Functional consequences of exchanging domains between LacI and PurR are mediated by the intervening linker sequence
- 13 April 2007
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 68 (1) , 375-388
- https://doi.org/10.1002/prot.21412
Abstract
Homologue function can be differentiated by changing residues that affect binding sites or long‐range interactions. LacI and PurR are two proteins that represent the LacI/GalR family (>500 members) of bacterial transcription regulators. All members have distinct DNA‐binding and regulatory domains linked by ∼18 amino acids. Each homologue has specificity for different DNA and regulatory effector ligands; LacI and PurR also exhibit differences in allosteric communication between DNA and effector binding sites. A comparative study of LacI and PurR suggested that alterations in the interface between the regulatory domain and linker are important for differentiating their functions. Four residues (equivalent to LacI positions 48, 55, 58, and 61) appear particularly important for creating a unique interface and were predicted to be necessary for allosteric regulation. However, nearby residues in the linker interact with DNA ligand. Thus, differences observed in interactions between linker and regulatory domain may be the cause of altered function or an effect of the two proteins binding different DNA ligands. To separate these possibilities, we created a chimeric protein with the LacI DNA‐binding domain/linker and the PurR regulatory domain (LLhP). If the interface requires homologue‐specific interactions in order to propagate the signal from effector binding, then LLhP repression should not be allosterically regulated by effector binding. Experiments show that LLhP is capable of repression from lacO1 and, contrary to expectation, allosteric response is intact. Further, restoring the potential for PurR‐like interactions via substitutions in the LLhP linker tends to diminish repression. These effects are especially pronounced for residues 58 and 61. Clearly, binding affinity of LLhP for the lacO1 DNA site is sensitive to long‐range changes in the linker. This result also raises the possibility that mutations at positions 58 and 61 co‐evolved with changes in the DNA‐binding site. In addition, repression measured in the absence and presence of effector ligand shows that allosteric response increases for several LLhP variants with substitutions at positions 48 and 55. Thus, while side chain variation at these sites does not generally dictate the presence or absence of allostery, the nature of the amino acid can modulate the response to effector. Proteins 2007.Keywords
This publication has 85 references indexed in Scilit:
- Dynamically driven protein allosteryNature Structural & Molecular Biology, 2006
- Extrinsic Interactions Dominate Helical Propensity in Coupled Binding and Folding of the Lactose Repressor Protein Hinge HelixBiochemistry, 2006
- Role of the hydrophobic effect in stability of site-specific protein-DNA complexesPublished by Elsevier ,2004
- UCSF Chimera—A visualization system for exploratory research and analysisJournal of Computational Chemistry, 2004
- Three-dimensional structure of the DNA-binding domain of the fructose repressor from Escherichia coli by 1H and 15N NMRJournal of Molecular Biology, 1997
- Genetic Studies of the Lac Repressor XV: 4000 Single Amino Acid Substitutions and Analysis of the Resulting Phenotypes on the Basis of the Protein StructureJournal of Molecular Biology, 1996
- Basic local alignment search toolJournal of Molecular Biology, 1990
- “Second” and “third operator” of the lac operon: An investigation of their role in the regulatory mechanismJournal of Molecular Biology, 1979
- lac repressor-operator interactionJournal of Molecular Biology, 1972
- lac repressor—Operator interaction: II. Effect of galactosides and other ligandsJournal of Molecular Biology, 1970