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Updated: Aug 14, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
Isolation of hMRE11B: failure to complement yeast mre11 defects due to species-specific protein interactions
M Chamankhah1, Y F Wei, W Xiao
1Department of Microbiology, University of Saskatchewan, 107 Wiggins Road, Saskatoon SK S7N 5E5, Canada.
Abstract:
The Saccharomyces cerevisiae MRE11 gene plays an important role in meiotic recombination, mitotic DNA repair and telomere maintenance. We present the isolation of hMRE11B cDNA from a human HeLa cell cDNA library as an MRE11 homolog. Compared to the previously identified hMRE11, hMRE11B contains an additional 84bp sequence that results in a 28 amino-acid insertion close to the C-terminus. The expression pattern of hMRE11B in different tissues shows the presence of two mRNA species of approx. 2.6 and 7.5kb. Overexpression of hMRE11B does not complement the alkylation sensitivity of the mre11 null and temperature-sensitive mutant strains. In this study, we examine factors that may explain this lack of complementation. First, both Northern and Western analyses rule out the lack of hMRE11B transcription and/or translation in yeast. Second, we demonstrate that hMre11B, like the yeast Mre11 protein, dimerizes in vivo in a yeast two-hybrid system. This dimerization requires the C-terminal one-third of hMre11B protein, which includes the 28 amino acids absent in hMre11. However, hMre11B does not interact with Mre11, Rad50 and Xrs2. Hence, the lack of protein-protein interaction between hMre11B and the yeast Mre11, Rad50, and Xrs2 may explain the inability of hMRE11B to complement the yeast mre11 mutants. We rule out the hypothesis that the lack of interaction and, in turn of complementation, is due to the absence of sequence homology at the C-terminal domain of hMre11B compared to the yeast Mre11. Instead, we propose that the C-terminus of hMre11B participates in protein-protein interaction and functions in a species-specific manner.
Insights
Human MRE11B (hMRE11B) is an MRE11 homolog that dimerizes but does not complement yeast mre11 mutants. Species-specific interactions at the C-terminus likely explain this lack of complementation in DNA repair.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- The Saccharomyces cerevisiae MRE11 gene is crucial for DNA repair, recombination, and telomere maintenance.
- hMRE11B is identified as a human homolog of MRE11, featuring a unique 28-amino acid insertion near its C-terminus.
Purpose of the Study:
- To investigate why human MRE11B (hMRE11B) fails to complement yeast mre11 mutants despite being an MRE11 homolog.
- To elucidate the molecular mechanisms underlying hMRE11B's functional limitations in yeast.
Main Methods:
- Isolation of hMRE11B cDNA from a human HeLa cell library.
- Northern and Western blot analyses to assess hMRE11B transcription and translation in yeast.
- Yeast two-hybrid system to study protein-protein interactions of hMre11B with yeast Mre11, Rad50, and Xrs2.
Main Results:
- hMRE11B is transcribed and translated in yeast, and it dimerizes in vivo.
- Dimerization of hMre11B requires its C-terminal region, including the unique 28-amino acid insertion.
- hMre11B does not interact with yeast Mre11, Rad50, or Xrs2.
Conclusions:
- The inability of hMRE11B to complement yeast mre11 mutants is attributed to a lack of species-specific protein-protein interactions.
- The C-terminus of hMRE11B is involved in protein interactions and functions in a manner unique to humans, rather than yeast.
- This suggests functional divergence in DNA repair pathways between yeast and humans at the protein interaction level.
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