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Updated: Jun 26, 2026

A Standard Methodology to Examine On-site Mutagenicity As a Function of Point Mutation Repair Catalyzed by CRISPR/Cas9 and SsODN in Human Cells
Published on: August 25, 2017
In vivo site-directed mutagenesis using oligonucleotides
F Storici1, L K Lewis, M A Resnick
1Laboratory of Molecular Genetics, National Institute of Environmental Health Sciences, National Institutes of Health, P.O. Box 12233, Research Triangle Park, NC 27709, USA.
We developed delitto perfetto, a cloning-free method for rapid, in vivo DNA mutagenesis in yeast. This technique enables precise gene editing, including insertions and deletions, without leaving unwanted DNA sequences behind.
Area of Science:
- Molecular Biology
- Genetics
- Yeast Genetics
Background:
- Functional gene characterization often relies on expression in model organisms like Saccharomyces cerevisiae.
- Existing methods for site-specific mutagenesis in yeast, such as in vitro mutagenesis or PCR-based approaches, can be inefficient, multistep, or limited by selectable phenotypes or restriction sites.
Purpose of the Study:
- To develop a rapid, cloning-free, in vivo method for site-specific DNA mutagenesis in yeast.
- To create a versatile system for generating various mutations, including base changes, insertions, and deletions, without retaining extraneous DNA.
Main Methods:
- The delitto perfetto system utilizes transformation with unpurified oligonucleotides in a two-step process.
- This method is dependent on the RAD52 gene and does not require subcloning or reliance on restriction sites.
- It allows for multiple rounds of mutation within a 200-base pair window.
Main Results:
- The delitto perfetto process efficiently generates site-specific mutations, including single/multiple base changes, insertions, and deletions.
- The system produces desired mutations without any heterologous DNA sequences.
- It is applicable to modifying DNA sequences from higher eukaryotes, such as mammalian DNA.
Conclusions:
- Delitto perfetto offers an efficient and rapid strategy for in vivo DNA mutagenesis in yeast.
- This cloning-free approach overcomes limitations of previous methods, enabling precise genetic modifications.
- The technique is valuable for functional genomics and for creating precise changes in DNA from various organisms, including mammals.
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