Chromatin Architectural Factors as Safeguards against Excessive Supercoiling during DNA Replication

Int J Mol Sci. 2020 Jun 24;21(12):4504. doi: 10.3390/ijms21124504.

Abstract

Key DNA transactions, such as genome replication and transcription, rely on the speedy translocation of specialized protein complexes along a double-stranded, right-handed helical template. Physical tethering of these molecular machines during translocation, in conjunction with their internal architectural features, generates DNA topological strain in the form of template supercoiling. It is known that the build-up of transient excessive supercoiling poses severe threats to genome function and stability and that highly specialized enzymes-the topoisomerases (TOP)-have evolved to mitigate these threats. Furthermore, due to their intracellular abundance and fast supercoil relaxation rates, it is generally assumed that these enzymes are sufficient in coping with genome-wide bursts of excessive supercoiling. However, the recent discoveries of chromatin architectural factors that play important accessory functions have cast reasonable doubts on this concept. Here, we reviewed the background of these new findings and described emerging models of how these accessory factors contribute to supercoil homeostasis. We focused on DNA replication and the generation of positive (+) supercoiling in front of replisomes, where two accessory factors-GapR and HMGA2-from pro- and eukaryotic cells, respectively, appear to play important roles as sinks for excessive (+) supercoiling by employing a combination of supercoil constrainment and activation of topoisomerases. Looking forward, we expect that additional factors will be identified in the future as part of an expanding cellular repertoire to cope with bursts of topological strain. Furthermore, identifying antagonists that target these accessory factors and work synergistically with clinically relevant topoisomerase inhibitors could become an interesting novel strategy, leading to improved treatment outcomes.

Keywords: DNA topological strain; DNA/chromatin supercoiling; GapR; HMGA2; chromatin architectural factors; replication stress; topoisomerases.

Publication types

  • Review

MeSH terms

  • Animals
  • Chromatin / chemistry*
  • Chromatin / genetics*
  • DNA Replication*
  • DNA Topoisomerases, Type I / metabolism
  • DNA Topoisomerases, Type II / metabolism
  • DNA, Superhelical*
  • Gene Expression Regulation*
  • HMGA2 Protein / metabolism
  • Humans
  • Transcription, Genetic*

Substances

  • Chromatin
  • DNA, Superhelical
  • HMGA2 Protein
  • DNA Topoisomerases, Type I
  • DNA Topoisomerases, Type II