CRISPR-Cas9 precision editing of kinetochore protein phosphosite codons in Leishmania mexicana
Charlotte McNiven1, Juliana Brambilla Carnielli Trindade1, Vincent Geoghegan1
1York Biomedical Research Institute and Department of Biology, University of York, York, United Kingdom.
Abstract:
Leishmania mexicana, like other trypanosomatids, possess a unique kinetochore-the protein complex crucial for chromosome segregation during mitosis. To investigate the functional significance of specific phosphorylation sites on essential kinetochore proteins, we adapted a selection-free precision editing strategy using CRISPR-Cas9 in Leishmania mexicana promastigotes. Our method targeted genomic DNA with 160-bp double-stranded DNA repair templates and guide RNAs to introduce targeted modifications. We focused on six phosphosites within the kinetochore proteins KKT2, KKT4, and KKT7, generating phosphodeficient, phosphomimetic, and synonymous mutants for each site. Across 18 independent transfections, we achieved a successful editing rate of 27.5% as determined by PCR screening, with 30.4% of clones confirmed as edited by Sanger sequencing. A significant portion of these edited clones (22.1%) were homozygous. Despite these precise genomic modifications, none of the phosphosite mutant clones exhibited any apparent growth defects or cell cycle dysregulation, suggesting these phosphorylation sites individually may not be critical for these processes under standard culture conditions. To facilitate higher-throughput precision editing, we developed a Python script that automates the design of the 160 bp repair templates. This script uses a FASTA file, a codon usage table, and a simple configuration file to design templates with a single nonsynonymous mutation and additional synonymous mutations for screening purposes. It also generates a corresponding synonymous-only repair template and primers for both screening and repair template generation, offering a "ready-to-go" approach. While designed for Leishmania, this powerful tool is adaptable for use with other kinetoplastids.
Insights
Researchers used CRISPR-Cas9 to edit kinetochore genes in Leishmania mexicana, finding that specific phosphorylation sites on KKT2, KKT4, and KKT7 proteins are not essential for growth or cell cycle progression.
Area of Science:
- Molecular Biology
- Parasitology
- Genetics
Background:
- Kinetochores are vital for chromosome segregation in trypanosomatids like Leishmania mexicana.
- Understanding post-translational modifications, such as phosphorylation, is key to elucidating protein function.
Purpose of the Study:
- To investigate the functional significance of specific phosphorylation sites on Leishmania mexicana kinetochore proteins KKT2, KKT4, and KKT7.
- To develop and apply a precision genome editing strategy for targeted mutagenesis in Leishmania.
Main Methods:
- Utilized CRISPR-Cas9 with 160-bp DNA repair templates and guide RNAs for targeted genomic editing in Leishmania mexicana promastigotes.
- Generated phosphodeficient, phosphomimetic, and synonymous mutants for six key phosphosites.
- Developed a Python script to automate the design of DNA repair templates for high-throughput editing.
Main Results:
- Achieved a 27.5% editing rate, with 30.4% of edited clones confirmed by Sanger sequencing, and 22.1% being homozygous edits.
- None of the generated phosphosite mutants displayed observable growth defects or cell cycle dysregulation under standard conditions.
- Demonstrated the successful application of precision editing for functional analysis of kinetochore phosphosites.
Conclusions:
- Individual phosphorylation sites on KKT2, KKT4, and KKT7 may not be critical for Leishmania mexicana growth or cell cycle under standard laboratory conditions.
- The developed CRISPR-Cas9-based precision editing strategy and automation tool are effective for targeted mutagenesis in Leishmania and adaptable to other kinetoplastids.
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