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Subtyping of Campylobacter jejuni ssp. doylei Isolates Using Mass Spectrometry-based PhyloProteomics (MSPP)
Published on: October 30, 2016
The PAD region in the mycobacterial DinB homologue MsPolIV exhibits positional heterogeneity
Amit Sharma1, Vidya Subramanian, Deepak T Nair
1National Centre for Biological Sciences (NCBS-TIFR), UAS-GKVK Campus, Bellary Road, Bangalore 560 065, India.
Abstract:
Y-family DNA polymerases (dPols) have evolved to carry out translesion bypass to rescue stalled replication; prokaryotic members of this family also participate in the phenomenon of adaptive mutagenesis to relieve selection pressure imposed by a maladapted environment. In this study, the first structure of a member of this family from a prokaryote has been determined. The structure of MsPolIV, a Y-family dPol from Mycobacterium smegmatis, shows the presence of the characteristic finger, palm and thumb domains. Surprisingly, the electron-density map of the intact protein does not show density for the PAD region that is unique to members of this family. Analysis of the packing of the molecules in the crystals showed the existence of large solvent-filled voids in which the PAD region could be located in multiple conformations. In line with this observation, analytical gel-filtration and dynamic light-scattering studies showed that MsPolIV undergoes significant compaction upon DNA binding. The PAD region is known to insert into the major groove of the substrate DNA and to play a major role in shaping the active site. Comparison with structures of other Y-family dPols shows that in the absence of tertiary contacts between the PAD domain and the other domains this region has the freedom to adopt multiple orientations. This structural attribute of the PAD will allow these enzymes to accommodate the alterations in the width of the DNA double helix that are necessary to achieve translesion bypass and adaptive mutagenesis and will also allow regulation of their activity to prevent adventitious error-prone DNA synthesis.
Insights
The first structure of a prokaryotic Y-family DNA polymerase (MsPolIV) reveals a flexible PAD region. This flexibility enables DNA repair and adaptive mutagenesis by accommodating DNA helix variations.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Biology
Background:
- Y-family DNA polymerases (dPols) are crucial for DNA repair, enabling translesion bypass of stalled replication forks.
- Prokaryotic Y-dPols also play a role in adaptive mutagenesis, helping organisms adapt to environmental stress.
Purpose of the Study:
- To determine the first structure of a prokaryotic Y-family DNA polymerase, MsPolIV from Mycobacterium smegmatis.
- To investigate the structural role of the unique Protospacer Adjacent Motif (PAD) region in prokaryotic Y-dPols.
Main Methods:
- X-ray crystallography was used to determine the structure of MsPolIV.
- Analytical gel-filtration and dynamic light-scattering were employed to study protein behavior upon DNA binding.
Main Results:
- The MsPolIV structure revealed the characteristic finger, palm, and thumb domains but lacked electron density for the PAD region in the crystal.
- The PAD region was found to be flexible, capable of adopting multiple conformations in solvent-filled voids.
- MsPolIV undergoes significant compaction upon DNA binding, indicating PAD region involvement.
Conclusions:
- The structural flexibility of the PAD region in MsPolIV allows it to adapt to variations in DNA helix width, facilitating translesion bypass and adaptive mutagenesis.
- This adaptability is essential for preventing errors during DNA synthesis and regulating enzyme activity.
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