Structural and functional studies of the rat mitochondrial single strand DNA binding protein P16

G D Hoke1, P A Pavco, B J Ledwith

  • 1Department of Biochemistry and Molecular Biophysics, Virginia Commonwealth University, Richmond 23298.

Insights

Rat mitochondrial single-strand DNA binding protein P16 binds preferentially to single-stranded DNA, influencing DNA polymerase and primase activity. Its DNA-binding domain is located in the N-terminal region.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Genetics

Background:

  • Mitochondrial DNA replication requires specialized proteins, including single-strand DNA binding proteins (SSBs), to maintain genome stability.
  • Rat mitochondrial SSB P16 is a key protein involved in these processes.

Purpose of the Study:

  • To characterize the DNA binding properties and functional effects of rat mitochondrial SSB P16.
  • To identify the DNA binding domain and compare its sequence to other SSBs.

Main Methods:

  • Protein purification using single-strand DNA agarose chromatography.
  • Fluorescence quench titrations to determine binding site size and affinity.
  • DNA binding preference assays using various nucleic acid substrates.
  • Enzyme activity assays with DNA polymerase, primase, and DNA renaturation.
  • Amino-terminal sequencing and protease digestion to map the DNA-binding domain.

Main Results:

  • P16 binds to single-stranded DNA with a site size of 8-9 nucleotides and an affinity of approximately 10(7) M-1.
  • P16 shows preference for single-stranded DNA (poly(dT), poly(dC)) over double-stranded DNA.
  • P16 inhibits DNA renaturation but does not destabilize double helices.
  • P16 enhances mitochondrial DNA polymerase and E. coli DNA polymerase I activity but inhibits mitochondrial DNA primase.
  • The DNA-binding domain is located in the N-terminal third of P16 and shares sequence similarity with other SSBs.

Conclusions:

  • Rat mitochondrial SSB P16 is a high-affinity single-stranded DNA binder with regulatory roles in DNA replication.
  • Its N-terminal domain is crucial for DNA binding and exhibits evolutionary conservation.
  • P16 differentially regulates mitochondrial DNA polymerase and primase activities, impacting replication fidelity and processivity.

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