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Updated: May 16, 2026

In Vitro Directed Evolution of a Restriction Endonuclease with More Stringent Specificity
Published on: March 25, 2020
Functional consequences of mutating conserved SF2 helicase motifs in the Type III restriction endonuclease EcoP15I
Petra Mackeldanz1, Jürgen Alves, Elisabeth Möncke-Buchner
1Institute of Medical Virology, Helmut-Ruska-Haus, Charité - Universitätsmedizin Berlin, Charitéplatz 1, 10117 Berlin, Germany.
Abstract:
For efficient DNA hydrolysis, Type III restriction endonuclease EcoP15I interacts with two inversely oriented recognition sites in an ATP-dependent process. EcoP15I consists of two methylation (Mod) subunits and a single restriction (Res) subunit yielding a multifunctional enzyme complex able to methylate or to hydrolyse DNA. Comprehensive sequence alignments, limited proteolysis and mass spectroscopy suggested that the Res subunit is a fusion of a motor or translocase (Tr) domain of superfamily II helicases and an endonuclease domain with a catalytic PD…EXK motif. In the Tr domain, seven predicted helicase motifs (I, Ia, II-VI), a recently discovered Q-tip motif and three additional regions (IIIa, IVa, Va) conserved among Type III restriction enzymes have been identified that are predicted to be involved in DNA binding and ATP hydrolysis. Because DNA unwinding activity for EcoP15I (as for bona fide helicases) has never been found and EcoP15I ATPase rates are only low, the functional importance of the helicase motifs and regions was questionable and has never been probed systematically. Therefore, we mutated all helicase motifs and conserved regions predicted in Type III restriction enzyme EcoP15I and examined the functional consequences on EcoP15I enzyme activity and the structural integrity of the variants by CD spectroscopy. The resulting eleven enzyme variants all, except variant IVa, are properly folded showing the same secondary structure distribution as the wild-type enzyme. Classical helicase motifs I-VI are important for ATP and DNA cleavage by EcoP15I and mutations therein led to complete loss of ATPase and cleavage activity. Among the catalytically inactive enzyme variants three preserved the ability to bind ATP. In contrast, newly assigned motifs Q-tip, Ia and Va are not essential for EcoP15I activity and the corresponding enzyme variants were still catalytically active. DNA binding was only marginally reduced (2-7 fold) in all enzyme variants tested.
Insights
Type III restriction enzyme EcoP15I
Area of Science:
- Molecular Biology
- Enzymology
- Biochemistry
Background:
- Type III restriction endonuclease EcoP15I is a complex enzyme involved in DNA hydrolysis.
- It comprises methylation (Mod) and restriction (Res) subunits, with the Res subunit containing helicase-like and endonuclease domains.
- The functional significance of predicted helicase motifs in EcoP15I's DNA binding and ATP hydrolysis remains unclear.
Purpose of the Study:
- To systematically investigate the functional importance of conserved helicase motifs and regions in EcoP15I.
- To determine the role of these motifs in enzyme activity, DNA binding, and structural integrity.
Main Methods:
- Site-directed mutagenesis of predicted helicase motifs and conserved regions in EcoP15I.
- Assessing enzyme activity (ATPase and DNA cleavage) of mutant variants.
- Evaluating structural integrity using circular dichroism (CD) spectroscopy.
- Measuring ATP binding and DNA binding affinities.
Main Results:
- Mutations in classical helicase motifs (I-VI) abolished both ATPase and DNA cleavage activities, with some retaining ATP binding.
- Mutations in newly identified motifs (Q-tip, Ia, Va) did not significantly impair enzyme activity or DNA binding.
- Eleven enzyme variants were generated, with most retaining proper folding and secondary structure similar to the wild-type enzyme.
Conclusions:
- Classical helicase motifs I-VI are crucial for EcoP15I's ATPase and DNA cleavage functions.
- Newly identified motifs (Q-tip, Ia, Va) are non-essential for EcoP15I's catalytic activity.
- EcoP15I's structure and DNA binding are largely maintained even with mutations in key functional regions.
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