Telomere instability in a human tumor cell line expressing NBS1 with mutations at sites phosphorylated by ATM

Yongli Bai1, John P Murnane

  • 1Radiation Oncology Research Laboratory, University of California-San Francisco, 1855 Folsom Street, San Francisco, CA 94103, USA.

Insights

Nijmegen breakage syndrome (NBS) involves NBS1 gene mutations, leading to telomere loss and chromosome instability. This study shows NBS1 deficiency causes stochastic telomere loss, independent of radiosensitivity.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cell Biology

Background:

  • Nijmegen breakage syndrome (NBS) is a genetic disorder characterized by premature aging, cancer, and chromosome instability.
  • The NBS1 gene, part of the MRE11/RAD50/NBS1 (MRN) complex, is crucial for DNA repair, cell cycle regulation, and telomere maintenance.
  • Previous studies indicate shortened telomeres in NBS fibroblasts and NBS1's association with telomere-binding protein TRF2.

Purpose of the Study:

  • To investigate how impaired telomere maintenance contributes to chromosome instability in NBS.
  • To analyze telomere stability in response to mutated NBS1 (NBS1(S278A/S343A)) in telomerase-positive human tumor cell clones.

Main Methods:

  • Utilized two telomerase-positive human tumor cell clones (BNmt-On and BNmt-Off).
  • Expressed an inducible NBS1 gene with mutations at ATM-phosphorylated serines 278 and 343 (NBS1(S278A/S343A)).
  • Assessed telomere stability, length, and associated recombination events.

Main Results:

  • Expression of NBS1(S278A/S343A) led to an increased rate of telomere loss in both cell clones.
  • No significant changes in average telomere length were observed, suggesting stochastic telomere loss or capping dysfunction.
  • Recombination events linked to telomere loss resembled those in breakage/fusion/bridge cycles.
  • Telomere loss was independent of radiosensitivity and radioresistant DNA synthesis.

Conclusions:

  • NBS1 deficiency promotes telomere loss through a pathway distinct from radiosensitivity.
  • Stochastic telomere loss and potential capping defects contribute to chromosome instability in NBS1-deficient cells.
  • These findings elucidate a mechanism linking NBS1 dysfunction to genomic instability.

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