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A second hybrid-binding domain modulates the activity of Drosophila ribonuclease H1

  • Jose M. González de Cózar
  • , Maria Carretero-Junquera
  • , Grzegorz L. Ciesielski
  • , Sini M. Miettinen
  • , Markku Varjosalo
  • , Laurie S. Kaguni
  • , Eric Dufour
  • , Howard T. Jacobs

    Research output: Contribution to journalArticleScientificpeer-review

    2 Citations (Scopus)
    38 Downloads (Pure)

    Abstract

    In eukaryotes, ribonuclease H1 (RNase H1) is involved in the processing and removal of RNA/DNA hybrids in both nuclear and mitochondrial DNA. The enzyme comprises a C-terminal catalytic domain and an N-terminal hybrid-binding domain (HBD), separated by a linker of variable length, 115 amino acids in Drosophila melanogaster (Dm). Molecular modelling predicted this extended linker to fold into a structure similar to the conserved HBD. Based on a deletion series, both the catalytic domain and the conserved HBD were required for high-affinity binding to heteroduplex substrates, while loss of the novel HBD led to an ∼90% drop in Kcat with a decreased KM, and a large increase in the stability of the RNA/DNA hybrid-enzyme complex, supporting a bipartite-binding model in which the second HBD facilitates processivity. Shotgun proteomics following in vivo cross-linking identified single-stranded DNA-binding proteins from both nuclear and mitochondrial compartments, respectively RpA-70 and mtSSB, as prominent interaction partners of Dm RNase H1. However, we were not able to document direct and stable interactions with mtSSB when the proteins were co-overexpressed in S2 cells, and functional interactions between them in vitro were minor.

    Original languageEnglish
    Pages (from-to)515-533
    Number of pages19
    JournalJournal of Biochemistry
    Volume168
    Issue number5
    DOIs
    Publication statusPublished - 1 Nov 2020
    Publication typeA1 Journal article-refereed

    Keywords

    • biolayer interferometry
    • mitochondria
    • ribonuclease H
    • shotgun proteomics
    • single-stranded DNA-binding protein

    Publication forum classification

    • Publication forum level 1

    ASJC Scopus subject areas

    • Biochemistry
    • Molecular Biology

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