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Published on: August 15, 2019
Differential expression of a disease-associated MRE11 variant reveals distinct phenotypic outcomes
McKenna B DeFoer1, Ahmed M Mostafa2,3, Andrea J Hartlerode1,2
1Department of Human Genetics, University of Michigan Medical School, Ann Arbor, MI, USA.
Abstract:
The MRE11 DNA nuclease plays central roles in the repair of DNA double-strand breaks (DSBs) as a core component of the heterotrimeric MRE11/RAD50/NBS1 (MRN) complex. MRN localizes to chromosomal DSBs and recruits and activates the apical DSB repair protein kinase, ATM, which phosphorylates downstream substrates to elicit cellular DNA damage responses. Pathogenic variants in MRE11 cause the genome instability disorder ataxia-telangiectasia-like disorder (ATLD). The first ATLD patient allele identified, ATLD1, is a nonsense mutation that deletes 76 amino acids from the MRE11 C-terminus and results in markedly reduced levels of MRE11-ATLD1 and the entire MRN complex. This region of the C-terminus has been demonstrated to function in DNA binding, mediate functional protein interactions, and undergo post-translational modifications that regulate MRE11 nucleolytic activities. We previously demonstrated that transgenic mice expressing low wildtype MRN exhibit severe phenotypes, including small body size, anemia, and cellular DNA DSB repair defects. Thus, it is currently unknown whether reduced MRE11-ATLD1 and MRN levels, loss of the C-terminus, or both cause disease-associated phenotypes. In this study, we generated transgenic mouse models that express near endogenous or significantly reduced levels of MRE11-ATLD1 to determine the in vivo importance of the MRE11 C-terminus. We observe that reduced MRE11-ATLD1 expression leads to anemia, bone marrow failure, extramedullary hematopoiesis, and impaired lymphocyte development, similar to mice expressing low wildtype MRE11. In contrast, higher expression of MRE11-ATLD1 results in a subset of moderate phenotypes, indicating that loss of C-terminus has limited impact on MRN functions in vivo. These findings have implications for clinical predictions of ATLD patients harboring pathogenic MRE11 variants that impair MRE11 function and/or impact MRN protein levels.
Insights
Reduced MRE11-ATLD1 levels cause anemia and bone marrow failure in mice, similar to low wildtype MRE11. Loss of the MRE11 C-terminus has minimal impact on MRN complex function in vivo.
Area of Science:
- Molecular Biology
- Genetics
- Cellular Biology
Background:
- The MRE11/RAD50/NBS1 (MRN) complex is crucial for DNA double-strand break (DSB) repair and activating ATM kinase.
- Pathogenic variants in MRE11 cause ataxia-telangiectasia-like disorder (ATLD), a genome instability syndrome.
- The ATLD1 mutation truncates MRE11, affecting its C-terminus and reducing MRN complex levels.
Purpose of the Study:
- To investigate the in vivo importance of the MRE11 C-terminus in ATLD pathogenesis.
- To differentiate the effects of reduced MRE11 levels from the loss of its C-terminus.
Main Methods:
- Generation of transgenic mouse models expressing varying levels of MRE11-ATLD1.
- Phenotypic analysis of these mouse models, including hematological and immunological assessments.
- Comparison with previously studied mice expressing low wildtype MRE11.
Main Results:
- Reduced MRE11-ATLD1 expression recapitulated phenotypes seen with low wildtype MRE11, including anemia and bone marrow failure.
- Higher expression of MRE11-ATLD1 resulted in milder phenotypes, suggesting limited impact of C-terminus loss.
- Impaired lymphocyte development and extramedullary hematopoiesis were observed.
Conclusions:
- Reduced MRE11 protein levels are the primary driver of ATLD-associated phenotypes.
- The MRE11 C-terminus appears to have a limited role in MRN complex function in vivo.
- Findings aid in predicting clinical outcomes for ATLD patients with MRE11 variants.
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