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Updated: Mar 14, 2026

Inducing a Site Specific Replication Blockage in E. coli Using a Fluorescent Repressor Operator System
Published on: August 21, 2016
Metal-Induced Stabilization and Activation of Plasmid Replication Initiator RepB
José A Ruiz-Masó1, Lorena Bordanaba-Ruiseco1, Marta Sanz1
1Molecular Biology of Gram-Positive Bacteria, Molecular Microbiology and Infection Biology, Centro de Investigaciones Biológicas (Consejo Superior de Investigaciones Científicas) Madrid, Spain.
Abstract:
Initiation of plasmid rolling circle replication (RCR) is catalyzed by a plasmid-encoded Rep protein that performs a Tyr- and metal-dependent site-specific cleavage of one DNA strand within the double-strand origin (dso) of replication. The crystal structure of RepB, the initiator protein of the streptococcal plasmid pMV158, constitutes the first example of a Rep protein structure from RCR plasmids. It forms a toroidal homohexameric ring where each RepB protomer consists of two domains: the C-terminal domain involved in oligomerization and the N-terminal domain containing the DNA-binding and endonuclease activities. Binding of Mn2+ to the active site is essential for the catalytic activity of RepB. In this work, we have studied the effects of metal binding on the structure and thermostability of full-length hexameric RepB and each of its separate domains by using different biophysical approaches. The analysis of the temperature-induced changes in RepB shows that the first thermal transition, which occurs at a range of temperatures physiologically relevant for the pMV158 pneumococcal host, represents an irreversible conformational change that affects the secondary and tertiary structure of the protein, which becomes prone to self-associate. This transition, which is also shown to result in loss of DNA binding capacity and catalytic activity of RepB, is confined to its N-terminal domain. Mn2+ protects the protein from undergoing this detrimental conformational change and the observed protection correlates well with the high-affinity binding of the cation to the active site, as substituting one of the metal-ligands at this site impairs both the protein affinity for Mn2+and the Mn2+-driven thermostabilization effect. The level of catalytic activity of the protein, especially in the case of full-length RepB, cannot be explained based only on the high-affinity binding of Mn2+ at the active site and suggests the existence of additional, lower-affinity metal binding site(s), missing in the separate catalytic domain, that must also be saturated for maximal activity. The molecular bases of the thermostabilizing effect of Mn2+ on the N-terminal domain of the protein as well as the potential location of additional metal binding sites in the entire RepB are discussed.
Insights
Manganese (Mn2+) stabilizes the RepB initiator protein, crucial for plasmid replication, by preventing irreversible structural changes in its N-terminal domain. This metal binding is essential for maintaining the protein's DNA binding and catalytic activity.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Plasmid rolling circle replication (RCR) initiation relies on Rep proteins catalyzing site-specific DNA cleavage.
- The RepB initiator protein from streptococcal plasmid pMV158 is a hexameric ring with distinct N-terminal (DNA binding/endonuclease) and C-terminal (oligomerization) domains.
- Manganese (Mn2+) binding is critical for RepB's catalytic activity.
Purpose of the Study:
- To investigate the impact of metal binding on the structure and thermostability of hexameric RepB and its domains.
- To elucidate the role of Mn2+ in preventing detrimental conformational changes in RepB.
Main Methods:
- Biophysical approaches were employed to analyze temperature-induced structural changes.
- Thermostability assays were conducted on full-length RepB and its isolated domains.
- Analysis of Mn2+ binding affinity and its effect on protein stability and activity.
Main Results:
- A physiologically relevant thermal transition in RepB involves irreversible conformational changes in the N-terminal domain, leading to loss of function.
- Mn2+ binding to the active site significantly protects RepB from this detrimental transition, correlating with high-affinity cation binding.
- Maximal RepB activity suggests additional low-affinity Mn2+ binding sites beyond the active site, crucial for full catalytic function.
Conclusions:
- Mn2+ is essential for RepB thermostability and function, primarily by stabilizing the N-terminal domain.
- The study reveals the molecular basis of Mn2+-mediated stabilization and suggests the presence of multiple metal binding sites.
- Understanding these interactions is key to comprehending plasmid RCR initiation mechanisms.
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