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May 13, 2026Scientific Reports0 citationsOpen Access

Transcriptome SNP analysis of tomato seedlings exposed to low‑dose gamma irradiation and cold plasma suggests antiviral responses

AGAbozar GhorbaniEMElham MahmoudiMRMahsa Rostami

Key Points

  • The study aims to assess the impact of low-dose gamma irradiation and cold plasma on SNP variations and antiviral responses in tomato seedlings.
  • Performed transcriptome-wide SNP discovery in Solanum lycopersicum seedlings infected with ToBRFV.
  • Seedlings were treated with either 15 Gy gamma irradiation or cold plasma, followed by RNA-Seq analysis.
  • Identified high-confidence SNP distributions and their functional impacts on specific genes.
  • Gamma irradiation induced 82 high-confidence SNPs clustered on chromosomes 7, 12, and 9; cold plasma revealed 36 SNPs mainly on chromosomes 6 and 11.
  • SNPs were localized within protein-coding regions, resulting in nonsynonymous substitutions linked to terpene biosynthesis and plant stress responses.
  • Findings indicate limited transcriptomic mutations suggesting functional relevance, but further analysis is needed to verify genome-wide effects.

Abstract

Physical mutagens such as low-dose gamma irradiation and cold plasma have recently emerged as eco-friendly tools for enhancing plant vigor, stress tolerance, and disease resistance. However, their impact on genetic stability remains insufficiently characterized. Here, we performed transcriptome-wide single-nucleotide polymorphism (SNP) discovery in Solanum lycopersicum seedlings infected with Tomato brown rugose fruit virus (ToBRFV; Tobamovirus fructirugosum) and subjected to either 15 Gy gamma irradiation or cold plasma treatment. RNA-Seq analysis revealed distinct mutational footprints: gamma irradiation induced 82 high-confidence SNPs, whereas cold plasma generated 36, with only two SNPs shared between treatments. Chromosomal mapping indicated that gamma-induced SNPs were clustered on chromosomes 7, 12, and 9, while cold plasma-associated mutations were more evenly distributed, predominantly on chromosomes 6 and 11. Most SNPs were localized within protein-coding regions, resulting exclusively in nonsynonymous substitutions; however, the limited SNP dataset and transcriptome-based approach prevent robust inference of selection pressure. Functionally, gamma-induced SNPs were enriched in genes related to terpene biosynthesis, lipid metabolism, and secondary metabolite pathways, while cold plasma targeted genes associated with transcriptional regulation, redox signaling, and chloroplast function, which are closely linked to hormone-mediated signaling networks such as auxin pathways that coordinate plant stress responses and developmental adaptation. Protein modeling further highlighted amino acid substitutions in conserved domains of NB-LRR and regulatory proteins, suggesting possible contributions to plant stress and immune responses. Collectively, our results demonstrate that both treatments induce limited yet functionally relevant transcriptomic mutations within expressed genes, without evidence of widespread mutational disruption at the transcriptome level. However, because the analysis is based on RNA-Seq data, these findings reflect transcriptome-level stability rather than genome-wide genomic safety, and further validation using whole-genome sequencing would be required to assess genome-wide mutational effects.

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Cite This Study

Ghorbani et al. (2026) studied this question.

synapsesocial.com/papers/6a04141c79e20c90b44444e4https://doi.org/10.1038/s41598-026-52353-6
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