{"title":"Tonoplast-targeted bacterial transporter MerC enhances cadmium tolerance in Arabidopsis via vacuolar sequestration and cytoplasmic protection.","authors":"Shimpei Uraguchi, Mikine Kimura, Yuka Ohshiro, Ryosuke Nakamura, Yasukazu Takanezawa, Masako Kiyono","doi":"10.1007/s00299-025-03551-5","DOIUrl":null,"url":null,"abstract":"<p><strong>Key message: </strong>Vacuolar sequestration via tonoplast-targeted MerC enhances Cd tolerance; expression in roots plays a primary role, while expression in mesophyll is also crucial for protecting the chloroplasts. Targeting metal transporters to the vacuole via genetic engineering offers a strategy to enhance plant tolerance to toxic metals like cadmium (Cd) by promoting vacuolar sequestration. Understanding the influence of different expression patterns of metal transporters is crucial for elucidating Cd-tolerance mechanisms. This study investigated how ubiquitous (p35S promoter) versus mesophyll-specific (pRBCS1A promoter) expression of a tonoplast-targeted bacterial metal transporter, MerC-AtVAM3 (CV), impacts Cd tolerance, nutrient homeostasis, and subcellular Cd distribution in Arabidopsis. While the short-term plate assays revealed only slight tolerance improvements, the long-term hydroponic Cd treatments (0.5 µM and 1 µM) resulted in significant enhancement in the CV-expressing lines. Notably, the p35S-CV line, which ubiquitously expresses the transgene, exhibited stronger tolerance (improved growth, mitigated chlorosis confirmed by higher SPAD values) compared to the mesophyll-specific pRBCS1A-TCV lines, particularly under 1 µM Cd. Nutritional profiling indicated that CV expression alleviated some Cd-induced nutrient imbalances. Although root Cd accumulation was similar across lines, p35S-CV shoots displayed approximately 30% lower Cd concentration compared to the wild-type (Col-0) and pRBCS1A lines under 1 µM Cd conditions. In Col-0 mesophyll cells, subcellular analysis using the Leadmium Green dye showed Cd was preferentially localized in the peripheral cytoplasm. The Leadmium Green signal also exhibited strong co-localization with chloroplasts. Conversely, CV expression effectively redirected Cd to the central vacuole, confirming efficient sequestration by the tonoplast-targeted MerC. The superior tolerance of the p35S-CV line strongly suggests that vacuolar Cd sequestration in roots plays a primary role in conferring robust Cd tolerance in Arabidopsis, while vacuolar sequestration in shoots provides supportive protection.</p>","PeriodicalId":20204,"journal":{"name":"Plant Cell Reports","volume":"44 7","pages":"169"},"PeriodicalIF":5.3000,"publicationDate":"2025-07-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Plant Cell Reports","FirstCategoryId":"99","ListUrlMain":"https://doi.org/10.1007/s00299-025-03551-5","RegionNum":2,"RegionCategory":"生物学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"PLANT SCIENCES","Score":null,"Total":0}
引用次数: 0
Abstract
Key message: Vacuolar sequestration via tonoplast-targeted MerC enhances Cd tolerance; expression in roots plays a primary role, while expression in mesophyll is also crucial for protecting the chloroplasts. Targeting metal transporters to the vacuole via genetic engineering offers a strategy to enhance plant tolerance to toxic metals like cadmium (Cd) by promoting vacuolar sequestration. Understanding the influence of different expression patterns of metal transporters is crucial for elucidating Cd-tolerance mechanisms. This study investigated how ubiquitous (p35S promoter) versus mesophyll-specific (pRBCS1A promoter) expression of a tonoplast-targeted bacterial metal transporter, MerC-AtVAM3 (CV), impacts Cd tolerance, nutrient homeostasis, and subcellular Cd distribution in Arabidopsis. While the short-term plate assays revealed only slight tolerance improvements, the long-term hydroponic Cd treatments (0.5 µM and 1 µM) resulted in significant enhancement in the CV-expressing lines. Notably, the p35S-CV line, which ubiquitously expresses the transgene, exhibited stronger tolerance (improved growth, mitigated chlorosis confirmed by higher SPAD values) compared to the mesophyll-specific pRBCS1A-TCV lines, particularly under 1 µM Cd. Nutritional profiling indicated that CV expression alleviated some Cd-induced nutrient imbalances. Although root Cd accumulation was similar across lines, p35S-CV shoots displayed approximately 30% lower Cd concentration compared to the wild-type (Col-0) and pRBCS1A lines under 1 µM Cd conditions. In Col-0 mesophyll cells, subcellular analysis using the Leadmium Green dye showed Cd was preferentially localized in the peripheral cytoplasm. The Leadmium Green signal also exhibited strong co-localization with chloroplasts. Conversely, CV expression effectively redirected Cd to the central vacuole, confirming efficient sequestration by the tonoplast-targeted MerC. The superior tolerance of the p35S-CV line strongly suggests that vacuolar Cd sequestration in roots plays a primary role in conferring robust Cd tolerance in Arabidopsis, while vacuolar sequestration in shoots provides supportive protection.
期刊介绍:
Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as:
- genomics and genetics
- metabolism
- cell biology
- abiotic and biotic stress
- phytopathology
- gene transfer and expression
- molecular pharming
- systems biology
- nanobiotechnology
- genome editing
- phenomics and synthetic biology
The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.