Literature DB >> 21686050

Scaling of Linking and Writhing Numbers for Spherically Confined and Topologically Equilibrated Flexible Polymers.

John F Marko1.   

Abstract

Scaling laws for Gauss linking number Ca and writhing number Wr for spherically confined flexible polymers with thermally fluctuating topology are analyzed. For ideal (phantom) polymers each of N segments of length unity confined to a spherical pore of radius R there are two scaling regimes: for sufficiently weak confinement (R ⪢ N(1/3)) each chain has |Wr| ≈ N(1/2), and each pair of chains has average |Ca| ≈ N/R(3/2); alternately for sufficiently tight confinement (N(1/3) ⪢ R), |Wr| ≈ |CA| ≈ N/R(3/2). Adding segment-segment avoidance modifies this result: for n chains with excluded volume interactions |Ca| ≈ (N/n)(1/2)f(ϕ) where f is a scaling function that depends approximately linearly on the segment concentration ϕ = nN/R(3). Scaling results for writhe are used to estimate the maximum writhe of a polymer; this is demonstrated to be realizable through a writhing instability that occurs for a polymer which is able to change knotting topology and which is subject to an applied torque. Finally, scaling results for linking are used to estimate bounds on the entanglement complexity of long chromosomal DNA molecules inside cells, and to show how "lengthwise" chromosome condensation can suppress DNA entanglement.

Entities:  

Year:  2011        PMID: 21686050      PMCID: PMC3115200          DOI: 10.1007/s10955-011-0172-4

Source DB:  PubMed          Journal:  J Stat Phys        ISSN: 0022-4715            Impact factor:   1.548


  29 in total

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Authors:  A I Alexandrov; N R Cozzarelli; V F Holmes; A B Khodursky; B J Peter; L Postow; V Rybenkov; A V Vologodskii
Journal:  Genetica       Date:  1999       Impact factor: 1.082

2.  Chromosome assembly in vitro: topoisomerase II is required for condensation.

Authors:  Y Adachi; M Luke; U K Laemmli
Journal:  Cell       Date:  1991-01-11       Impact factor: 41.582

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Review 4.  Moving one DNA double helix through another by a type II DNA topoisomerase: the story of a simple molecular machine.

Authors:  J C Wang
Journal:  Q Rev Biophys       Date:  1998-05       Impact factor: 5.318

5.  Topoisomerase II inhibitors affect entry into mitosis and chromosome condensation in BHK cells.

Authors:  H Anderson; M Roberge
Journal:  Cell Growth Differ       Date:  1996-01

6.  Entropy-driven spatial organization of highly confined polymers: lessons for the bacterial chromosome.

Authors:  Suckjoon Jun; Bela Mulder
Journal:  Proc Natl Acad Sci U S A       Date:  2006-08-02       Impact factor: 11.205

Review 7.  Biochemical and genetic dissection of mitotic chromosome condensation.

Authors:  T Hirano
Journal:  Trends Biochem Sci       Date:  1995-09       Impact factor: 13.807

8.  DNA topoisomerase II is required for condensation and separation of mitotic chromosomes in S. pombe.

Authors:  T Uemura; H Ohkura; Y Adachi; K Morino; K Shiozaki; M Yanagida
Journal:  Cell       Date:  1987-09-11       Impact factor: 41.582

Review 9.  Entropy as the driver of chromosome segregation.

Authors:  Suckjoon Jun; Andrew Wright
Journal:  Nat Rev Microbiol       Date:  2010-08       Impact factor: 60.633

10.  Polymer models of meiotic and mitotic chromosomes.

Authors:  J F Marko; E D Siggia
Journal:  Mol Biol Cell       Date:  1997-11       Impact factor: 4.138

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  11 in total

1.  DNA-segment-capture model for loop extrusion by structural maintenance of chromosome (SMC) protein complexes.

Authors:  John F Marko; Paolo De Los Rios; Alessandro Barducci; Stephan Gruber
Journal:  Nucleic Acids Res       Date:  2019-07-26       Impact factor: 16.971

2.  Chromosome disentanglement driven via optimal compaction of loop-extruded brush structures.

Authors:  Sumitabha Brahmachari; John F Marko
Journal:  Proc Natl Acad Sci U S A       Date:  2019-11-22       Impact factor: 11.205

3.  Bacterial Nucleoid: Interplay of DNA Demixing and Supercoiling.

Authors:  Marc Joyeux
Journal:  Biophys J       Date:  2019-09-26       Impact factor: 4.033

4.  Membrane protein expression triggers chromosomal locus repositioning in bacteria.

Authors:  Elizabeth A Libby; Manuela Roggiani; Mark Goulian
Journal:  Proc Natl Acad Sci U S A       Date:  2012-04-23       Impact factor: 11.205

5.  Biophysics of protein-DNA interactions and chromosome organization.

Authors:  John F Marko
Journal:  Physica A       Date:  2015-01-15       Impact factor: 3.263

6.  Condensin controls mitotic chromosome stiffness and stability without forming a structurally contiguous scaffold.

Authors:  Mingxuan Sun; Ronald Biggs; Jessica Hornick; John F Marko
Journal:  Chromosome Res       Date:  2018-08-24       Impact factor: 5.239

7.  Variation of the folding and dynamics of the Escherichia coli chromosome with growth conditions.

Authors:  Nastaran Hadizadeh Yazdi; Calin C Guet; Reid C Johnson; John F Marko
Journal:  Mol Microbiol       Date:  2012-12       Impact factor: 3.501

Review 8.  DNA Mechanics and Topology.

Authors:  Sumitabha Brahmachari; John F Marko
Journal:  Adv Exp Med Biol       Date:  2018       Impact factor: 2.622

9.  Self-organization of domain structures by DNA-loop-extruding enzymes.

Authors:  Elnaz Alipour; John F Marko
Journal:  Nucleic Acids Res       Date:  2012-10-15       Impact factor: 16.971

10.  Compaction and segregation of sister chromatids via active loop extrusion.

Authors:  Anton Goloborodko; Maxim V Imakaev; John F Marko; Leonid Mirny
Journal:  Elife       Date:  2016-05-18       Impact factor: 8.140

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