Literature DB >> 34259632

Folding of cohesin's coiled coil is important for Scc2/4-induced association with chromosomes.

Naomi J Petela1, Andres Gonzalez Llamazares2, Sarah Dixon1, Bin Hu3, Byung-Gil Lee2, Jean Metson1, Heekyo Seo4, Antonio Ferrer-Harding1, Menelaos Voulgaris1, Thomas Gligoris1, James Collier1, Byung-Ha Oh4, Jan Löwe2, Kim A Nasmyth1.   

Abstract

Cohesin's association with and translocation along chromosomal DNAs depend on an ATP hydrolysis cycle driving the association and subsequent release of DNA. This involves DNA being 'clamped' by Scc2 and ATP-dependent engagement of cohesin's Smc1 and Smc3 head domains. Scc2's replacement by Pds5 abrogates cohesin's ATPase and has an important role in halting DNA loop extrusion. The ATPase domains of all SMC proteins are separated from their hinge dimerisation domains by 50-nm-long coiled coils, which have been observed to zip up along their entire length and fold around an elbow, thereby greatly shortening the distance between hinges and ATPase heads. Whether folding exists in vivo or has any physiological importance is not known. We present here a cryo-EM structure of the apo form of cohesin that reveals the structure of folded and zipped-up coils in unprecedented detail and shows that Scc2 can associate with Smc1's ATPase head even when it is fully disengaged from that of Smc3. Using cysteine-specific crosslinking, we show that cohesin's coiled coils are frequently folded in vivo, including when cohesin holds sister chromatids together. Moreover, we describe a mutation (SMC1D588Y) within Smc1's hinge that alters how Scc2 and Pds5 interact with Smc1's hinge and that enables Scc2 to support loading in the absence of its normal partner Scc4. The mutant phenotype of loading without Scc4 is only explicable if loading depends on an association between Scc2/4 and cohesin's hinge, which in turn requires coiled coil folding.
© 2021, Petela et al.

Entities:  

Keywords:  S. cerevisiae; chromosomes; cryo-em; folding; gene expression; molecular biophysics; sister chromatid cohesion; structural biology

Mesh:

Substances:

Year:  2021        PMID: 34259632      PMCID: PMC8279761          DOI: 10.7554/eLife.67268

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


  67 in total

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2.  Fast gapped-read alignment with Bowtie 2.

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3.  DNA loop extrusion by human cohesin.

Authors:  Iain F Davidson; Benedikt Bauer; Daniela Goetz; Wen Tang; Gordana Wutz; Jan-Michael Peters
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Review 4.  Molecular genetics of yeast mating type.

Authors:  K A Nasmyth
Journal:  Annu Rev Genet       Date:  1982       Impact factor: 16.830

5.  A positively charged channel within the Smc1/Smc3 hinge required for sister chromatid cohesion.

Authors:  Alexander Kurze; Katharine A Michie; Sarah E Dixon; Ajay Mishra; Takehiko Itoh; Syma Khalid; Lana Strmecki; Katsuhiko Shirahige; Christian H Haering; Jan Löwe; Kim Nasmyth
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Journal:  Mol Syst Biol       Date:  2011-10-11       Impact factor: 11.429

7.  DNA Entry into and Exit out of the Cohesin Ring by an Interlocking Gate Mechanism.

Authors:  Yasuto Murayama; Frank Uhlmann
Journal:  Cell       Date:  2015-12-17       Impact factor: 41.582

8.  Sister DNA Entrapment between Juxtaposed Smc Heads and Kleisin of the Cohesin Complex.

Authors:  Christophe Chapard; Robert Jones; Till van Oepen; Johanna C Scheinost; Kim Nasmyth
Journal:  Mol Cell       Date:  2019-06-11       Impact factor: 17.970

9.  Scc2 Is a Potent Activator of Cohesin's ATPase that Promotes Loading by Binding Scc1 without Pds5.

Authors:  Naomi J Petela; Thomas G Gligoris; Jean Metson; Byung-Gil Lee; Menelaos Voulgaris; Bin Hu; Sotaro Kikuchi; Christophe Chapard; Wentao Chen; Eeson Rajendra; Madhusudhan Srinivisan; Hongtao Yu; Jan Löwe; Kim A Nasmyth
Journal:  Mol Cell       Date:  2018-06-21       Impact factor: 17.970

10.  The Cohesin Ring Uses Its Hinge to Organize DNA Using Non-topological as well as Topological Mechanisms.

Authors:  Madhusudhan Srinivasan; Johanna C Scheinost; Naomi J Petela; Thomas G Gligoris; Maria Wissler; Sugako Ogushi; James E Collier; Menelaos Voulgaris; Alexander Kurze; Kok-Lung Chan; Bin Hu; Vincenzo Costanzo; Kim A Nasmyth
Journal:  Cell       Date:  2018-05-10       Impact factor: 41.582

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  9 in total

1.  Cohesin mediates DNA loop extrusion by a "swing and clamp" mechanism.

Authors:  Benedikt W Bauer; Iain F Davidson; Daniel Canena; Gordana Wutz; Wen Tang; Gabriele Litos; Sabrina Horn; Peter Hinterdorfer; Jan-Michael Peters
Journal:  Cell       Date:  2021-10-07       Impact factor: 41.582

2.  DNA tension-modulated translocation and loop extrusion by SMC complexes revealed by molecular dynamics simulations.

Authors:  Stefanos K Nomidis; Enrico Carlon; Stephan Gruber; John F Marko
Journal:  Nucleic Acids Res       Date:  2022-05-20       Impact factor: 19.160

3.  Single amino acid substitutions in hydrophobic cores at a head-coiled coil junction region of cohesin facilitate its release of DNA during anaphase.

Authors:  Xingya Xu; Ryuta Kanai; Li Wang; Mitsuhiro Yanagida
Journal:  Open Biol       Date:  2022-04-27       Impact factor: 7.124

4.  Cryo-EM structure of DNA-bound Smc5/6 reveals DNA clamping enabled by multi-subunit conformational changes.

Authors:  You Yu; Shibai Li; Zheng Ser; Huihui Kuang; Thane Than; Danying Guan; Xiaolan Zhao; Dinshaw J Patel
Journal:  Proc Natl Acad Sci U S A       Date:  2022-06-01       Impact factor: 12.779

5.  Cohesin ATPase activities regulate DNA binding and coiled-coil configuration.

Authors:  Xingya Xu; Ryuta Kanai; Li Wang; Mitsuhiro Yanagida
Journal:  Proc Natl Acad Sci U S A       Date:  2022-08-08       Impact factor: 12.779

6.  PDS5A and PDS5B differentially affect gene expression without altering cohesin localization across the genome.

Authors:  Nicole L Arruda; Audra F Bryan; Jill M Dowen
Journal:  Epigenetics Chromatin       Date:  2022-08-19       Impact factor: 5.465

7.  Coiled-coil structure of meiosis protein TEX12 and conformational regulation by its C-terminal tip.

Authors:  James M Dunce; Lucy J Salmon; Owen R Davies
Journal:  Commun Biol       Date:  2022-09-07

8.  Cryo-EM structure of the Smc5/6 holo-complex.

Authors:  Stephen T Hallett; Isabella Campbell Harry; Pascale Schellenberger; Lihong Zhou; Nora B Cronin; Jonathan Baxter; Thomas J Etheridge; Johanne M Murray; Antony W Oliver
Journal:  Nucleic Acids Res       Date:  2022-08-22       Impact factor: 19.160

9.  The cohesin acetylation cycle controls chromatin loop length through a PDS5A brake mechanism.

Authors:  Démi van Gent; Ángela Sedeño Cacciatore; Marjon S van Ruiten; Astrid Fauster; Laureen Willems; Maarten L Hekkelman; Liesbeth Hoekman; Maarten Altelaar; Judith H I Haarhuis; Thijn R Brummelkamp; Elzo de Wit; Benjamin D Rowland
Journal:  Nat Struct Mol Biol       Date:  2022-06-16       Impact factor: 18.361

  9 in total

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