4.5 Article

Structural insights into telomere protection and homeostasis regulation by yeast CST complex

Journal

NATURE STRUCTURAL & MOLECULAR BIOLOGY
Volume 27, Issue 8, Pages 752-+

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41594-020-0459-8

Keywords

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Funding

  1. Ministry of Science and Technology of China [2018YFA0107004]
  2. National Natural Science Foundation of China [31525007, U1632267, U1732124, 21625302, 21573217]
  3. Outstanding Academic Leader Program of Science and Technology Commission of Shanghai Municipality [16XD1405000, 19XD1422200]
  4. Shanghai Municipal Education Commission-Gaofeng Clinical Medicine Grant Support [20181711]

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Budding yeast Cdc13-Stn1-Ten1 (CST) complex plays an essential role in telomere protection and maintenance. Despite extensive studies, only structural information of individual domains of CST is available; the architecture of CST still remains unclear. Here, we report crystal structures ofKluyveromyces lactisCdc13-telomeric-DNA, Cdc13-Stn1 and Stn1-Ten1 complexes and propose an integrated model depicting how CST assembles and plays its roles at telomeres. Surprisingly, two oligonucleotide/oligosaccharide-binding (OB) folds of Cdc13 (OB2 and OB4), previously believed to mediate Cdc13 homodimerization, actually form a stable intramolecular interaction. This OB2-OB4 module of Cdc13 is required for the Cdc13-Stn1 interaction that assembles CST into an architecture with a central ring-like core and multiple peripheral modules in a 2:2:2 stoichiometry. Functional analyses indicate that this unique CST architecture is essential for both telomere capping and homeostasis regulation. Overall, our results provide fundamentally valuable structural information regarding the CST complex and its roles in telomere biology. Structural elucidation of theKluyveromyces lactistelomeric Cdc13-Stn1-Ten1 complex unexpectedly reveals a distinct complex structure from that of RPA.

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