifs.
  • Anti-MTBP antibodies recognized a protein of the same molecular weight as TRF2 in mouse nuclei and nuclear matrix.
  • MTBP/TRF2 binds vertebrate telomeric DNA fragments more stably than Tetrahymena fragments.
  • MTBP was found associated with residual nuclear envelopes in mouse hepatocytes and localized to chromosome extremities and nuclear envelope remnants.

Conclusions:

  • MTBP is strongly indicated to be the vertebrate telomeric DNA-binding protein TRF2.
  • MTBP/TRF2 possesses characteristics of intermediate filament proteins.
  • MTBP/TRF2 is a strong candidate for mediating the attachment of telomeres to the nuclear envelope in somatic cells.

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