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Published on: June 25, 2013
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.
Abstract:
The rat mitochondrial single strand DNA binding protein (SSB) P16 was purified to apparent homogeneity by elution from single strand DNA agarose with ethidium bromide. Each monomer of P16 contains two tryptophan residues, and the intrinsic fluorescence from these residues is quenched upon binding to single strand polynucleotides. From fluorescence quench titrations of ligand to fixed amounts of DNA lattice, a binding site size of 8 or 9 nucleotides per P16 monomer was found. Measurement of the affinity of P16 for isolated sites by titration with either oligo(dT)8 or 5'-dephosphorylated oligo(dT)8 indicated values on the order of 10(7) M-1. P16 exhibited a binding preference for single strand DNA, poly(dT), and poly(dC) in comparison to double strand DNA, poly(U), or poly[d(A-T)]. Although it was not possible to show that P16 destabilizes double helical DNA or even poly[d(A-T)], binding of P16 does inhibit the process of renaturation as shown by inhibition of duplex formation between poly(dA) and poly(dT). The binding of saturating amounts of P16 to single strand poly(dT).oligo(dA)50 template-primers enhanced approximately 10-fold the activity of both the homologous mitochondrial DNA polymerase and the Escherichia coli DNA polymerase I Klenow fragment. However, the mitochondrial DNA primase was nearly completely inhibited by the saturation of the poly(dT) template with P16. Amino-terminal sequence analysis of P16 and a protease-insensitive, DNA binding domain (Mr approximately 6000) revealed that the DNA binding domain residues, at least in part, in the amino-terminal third of the P16 molecule. Furthermore, the amino-terminal sequence was found to be strikingly similar to that of the Xenopus laevis mtSSB-1 and to a lesser extent similar to E. coli SSB and E. coli F sex factor SSB.
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.

