Role of Soil and Foliar‐Applied Carbon Dots in Plant Iron Biofortification and Cadmium Mitigation by Triggering Opposite Iron Signaling in Roots

Author:

Zhu Yixia1,Zhang Qian2,Li Yanjuan1,Pan Zhiyuan1,Liu Chong1,Lin Dasong2,Gao Jia1,Tang Zhonghou3,Li Zongyun1,Wang Ruigang2,Sun Jian1ORCID

Affiliation:

1. Department of Plant Biology School of Life Sciences Jiangsu Normal University Xuzhou Jiangsu Province 221116 China

2. Agro‐Environmental Pollution Remediation Research Center Agro‐Environmental Protection Institute, Ministry of Agriculture and Rural Affairs Tianjin 300191 China

3. Department of Sweetpotato Physiology Cultivation Xuzhou Institute of Agricultural Sciences in Jiangsu Xuhuai District Xuzhou Jiangsu Province 221122 China

Abstract

AbstractIn China, iron (Fe) availability is low in most soils but cadmium (Cd) generally exceeds regulatory soil pollution limits. Thus, biofortification of Fe along with mitigation of Cd in edible plant parts is important for human nutrition and health. Carbon dots (CDs) are considered as potential nanomaterials for agricultural applications. Here, Salvia miltiorrhiza‐derived CDs are an efficient modulator of Fe, manganese (Mn), zinc (Zn), and Cd accumulation in plants. CDs irrigation (1 mg mL−1, performed every week starting at the jointing stage for 12 weeks) increased Fe content by 18% but mitigated Cd accumulation by 20% in wheat grains. This finding was associated with the Fe3+‐mobilizing properties of CDs from the soil and root cell wall, as well as endocytosis‐dependent internalization in roots. The resulting excess Fe signaling mitigated Cd uptake via inhibiting TaNRAMP5 expression. Foliar spraying of CDs enhanced Fe (44%), Mn (30%), and Zn (19%) content with an unchanged Cd accumulation in wheat grains. This result is attributed to CDs‐enhanced light signaling, which triggered shoot‐to‐root Fe deficiency response. This study not only reveals the molecular mechanism underlying CDs modulation of Fe signaling in plants but also provides useful strategies for concurrent Fe biofortification and Cd mitigation in plant‐based foods.

Funder

Jiangsu Agricultural Science and Technology Innovation Fund

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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