Dissection of Functional Domains of Orc1-2, the Archaeal Global DNA Damage-Responsive Regulator

Int J Mol Sci. 2022 Nov 23;23(23):14609. doi: 10.3390/ijms232314609.

Abstract

Orc1-2 is a non-initiator ortholog of archaeal/eukaryotic Orc1 proteins, which functions as a global regulator in DNA damage-responsive (DDR) expression. As for Orc1 initiators, the DDR regulator harbors an AAA+ ATPase domain, an Initiator-Specific Motif (ISM) and a winged-helix (wH) DNA-binding domain, which are also organized in a similar fashion. To investigate how Orc1-2 mediates the DDR regulation, the orc1-2 mutants inactivating each of these functional domains were constructed with Saccharolobus islandicus and genetically characterized. We found that disruption of each functional domain completely abolished the DDR regulation in these orc1-2 mutants. Strikingly, inactivation of ATP hydrolysis of Orc1-2 rendered an inviable mutant. However, the cell lethality can be suppressed by the deficiency of the DNA binding in the same protein, and it occurs independent of any DNA damage signal. Mutant Orc1-2 proteins were then obtained and investigated for DNA-binding in vitro. This revealed that both the AAA+ ATPase and the wH domains are involved in DNA-binding, where ISM and R381R383 in wH are responsible for specific DNA binding. We further show that Orc1-2 regulation occurs in two distinct steps: (a) eliciting cell division inhibition at a low Orc1-2 content, and this regulation is switched on by ATP binding and turned off by ATP hydrolysis; any failure in turning off the regulation leads to growth inhibition and cell death; (b) activation of the expression of DDR gene encoding DNA repair proteins at an elevated level of Orc1-2.

Keywords: AAA+ ATPase; DNA damage response; archaea; global regulator; origin recognition complex; winged-helix domain.

MeSH terms

  • ATPases Associated with Diverse Cellular Activities / metabolism
  • Adenosine Triphosphate / metabolism
  • Archaeal Proteins* / metabolism
  • DNA Damage / genetics
  • DNA, Archaeal / metabolism
  • Origin Recognition Complex / genetics
  • Origin Recognition Complex / metabolism
  • Protein Binding

Substances

  • DNA, Archaeal
  • Archaeal Proteins
  • Origin Recognition Complex
  • Adenosine Triphosphate
  • ATPases Associated with Diverse Cellular Activities