Authors
Beibei Zhao, Mei Li, Dan Liu, Chuanhuan Liu, Jie Jiang, Xiao Han, Chuankui Song, Yingzhu Liu
Published in
Plant cell reports. Volume 45. Issue 10. Sep 06, 2026. Epub Sep 06, 2026.
Abstract
polyglutamic acid-functionalized carbon dots improve Cadmium tolerance in Houttuynia cordata by reducing Cadmium accumulation, restoring physiological functions, and reshaping rhizosphere microbial communities. Cadmium (Cd) pollution significantly inhibits the growth and development of H. cordata and poses a serious threat to the safe production of this medicinal plant. In this study, polyglutamic acid-functionalized carbon dots (PGA-CDs) were synthesized by the hydrothermal method, and the mechanism of their role in alleviating Cd stress in H. cordata was systematically investigated. The results showed that compared with the Cd group, the biomass of H. cordata in the Cd+PGA-CDs group significantly increased, and the Cd2+ concentration in the plant decreased. At the same time, PGA-CDs effectively removed reactive oxygen species and regulated the activity of related antioxidant enzymes to alleviate oxidative damage. Moreover, PGA-CDs significantly alleviated the damage to the ultrastructure of chloroplasts caused by Cd stress and enhanced the photosynthetic capacity of the plants. Transcriptome analysis indicated that PGA-CDs treatment significantly changed the expression patterns of genes related to photosynthesis, secondary metabolism, lipid metabolism, and signal response, and regulated the expression of multiple transcription factors and genes related to metal ion homeostasis and transport. Additionally, PGA-CDs increased the α diversity of the rhizosphere microbial community and promoted the enrichment of microbial groups related to plant symbiosis or environmental adaptation, such as the Pseudomonadota, Bacteroidota and Verrucomicrobiota. Through integrated analysis, it further revealed the potential synergistic relationship between gene expression changes, rhizosphere microbial composition, and plant physiological indicators. This study provides new insights into the use of nanomaterials to enhance the adaptability of plants to heavy metals stress.
PMID:
42701924
Bibliographic data and abstract were imported from PubMed on 07 Sep 2026.
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