Single-Base tRNA Modification Sequencing
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Single-Nucleotide tRNA m3C Modification Seq(m3C-IP-seq)
m3C-IP-Seq is an antibody-free service that profiles m3C on tRNA. An IP step enriches m3C-bearing fragments, then a conversion readout registers the modified nucleotide at base resolution.
Arraystar Single-Nucleotide tRNA m3C Modification Seq(m3C-IP-Seq) is an end-to-end sample-to-data service for tRNA, from RNA sample QC and tRNA treatment through library construction, sequencing, and bioinformatics. Sites are localized within mature tRNA transcripts with relative coordinates, tRNA gene attribution, anticodon and isotype, and structural-domain localization.
Benefits
In tRNA, m3C influences structure and function, so site-level mapping is valuable. An IP step enriches m3C-bearing fragments and a conversion readout registers each modified nucleotide at base resolution.
Single-base resolution: pinpoints m3C sites in tRNA.
Quantitative measurement: the conversion read-out yields reliable modification fractions.
No antibody dependence: eliminates enrichment bias and cross-reactivity concerns.
Functional annotation: Sites are localized within mature tRNA transcripts with relative coordinates, tRNA gene attribution, anticodon and isotype, and structural-domain localization.
Application-ready: supports decoding fidelity, codon use, aminoacylation, and tRNA structural biology across tRNA isotypes.
| Service Name | Price |
|---|---|
| Single-Nucleotide tRNA m3C Modification Seq(m3C-IP-Seq) |
Background
In tRNA, the modification stabilizes the folded L-shaped structure and fine-tunes anticodon–codon decoding, so base-resolution mapping within maturation loops and the anticodon is what distinguishes it. Immunoprecipitation enriches m3C-containing fragments and a conversion readout records the modified nucleotide at single-base resolution, giving sensitive single-base m3C mapping. This antibody-free readout maps each m3C site at single-base resolution.
The method was validated for tRNA, sites are localized within mature tRNA transcripts with relative coordinates, tRNA gene attribution, anticodon and isotype, and structural-domain localization. (Gao Y, Hou J, Wei S, et al. Nucleic Acids Research 2025;53(5)., DOI: 10.1093/nar/gkaf153).
Key concept: Single-Nucleotide tRNA m3C Modification Seq(m3C-IP-Seq) is a sequencing service in which immunoprecipitation enriches m3C-containing fragments, and a conversion readout records the modified nucleotide at single-base resolution.

Figure 1. m3C-IP-Seq detection scheme. An IP step enriches m3C-bearing fragments, and a conversion readout registers the modified nucleotide at base resolution.
Workflow
A streamlined workflow carries the sample to base-resolution N3-methylcytidine (m³C) datasets:

Figure 2. Single-Nucleotide tRNA m3C Modification Seq workflow.
Bioinformatics
Downstream analysis maps reads to a curated reference, calls m3C-IP-Seq conversion signatures, and reports m3C stoichiometry per position with motif, differential, enrichment, and genome-browser outputs.
Deliverables
- Raw m³C tRNA sequencing FASTQ data files, formatted for GEO/SRA public database submission.
- QC report with BAM alignment files and key mapping metrics.
- High-confidence single-base m³C tRNA site tables (XLSX) with coordinates, anticodon, isotype, and stoichiometry.
- Single-base m³C distribution plots across tRNA domains and consensus m³C motif logos (PDF/PNG).
- Single-base resolution differential m³C tRNA site tables (XLSX) with fold change and significance.
- Genome browser-compatible m³C signal track files (bigWig/bedGraph) and a structured tRNA report.
Research Applications
- tRNA decoding fidelity: maps the modification within anticodon and wobble regions.
- Codon use & aminoacylation: relates base-resolution modification to charging and translation.
- tRNA structural biology: localizes sites within D-loop, anticodon, TΨC, and acceptor stem.
- Isotype-resolved analysis: compares modification across tRNA isotypes and isoacceptors.
- Disease-oriented studies: finds differentially modified tRNA sites as biomarkers.
References
[1] Gao Y, Hou J, Wei S, et al. Transcriptome-wide mapping of N3-methylcytidine modification at single-base resolution. Nucleic Acids Research 2025;53(5). DOI: 10.1093/nar/gkaf153.
Sample Requirements
Sample Storage
For cells/tissue: use TRIzol or an RNA-stabilizing reagent, quick-freeze in liquid nitrogen, and keep at –80 °C.
For RNA: dissolve in ethanol or RNase-free water, store at –80 °C, and limit freeze–thaw cycles.
Dispatch Guidelines
Transfer each sample into a 1.5 mL nuclease-free tube.
Close the tube securely with parafilm or a cap lock to preserve integrity.
Send on dry ice with sufficient insulation to sustain the required temperature.
| Sample Type | Notes |
|---|---|
| Whole blood | Use EDTA tubes only, as heparin is not compatible with subsequent analytical procedures. |
| Cultured cells | Submission of cell pellets is preferred to ensure high-quality material for processing. |
| Tissue | Provide fresh or frozen specimens, ensuring that necrotic material is strictly avoided. |
| Total RNA | Maintain an OD 260/280 ratio ≥ 1.8 and RIN ≥ 7 with no visible degradation. Submit at least 200 µg total RNA. |
FAQ
Which tRNA features are annotated?
Sites are localized within mature tRNA transcripts with relative coordinates, tRNA gene attribution, anticodon and isotype, and structural-domain localization. This lets you interpret each site in the context of its host tRNA isotype and structural domain. The method supports both mRNA and tRNA workflows, so you can choose the readout that matches your study.
Does this method measure the modification at single-base resolution?
Yes. Immunoprecipitation enriches m3C-containing fragments and a conversion readout records the modified nucleotide at single-base resolution, giving sensitive single-base m3C mapping. This provides single-base resolution and absolute stoichiometry for each site in tRNA. The reaction is antibody-free and reproducible, so the calling is specific and the stoichiometry is reliable for downstream functional analyses.
How does this method differ from antibody-based tRNA profiling?
Antibody-based methods rely on enrichment and offer limited resolution with intrinsic motif bias. This method is antibody-free and delivers base-resolution, quantitative calling in tRNA, avoiding cross-reactivity and enrichment bias. This suits projects needing quantitative site-level mapping rather than region-level enrichment, and it pairs well with orthogonal validation.
How does this service support research on m3C modification?
By profiling m3C with high accuracy, the service helps researchers explore its biological significance, offering insight for studying RNA function and regulation.
Why is accurate m3C detection a valuable research asset?
Reliable m3C profiling strengthens research findings and supports advancement of understanding in RNA biology.