NBS1 plays a synergistic role with telomerase in the maintenance of telomeres in Arabidopsis thaliana
Language English Country England, Great Britain Media electronic
Document type Journal Article, Research Support, Non-U.S. Gov't
PubMed
22985462
PubMed Central
PMC3490983
DOI
10.1186/1471-2229-12-167
PII: 1471-2229-12-167
Knihovny.cz E-resources
- MeSH
- Anaphase MeSH
- Arabidopsis cytology enzymology genetics growth & development MeSH
- Chromosomal Instability MeSH
- Chromosomes, Plant genetics metabolism MeSH
- Cytogenetic Analysis MeSH
- DNA-Binding Proteins genetics metabolism MeSH
- Telomere Homeostasis MeSH
- MRE11 Homologue Protein MeSH
- In Situ Hybridization, Fluorescence MeSH
- Nuclear Proteins genetics metabolism MeSH
- Germination MeSH
- Flowers cytology genetics metabolism MeSH
- Protein Interaction Mapping MeSH
- Meiosis MeSH
- DNA Repair MeSH
- Cell Cycle Proteins genetics metabolism MeSH
- Arabidopsis Proteins genetics metabolism MeSH
- Plant Cells enzymology metabolism MeSH
- Self-Fertilization MeSH
- Seeds genetics growth & development metabolism MeSH
- Telomerase genetics metabolism MeSH
- Telomere genetics metabolism MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- DNA-Binding Proteins MeSH
- MRE11 Homologue Protein MeSH
- Nuclear Proteins MeSH
- Mre11 protein, Arabidopsis MeSH Browser
- Cell Cycle Proteins MeSH
- Arabidopsis Proteins MeSH
- rad50 protein, Arabidopsis MeSH Browser
- Telomerase MeSH
- TERT protein, Arabidopsis MeSH Browser
BACKGROUND: Telomeres, as elaborate nucleo-protein complexes, ensure chromosomal stability. When impaired, the ends of linear chromosomes can be recognised by cellular repair mechanisms as double-strand DNA breaks and can be healed by non-homologous-end-joining activities to produce dicentric chromosomes. During cell divisions, particularly during anaphase, dicentrics can break, thus producing naked chromosome tips susceptible to additional unwanted chromosome fusion. Many telomere-building protein complexes are associated with telomeres to ensure their proper capping function. It has been found however, that a number of repair complexes also contribute to telomere stability. RESULTS: We used Arabidopsis thaliana to study the possible functions of the DNA repair subunit, NBS1, in telomere homeostasis using knockout nbs1 mutants. The results showed that although NBS1-deficient plants were viable, lacked any sign of developmental aberration and produced fertile seeds through many generations upon self-fertilisation, plants also missing the functional telomerase (double mutants), rapidly, within three generations, displayed severe developmental defects. Cytogenetic inspection of cycling somatic cells revealed a very early onset of massive genome instability. Molecular methods used for examining the length of telomeres in double homozygous mutants detected much faster telomere shortening than in plants deficient in telomerase gene alone. CONCLUSIONS: Our findings suggest that NBS1 acts in concert with telomerase and plays a profound role in plant telomere renewal.
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