Biochar loaded with bacteria enhanced Cd/Zn phytoextraction by facilitating plant growth and shaping rhizospheric microbial community

Environ Pollut. 2023 Jun 15:327:121559. doi: 10.1016/j.envpol.2023.121559. Epub 2023 Apr 4.

Abstract

Biochar and metal-tolerant bacteria have been widely used in the remediation of heavy metal contaminated soil. However, the synergistic effect of biochar-functional microbes on phytoextraction by hyperaccumulators remains unclear. In this study, the heavy metal-tolerant strain Burkholderia contaminans ZCC was selected and loaded on biochar to produce biochar-resistant bacterial material (BM), and the effects of BM on Cd/Zn phytoextraction by Sedum alfredii Hance and rhizospheric microbial community were explored. The results showed that, BM application significantly enhanced the Cd and Zn accumulation of S. alfredii by 230.13% and 381.27%, respectively. Meanwhile, BM alleviated metal toxicity of S. alfredii by reducing oxidative damage and increasing chlorophyll and antioxidant enzyme activity. High-throughput sequencing revealed that BM significantly improved soil bacterial and fungal diversity, and increased the abundance of genera with plant growth promoting and metal solubilizing functions such as Gemmatimonas, Dyella and Pseudarthrobacter. Co-occurrence network analysis showed that BM significantly increased the complexity of the rhizospheric bacterial and fungal network. Structural equation model analysis revealed that soil chemistry property, enzyme activity and microbial diversity contributed directly or indirectly to Cd and Zn extraction by S. alfredii. Overall, our results suggested that biochar- B. contaminans ZCC was able to enhance the growth and Cd/Zn accumulation by S. alfredii. This study enhanced our understanding on the hyperaccumulator-biochar-functional microbe interactions, and provided a feasible strategy for promoting the phytoextraction efficiency of heavy metal contaminated soils.

Keywords: Heavy metal; Microbe loaded biochar; Phytoextraction; Rhizospheric microbial community; Sedum alfredii Hance.

MeSH terms

  • Bacteria
  • Biodegradation, Environmental
  • Cadmium / analysis
  • Cadmium / toxicity
  • Charcoal / chemistry
  • Metals, Heavy* / analysis
  • Microbiota
  • Rhizosphere*
  • Sedum / microbiology
  • Soil / chemistry
  • Soil Pollutants* / analysis
  • Zinc / analysis

Substances

  • biochar
  • Cadmium
  • Metals, Heavy
  • Soil
  • Soil Pollutants
  • Zinc
  • Charcoal