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Biology subjects

Litos, G.

Publications and source records attributed to Litos, G..

3 recordsLinked to original sources

Two CTCF motifs impede cohesin-mediated DNA loop extrusion

Cohesin extrudes DNA into loops and is positioned along the genome by stalling at CTCF upon encountering its N-terminal region (NTR). The mechanism underlying this stalling, however, is unresolved. Using single-molecule assays that monitor DNA loop extrusion (LE) in the presence of NTR fragments, we identify two amino acid motifs, YDF and KTYQR, that hinder LE. KTYQR is found to fully impede LE activity, while YDF hinders cohesin to complete LE step cycles and converts cohesin into a unidirectional extruder by strengthening the affinity of STAG1 to DNA. We thus identify two distinct NTR motifs that stall LE via different yet synergistic mechanisms, highlighting the multifaceted ways employed by CTCF to modulate LE to shape and regulate genomes. One-Sentence SummaryThe N-terminus of CTCF employs two independent motifs that synergistically stall cohesin-mediated DNA loop extrusion.

biophysics↗

NIPBL and STAG1 enable loop extrusion by providing differential DNA-cohesin affinity

DNA loop extrusion by cohesin has emerged as a critical pathway for chromosome organization. In vitro single-molecule experiments indicate that loop extrusion requires the assembly of an heteropentameric complex consisting of the SMC1/SMC3 heterodimer, STAG1, NIPBL and the kleisin SCC1. The multimeric nature of this complex and regulatoin of its dynamic DNA interactions that are modulated by ATP binding-hydrolysis cycles make it challenging to reveal the molecular mechanism of loop extrusion. Here, we use mass photometry to quantify the key interactions responsible for cohesin assembly, DNA binding, and their modulation by ATP binding and hydrolysis. We find that STAG1 binds tightly to the trimeric complex formed by the SMC1/SMC3 heterodimer and SCC1, creating a DNA binding site whose strength is modulated by the presence of ATP. NIPBL binds strongly to both DNA and the STAG1-tetramer, enabling assembly of the holoenzyme in the absence of DNA or ATP. Taken together, these results suggest that NIPBL acts as a DNA anchor, while a dynamic STAG1-Trimer binding site drives DNA loop formation.

biophysics↗

Cohesin mediates DNA loop extrusion and sister chromatid cohesion by distinct mechanisms

Cohesin connects CTCF binding sites and other genomic loci in cis to form chromatin loops, and replicated DNA molecules in trans to mediate sister chromatid cohesion. Whether cohesin uses distinct or related mechanisms to perform these functions is unknown. Here we describe a cohesin hinge mutant, which can extrude DNA into loops but is unable to mediate cohesion. Our results suggest that the latter defect arises during cohesion establishment. The observation that cohesins cohesion and loop extrusion activities can be separated indicates that cohesin uses distinct mechanisms to perform these two functions. Unexpectedly, the same hinge mutant can also not be stopped by CTCF boundaries as well as wildtype cohesin. This suggests that cohesion establishment and cohesins interaction with CTCF boundaries depend on related mechanisms and raises the possibility that both require transient hinge opening to entrap DNA inside the cohesin ring.

cell biology↗