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Updated: Aug 24, 2026

In Vitro Directed Evolution of a Restriction Endonuclease with More Stringent Specificity
Published on: March 25, 2020
Distinct conformational stability and functional activity of four highly homologous endonuclease colicins
Ewald T J van den Bremer1, Anthony H Keeble, Wim Jiskoot
1Department of Biomolecular Mass Spectrometry, Bijvoet Center for Biomolecular Research & Utrecht Institute for Pharmaceutical Sciences, Utrecht University, 3584 CA Utrecht, The Netherlands. e.t.j. vandenbremer@chem.uu.nl
Abstract:
The family of conserved colicin DNases E2, E7, E8, and E9 are microbial toxins that kill bacteria through random degradation of the chromosomal DNA. In the present work, we compare side by side the conformational stabilities of these four highly homologous colicin DNases. Our results indicate that the apo-forms of these colicins are at room temperature and neutral pH in a dynamic conformational equilibrium between at least two quite distinct conformers. We show that the thermal stabilities of the apo-proteins differ by up to 20 degrees C. The observed differences correlate with the observed conformational behavior, that is, the tendency of the protein to form either an open, less stable or closed, more stable conformation in solution, as deduced by both tryptophan accessibility studies and electrospray ionization mass spectrometry. Given these surprising structural differences, we next probed the catalytic activity of the four DNases and also observed a significant variation in relative activities. However, no unequivocal link between the activity of the protein and its thermal and structural stability could easily be made. The observed differences in conformational and functional properties of the four colicin DNases are surprising given that they are a closely related (> or =65% identity) family of enzymes containing a highly conserved (betabetaalpha-Me) active site motif. The different behavior of the apo-enzymes must therefore most likely depend on more subtle changes in amino acid sequences, most likely in the exosite region (residues 72-98) that is required for specific high-affinity binding of the cognate immunity protein.
Insights
Four related colicin DNases show surprising differences in conformational stability and catalytic activity. These variations in bacterial toxins likely stem from subtle sequence changes, not the conserved active site.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Colicin DNases (E2, E7, E8, E9) are bacterial toxins that degrade DNA.
- These enzymes are highly homologous, sharing over 65% sequence identity.
- They possess a conserved (betabetaalpha-Me) active site motif.
Purpose of the Study:
- To comparatively analyze the conformational stabilities of four homologous colicin DNases.
- To investigate the relationship between structural stability and catalytic activity.
- To understand the basis for functional diversity in closely related enzymes.
Main Methods:
- Comparative analysis of apo-form conformational stabilities.
- Tryptophan accessibility studies to probe protein conformation.
- Electrospray ionization mass spectrometry (ESI-MS) for conformational analysis.
- Assessment of catalytic activity variations.
Main Results:
- Apo-colicin DNases exist in a dynamic equilibrium between distinct conformers at room temperature and neutral pH.
- Thermal stabilities varied by up to 20°C among the four enzymes.
- Conformational behavior (open vs. closed states) correlated with thermal stability.
- Significant variations in catalytic activities were observed.
- No direct link was found between activity and thermal/structural stability.
Conclusions:
- Despite high homology and conserved active sites, colicin DNases exhibit significant differences in conformational stability and function.
- These variations are likely attributed to subtle amino acid sequence differences, particularly in the exosite region (residues 72-98).
- The exosite region may play a crucial role in specific binding interactions, influencing overall enzyme properties.
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