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Schüler, H.

Publications and source records attributed to Schüler, H..

2 recordsLinked to original sources

Symmetry of loop extrusion by dimeric SMC complexes is DNA-tension-dependent

Structural maintenance of chromosome (SMC) complexes organize and regulate genomes by extruding DNA loops. During loop extrusion, DNA can be reeled into the growing loop from one or both sides, generating distinct extrusion directionality states whose physical basis remains unclear. Here, we combine single-molecule analysis and molecular dynamics simulations to investigate loop extrusion directionality across SMC complexes. We show that dimeric Smc5/6 and Wadjet predominantly perform two-sided loop extrusion during initial loop growth, whereas monomeric condensin exhibits one-sided extrusion, consistent with a relationship between stoichiometry and extrusion directionality. Surprisingly, however, cohesin predominantly exhibits one-sided extrusion despite functioning as a dimeric complex. Notably, dimeric Smc5/6 and Wadjet progressively transition from two-sided to one-sided extrusion as loop growth matures. Simulations and force-dependent analysis reveal that loop extrusion directionality is governed by a tension-dependent transition in dimeric motors. Increasing DNA tension erodes two-sided extrusion near the motor stalling force, driving a tug-of-war regime in which competing motors transiently dominate one another. This transition promotes one-sided extrusion during mature Smc5/6 and Wadjet-mediated loop extrusion and places cohesin, which has a comparatively low stalling force ([~]0.1 pN), constitutively near this regime. Together, our findings establish loop extrusion directionality as a dynamic emergent property governed by SMC stoichiometry, DNA tension, and stochastic motor competition.

biophysics↗

PARP14 is a PARP with both ADP-ribosyl transferase and hydrolase activities

PARP14 is a mono-ADP-ribosyl transferase involved in the control of immunity, transcription and DNA replication stress management. However, little is known about the ADP-ribosylation activity of PARP14, including its substrate specificity or how PARP14-dependent ADP-ribosylation is reversed. Here we show that PARP14 is dual function enzyme with both ADP-ribosyl transferase and hydrolase activity acting on both protein and nucleic acid substrates. In particular, we show that the PARP14 macrodomain 1 is an active ADP-ribosyl hydrolase. We also demonstrate hydrolytic activity for the first macrodomain of PARP9. We reveal that expression of a PARP14 mutant with the inactivated macrodomain 1 results in a dramatic increase in mono(ADP-ribosyl)ation of proteins in human cells, including PARP14 itself and antiviral PARP13. Moreover, we demonstrate that the closely related hydrolytically active macrodomain of SARS2 Nsp3, Mac1, efficiently reverses PARP14 ADP-ribosylation in vitro and in cells, supporting the evolution of viral macrodomains to counteract PARP14-mediated antiviral response. TeaserPARP14 is an antiviral PARP that combines ADP-ribosylation writer, reader and eraser functions in one polypeptide.

cell biology↗