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Biology subjects

Cai, S. W.

Publications and source records attributed to Cai, S. W..

3 recordsLinked to original sources

Tetrameric TRF2 forms t-loop to protect telomeres from ATM signaling and cNHEJ

Telomeres often occur in the t-loop structure, formed through the base-pairing of the 3 telomeric overhang is base-paired with more internal telomeric DNA. T-loops are proposed to avert ATM kinase signaling and classical non-homologous end joining (cNHEJ) by sequestering the telomere end. The shelterin subunit TRF2 is required for t-loop formation but how it generates t-loops is not known and the t-loop model for telomere protection remains untested. We show that TRF2 binds telomeric DNA as a tetramer using two dimerization domains and that tetramerization is critical for telomere protection. Furthermore, TRF1, the TRF2 paralog that binds DNA as a dimer and does not form t-loops, gained the ability to form t-loops in vivo upon its tetramerization through the addition of a second dimerization domain. We propose that TRF2 tetramers loop telomeric DNA, resulting in torsional stress and opening of the helix, which is a requirement for t-loop formation. Importantly, t-loops formed by tetrameric TRF1 were sufficient to avert ATM signaling and blocked most cNHEJ at telomeres, demonstrating that t-loops per se protect telomeres from these threats.

cell biology↗

Structural basis of CST-Polα/Primase recruitment and regulation by POT1 at telomeres

Telomere maintenance requires extension of the G-rich telomeric repeat strand by telomerase and fill-in synthesis of the C-rich strand by Pol/Primase. Telomeric Pol/Primase is bound to Ctc1-Stn1-Ten1 (CST), a single-stranded DNA-binding complex. Like mutations in telomerase, mutations affecting CST-Pol/Primase result in pathological telomere shortening and cause a telomere biology disorder, Coats plus (CP). We determined cryogenic electron microscopy structures of human CST bound to the shelterin heterodimer POT1/TPP1 that reveal how CST is recruited to telomeres by POT1. Phosphorylation of POT1 is required for CST recruitment, and the complex is formed through conserved interactions involving several residues mutated in CP. Our structural and biochemical data suggest that phosphorylated POT1 holds CST-Pol/Primase in an inactive auto-inhibited state until telomerase has extended the telomere ends. We propose that dephosphorylation of POT1 releases CST-Pol/Primase into an active state that completes telomere replication through fill-in synthesis.

biophysics↗

Cryo-EM structure of the human CST·Polα/Primase complex in a recruitment state

The CST*Pol/Primase complex is essential for telomere overhang maintenance and additionally functions to counteract resection at double-strand breaks. We report a 4.6-[A] resolution cryo-EM structure of CST*Pol/Primase, captured prior to catalysis in a recruitment state, which provides insights into the architecture and stoichiometry of the fill-in machinery. Our model informs on human disease mutations that cause Coats plus syndrome.

biochemistry↗