Affiliation:
1. Department of Microbiology, University of Illinois, Urbana, Illinois 61801
Abstract
ABSTRACT
CTnDOT encodes an integrase that is a member of the tyrosine recombinase family. The recombination reaction proceeds by sequential sets of genetic exchanges between the
attDOT
site in CTnDOT and an
attB
site in the chromosome. The exchanges are separated by 7 base pairs in each site. Unlike most tyrosine recombinases, IntDOT exchanges sites that contain different DNA sequences between the exchange sites to generate Holliday junctions (HJs) that contain mismatched bases. We demonstrate that IntDOT resolves synthetic HJs
in vitro
. Holliday junctions that contain identical sequences between the exchange sites are resolved into both substrates and products, while HJs that contain mismatches are resolved only to substrates. This result implies that resolution of HJs to products requires the formation of a higher-order nucleoprotein complex with natural sites containing IntDOT. We also found that proteins with substitutions of residues (V95, K94, and K96) in a putative alpha helix at the junction of the N and CB domains (coupler region) were defective in resolving HJs. Mutational analysis of charged residues in the coupler and the N terminus of the protein did not provide evidence for a charge interaction between the regions of the protein. V95 may participate in a hydrophobic interaction with another region of IntDOT.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Reference18 articles.
1. Azaro, M. A., and A. Landy. 2002. Lambda integrase and the lambda integrase family, p. 118-148. In N. L. Craig, R, Craigie, M. Gellert, and A. M. Lambowitz (ed.), Mobile DNA II. ASM Press, Washington, DC.
2. Azaro, M. A., and A. Landy. 1997. The isomeric preference of Holliday junctions influences resolution bias by lambda integrase. EMBO J. 16:3744-3755.
3. Bauer, C. E., J. F. Gardner, and R. I. Gumport. 1985. Extent of sequence homology required for bacteriophage lambda site-specific recombination. J. Mol. Biol. 181:187-197.
4. Biswas, T., et al. 2005. A structural basis for allosteric control of DNA recombination by lambda integrase. Nature 435:1059-1066.
5. Geourjon, C., and G. Deleage. 1994. SOPM: a self-optimized method for protein secondary structure prediction. Protein Eng. 7:157-164.
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