Replisome-cohesin interactions provided by the Tof1-Csm3 and Mrc1 cohesion establishment factors

Sudikchya Shrestha, Masashi Minamino, Zhuo A. Chen, Céline Bouchoux, Juri Rappsilber, Frank Uhlmann*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The chromosomal cohesin complex establishes sister chromatid cohesion during S phase, which forms the basis for faithful segregation of DNA replication products during cell divisions. Cohesion establishment is defective in the absence of either of three non-essential Saccharomyces cerevisiae replication fork components Tof1-Csm3 and Mrc1. Here, we investigate how these conserved factors contribute to cohesion establishment. Tof1-Csm3 and Mrc1 serve known roles during DNA replication, including replication checkpoint signaling, securing replication fork speed, as well as recruiting topoisomerase I and the histone chaperone FACT. By modulating each of these functions independently, we rule out that one of these known replication roles explains the contribution of Tof1-Csm3 and Mrc1 to cohesion establishment. Instead, using purified components, we reveal direct and multipronged protein interactions of Tof1-Csm3 and Mrc1 with the cohesin complex. Our findings open the possibility that a series of physical interactions between replication fork components and cohesin facilitate successful establishment of sister chromatid cohesion during DNA replication.

Original languageEnglish
Pages (from-to)117-135
Number of pages19
JournalChromosoma
Volume132
Issue number2
Early online date11 May 2023
DOIs
Publication statusPublished - 1 Jun 2023

Keywords / Materials (for Non-textual outputs)

  • cohesin
  • DNA replication
  • Mrc1
  • S. cerevisiae
  • sister chromatid cohesion
  • Tof1-Csm3

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