Responses of soil and rhizosphere microbial communities to Cd-hyperaccumulating willows and Cd contamination

Author:

Zhou Jie,Zhang RuiQing,Wang Pu,Gao Yunpeng,Zhang Jue

Abstract

Abstract Background The pollution of soil by heavy metals, particularly Cd, is constitutes a critical international environmental concern. Willow species are renowned for their efficacy in the phytoremediation of heavy metals owing to their high Cd absorption rate and rapid growth. However, the mechanisms underlying microbial regulation for high- and low-accumulating willow species remain poorly understood. Therefore, we investigated the responses of soil and rhizosphere microbial communities to high- and low-Cd-accumulating willows and Cd contamination. We analyzed soil properties were analyzed in bulk soil (SM) and rhizosphere soil (RM) planted with high-accumulating (H) and low-accumulating (L) willow species. Results Rhizosphere soil for different willow species had more NH4+ than that of bulk soil, and RM-H soil had more than RM-L had. The available phosphorus content was greater in hyper-accumulated species than it was in lower-accumulated species, especially in RM-H. Genome sequencing of bacterial and fungal communities showed that RM-L exhibited the highest bacterial diversity, whereas RM-H displayed the greatest richness than the other groups. SM-L exhibited the highest diversity and richness of fungal communities. Ralstonia emerged as the predominant bacterium in RM-H, whereas Basidiomycota and Cercozoa were the most enriched fungi in SM-H. Annotation of the N and C metabolism pathways revealed differential patterns: expression levels of NRT2, NarB, nirA, nirD, nrfA, and nosZ were highest in RM-H, demonstrating the effects of NO3-and N on the high accumulation of Cd in RM-H. The annotated genes associated with C metabolism indicated a preference for the tricarboxylic pathway in RM-H, whereas the hydroxypropionate-hydroxybutyrate cycle was implicated in C sequestration in SM-L. Conclusions These contribute to elucidation of the mechanism underlying high Cd accumulation in willows, particularly in respect of the roles of microbes and N and C utilization. This will provide valuable insights for repairing polluted soil using N and employing organic acids to improve heavy metal remediation efficiency.

Funder

the Independent Innovation Projects of the Jiangsu Academy of Forestry

the Key Research and Development Program of the National Forestry and Grassland Administration

Publisher

Springer Science and Business Media LLC

Reference49 articles.

1. Fortin FM, Labrecque M, Hijri M. Ectomycorrhizal Fungi dominated the Root and Rhizosphere Microbial communities of two Willow cultivars grown for six-years in a mixed-contaminated environment. J Fungi. 2022;8:145–145.

2. Cong C, Yang N, Wang H, Wang H. A field experiment to improve arsenic and cadmium enrichment in centipede grass and lobelia by combined application of indoleacetic acid and agonist. J Ecol Environ. 2021;30:1299–309.

3. Dong M, Sun Y, Feng X, Wang Y, Hu B, Zhou Q. Comparison of cadmium tolerance and accumulation characteristics of two ecotypes of vetiver. Northwest J Bot. 2022;42:1330–8.

4. Hu Z, Yang Y, Zhu X, Hao Y. Effects of Pb, Zn on antioxidant enzyme activities of hyper-enriched plant (lesser Scale Mossweed). J Soil Water Conserv. 2007;21:86–91.

5. Qiu X, Fang S, Chen K, Lin M, Huang D, Li Y, Wang L. Effects of intercropping different plants with mustard on mustard-soil cadmium content. Fujian Agricultural Sci Technol. 2022;53:63–9.

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