Molecular insights into assembly of the yeast CST-Polα/primase complex for telomere maintenance

Telomeric DNA replication involves coordinated action of telomerase and DNA polymerase α-primase (Polα/primase), which synthesize the G-strand and C-strand, respectively. The conserved Cdc13-Stn1-Ten1 (CST) complex critically regulates this process by both terminating telomerase activity and stimulating Polα/primase. While telomerase-mediated G-overhang synthesis is well studied, how CST-Polα/primase is recruited to telomeres for C-strand fill-in remains poorly understood. Structural analysis reveals an evolutionary diversity of CST interaction with Polα/primase across organisms. Here, using a combination of AlphaFold3 structural modeling with genetic assays, we unveil the assembly mechanism of CST-Polα/primase for telomere maintenance in Saccharomyces cerevisiae . We structurally characterize the uniqueness and specific determinants of the Stn1-Pol12 interaction in the S. cerevisiae CST-Polα/primase complex. The Cdc13-Pol1 and Stn1-Pol12 interactions together mediate CST-dependent recruitment of Polα/primase to telomeres. Functional analyses reveal that disruption of the CST-Polα/primase interaction shows distinct telomere phenotypes compared to CST disassembly, supporting the model that CST recruits Polα/primase after telomerase elongation is terminated. Together, our findings not only resolve the longstanding question on the assembly mechanism of the CST and Polα/primase complexes at yeast telomeres, but also hint that CST-Polα/primase-dependent C-strand fill-in likely governs recombination-based telomere structure maintenance via controlling 3’ overhang length.

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Journal
Communications Biology
Published
2026-09-04
DOI
https://doi.org/10.1038/s42003-026-10841-5
Primary Topic
Telomeres, Telomerase, and Senescence
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article
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Molecular insights into assembly of the yeast CST-Polα/primase complex for telomere maintenance

Zhenfang Wu, Ming Lei, Lin Zha, Xiaohui Wang et al.
Communications Biology
Telomeres, Telomerase, and Senescence
article

Molecular insights into assembly of the yeast CST-Polα/primase complex for telomere maintenance

Zhenfang Wu, Ming Lei, Lin Zha, Xiaohui Wang, Futang Wan, Wenjuan Zhu, Yinghui Wu, Yingqi He
article en

Abstract

Telomeric DNA replication involves coordinated action of telomerase and DNA polymerase α-primase (Polα/primase), which synthesize the G-strand and C-strand, respectively. The conserved Cdc13-Stn1-Ten1 (CST) complex critically regulates this process by both terminating telomerase activity and stimulating Polα/primase. While telomerase-mediated G-overhang synthesis is well studied, how CST-Polα/primase is recruited to telomeres for C-strand fill-in remains poorly understood. Structural analysis reveals an evolutionary diversity of CST interaction with Polα/primase across organisms. Here, using a combination of AlphaFold3 structural modeling with genetic assays, we unveil the assembly mechanism of CST-Polα/primase for telomere maintenance in Saccharomyces cerevisiae . We structurally characterize the uniqueness and specific determinants of the Stn1-Pol12 interaction in the S. cerevisiae CST-Polα/primase complex. The Cdc13-Pol1 and Stn1-Pol12 interactions together mediate CST-dependent recruitment of Polα/primase to telomeres. Functional analyses reveal that disruption of the CST-Polα/primase interaction shows distinct telomere phenotypes compared to CST disassembly, supporting the model that CST recruits Polα/primase after telomerase elongation is terminated. Together, our findings not only resolve the longstanding question on the assembly mechanism of the CST and Polα/primase complexes at yeast telomeres, but also hint that CST-Polα/primase-dependent C-strand fill-in likely governs recombination-based telomere structure maintenance via controlling 3’ overhang length.

Communications Biology
Qingdao University (CN), Shanghai Jiao Tong University (CN), Shanghai Ninth People's Hospital (CN), Affiliated Hospital of Qingdao University (CN), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 11%
Telomeres, Telomerase, and Senescence
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