A direct protein bridge connects the ds and ds-ss junction telomeric DNA segments in C. elegans

The six-protein shelterin complex safeguards mammalian chromosome ends; however, its intricate protein-protein and protein-DNA interactions complicate biochemical dissection. The C. elegans DNA binding TEBP-1/2 (also known as DTN-1/2) and POT-1 proteins directly interact, offering a simplified system to dissect chromosome end protection. Here, we combined protein crystallography with in vivo functional analyses to elucidate the architecture and assembly of the C. elegans telomere-binding protein complex. We uncover a notable interface in which the canonical single-stranded DNA binding OB domain of POT-1 is repurposed to engage TEBP-1/2, rewiring telomeric protein connectivity. Disruption of the electrostatic interfaces between POT-1 and TEBP-1/2 disassembles the complex in vivo and causes telomere hyperelongation. POT-1 OB retains binding to the 5′-phosphorylated end of the telomeric ds-ssDNA junction, a role required for robust telomeric localization of POT-1 and suppression of telomere hyperelongation in vivo. Together, our findings support a model in which TEBP-1/2 recruit POT-1 to form a three-way TEBP-1/2–POT-1–DNA junction complex that ensures telomere length homeostasis.

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Publication Details

Journal
Science Advances
Published
2026-09-09
DOI
https://doi.org/10.1126/sciadv.aeg8967
Primary Topic
DNA Repair Mechanisms
Type
article
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article

A direct protein bridge connects the ds and ds-ss junction telomeric DNA segments in C. elegans

Hiroki Shibuya, Valerie M. Tesmer, Nils J. Lambacher, Jayakrishnan Nandakumar et al.
Science Advances
DNA Repair Mechanisms
article

A direct protein bridge connects the ds and ds-ss junction telomeric DNA segments in C. elegans

Hiroki Shibuya, Valerie M. Tesmer, Nils J. Lambacher, Jayakrishnan Nandakumar, Io Yamamoto
article en

Abstract

The six-protein shelterin complex safeguards mammalian chromosome ends; however, its intricate protein-protein and protein-DNA interactions complicate biochemical dissection. The C. elegans DNA binding TEBP-1/2 (also known as DTN-1/2) and POT-1 proteins directly interact, offering a simplified system to dissect chromosome end protection. Here, we combined protein crystallography with in vivo functional analyses to elucidate the architecture and assembly of the C. elegans telomere-binding protein complex. We uncover a notable interface in which the canonical single-stranded DNA binding OB domain of POT-1 is repurposed to engage TEBP-1/2, rewiring telomeric protein connectivity. Disruption of the electrostatic interfaces between POT-1 and TEBP-1/2 disassembles the complex in vivo and causes telomere hyperelongation. POT-1 OB retains binding to the 5′-phosphorylated end of the telomeric ds-ssDNA junction, a role required for robust telomeric localization of POT-1 and suppression of telomere hyperelongation in vivo. Together, our findings support a model in which TEBP-1/2 recruit POT-1 to form a three-way TEBP-1/2–POT-1–DNA junction complex that ensures telomere length homeostasis.

Science AdvancesVol. 12(37)
University of Michigan (US), RIKEN Center for Biosystems Dynamics Research (JP), University of Gothenburg (SE), The University of Osaka (JP)
Life in Land
Openalex Percentile: Top 17%
DNA Repair Mechanisms
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