Chloroplast- and Mitochondrion-Specific Random C-to-T Mutagenesis for Forward Genetics of Organelle Genomes
Kosaka, N.; Harada, Y.; Nakazato, I.; Okuno, M.; Itoh, T.; Tsutsumi, N.; Arimura, S.-i.
Show abstract
Organelle genomes in plastids (including chloroplasts) and mitochondria encode essential genes for photosynthesis, respiration, and agronomic traits, representing promising targets for crop improvement. However, their high copy number and non-Mendelian inheritance have long hindered efficient modification compared to nuclear genomes. Recent advances in organelle base editing (C-to-T and A-to-G) have enabled precise nucleotide substitutions, yet information on useful mutations remains limited. Here, to establish a forward genetics platform for C-to-T substitutions, we developed a method to introduce random C-to-T mutations throughout the entire organelle genomes of Arabidopsis thaliana. We engineered a fusion protein, WHY2-CD mutator, combining cytidine deaminase (CD), uracil glycosylase inhibitor, and sequence-nonspecific DNA-binding protein WHIRLY2 (WHY2), fused to organelle-targeting peptides. This system introduced dispersed C-to-T substitutions specifically within plastid or mitochondrial genomes. In T2 lines, we identified homoplasmic (homozygous) plastid genome mutants, including rpoA knockouts and rbcL variants with an amino acid substitution. Screening T3 populations on spectinomycin revealed plastid genome mutants with resistant traits and their causal mutation. These mutations can be transferred or combined using targeted base editors, such as transcription activator-like effector cytidine deaminase (TALECD). This comprehensive, C-to-T-focused mutagenesis provides a powerful tool for organelle forward genetics and molecular breeding.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Differential mutation rates in plant meristematic layers 97%
- S1 basic leucine zipper transcription factors shape plant architecture by controlling C/N partitioning to apical and lateral organs 96%
- The Arabidopsis NRT1/PTR FAMILY Protein NPF7.3/NRT1.5 is an Indole-3-butyric Acid Transporter Involved in Root Gravitropism 95%
Similar papers in this journal
- Transcriptional activation of auxin biosynthesis drives developmental reprogramming of differentiated cells 96%
- A photosynthesis operon in the chloroplast genome drives speciation in evening primroses 95%
- Unique and distinct identities and functions of leaf phloem cells revealed by single cell transcriptomics 94%
Similar papers in this journal
- Natural variation identifies a Pxy gene controlling root vascular organization and formation of nodules and lateral roots in Lotus japonicus 95%
- Natural variation in the Arabidopsis AGO2 gene is associated with susceptibility to potato virus X 94%
- Strain, procedures, and tools for reproducible genetic transformation and genome editing of Spirodela polyrhiza (L.) Schleid. 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.