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Deciphering the catalytic domain of colicin M, a peptidoglycan lipid II-degrading enzyme
Hélène Barreteau1, Ahmed Bouhss, Fabien Gérard
1Université Paris-Sud 11, UMR 8619, Institut de Biochimie et Biophysique Moléculaire et Cellulaire, 91405 Orsay.
Abstract:
Colicin M inhibits Escherichia coli peptidoglycan synthesis through cleavage of its lipid-linked precursors. It has a compact structure, whereas other related toxins are organized in three independent domains, each devoted to a particular function: translocation through the outer membrane, receptor binding, and toxicity, from the N to the C termini, respectively. To establish whether colicin M displays such an organization despite its structural characteristics, protein dissection experiments were performed, which allowed us to delineate an independent toxicity domain encompassing exactly the C-terminal region conserved among colicin M-like proteins and covering about half of colicin M (residues 124-271). Surprisingly, the in vitro activity of the isolated domain was 45-fold higher than that of the full-length protein, suggesting a mechanism by which the toxicity of this domain is revealed following primary protein maturation. In vivo, the isolated toxicity domain appeared as toxic as the full-length protein under conditions where the reception and translocation steps were by-passed. Contrary to the full-length colicin M, the isolated domain did not require the presence of the periplasmic FkpA protein to be toxic under these conditions, demonstrating that FkpA is involved in the maturation process. Mutational analysis further identified five residues that are essential for cytotoxicity as well as in vitro lipid II-degrading activity: Asp-229, His-235, Asp-226, Tyr-228, and Arg-236. Most of these residues are surface-exposed and located relatively close to each other, hence suggesting they belong to the colicin M active site.
Insights
Colicin M
Area of Science:
- Bacteriocin research
- Molecular biology
- Protein structure-function analysis
Background:
- Colicin M inhibits peptidoglycan synthesis in Escherichia coli by cleaving lipid-linked precursors.
- Unlike related toxins with distinct functional domains, colicin M has a compact structure.
- Understanding colicin M's functional organization is key to its mechanism of action.
Purpose of the Study:
- To investigate the functional domain organization of colicin M.
- To identify the specific regions responsible for colicin M's toxicity.
- To elucidate the role of periplasmic proteins in colicin M maturation and activity.
Main Methods:
- Protein dissection experiments to isolate functional domains.
- In vitro and in vivo assays to assess toxicity and enzymatic activity.
- Mutational analysis to identify critical residues for cytotoxicity.
Main Results:
- An independent toxicity domain was delineated at the C-terminus (residues 124-271).
- The isolated toxicity domain exhibited significantly higher in vitro activity than full-length colicin M.
- The periplasmic protein FkpA was identified as crucial for colicin M maturation, but not for the isolated domain's toxicity.
- Five key residues (Asp-229, His-235, Asp-226, Tyr-228, Arg-236) were identified as essential for activity.
Conclusions:
- Colicin M possesses a distinct C-terminal toxicity domain whose activity is regulated.
- FkpA is involved in the maturation of full-length colicin M, enhancing its toxicity.
- The identified residues likely constitute the active site responsible for lipid II cleavage.
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