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Microbial Remediation of Heavy Metals in Polluted Soil

Published February 1, 2025 Β· 1 min read Β· 1 views DOI: 10.70130/cast.2024.7110
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Kumar, Aman, Rani, Mansi, Thakur, Abhay Kumar (2025). Microbial Remediation of Heavy Metals in Polluted Soil. https://doi.org/10.70130/cast.2024.7110
Kumar, Aman, Rani, Mansi, Thakur, Abhay Kumar. "Microbial Remediation of Heavy Metals in Polluted Soil.". DOI: 10.70130/cast.2024.7110.
Kumar, Aman, Rani, Mansi, Thakur, Abhay Kumar. "Microbial Remediation of Heavy Metals in Polluted Soil.". https://doi.org/10.70130/cast.2024.7110.
@article{kumar2025microbial,
  title = {Microbial Remediation of Heavy Metals in Polluted Soil},
  author = {Kumar, Aman and Rani, Mansi and Thakur, Abhay Kumar},
  year = 2025,
  journal = {},
  volume = 07,
  number = 01,
  pages = 135-148,
  doi = 10.70130/cast.2024.7110,
  url = oai:ojs2.pubs.rsyn.org:article/42,
  language = en
}
Download .bib
TY  - JOUR
TI  - Microbial Remediation of Heavy Metals in Polluted Soil
AU  - Kumar, Aman
AU  - Rani, Mansi
AU  - Thakur, Abhay Kumar
PY  - 2025
DA  - 2025-02-01
VL  - 07
IS  - 01
SP  - 135-148
DO  - 10.70130/cast.2024.7110
UR  - oai:ojs2.pubs.rsyn.org:article/42
AB  - Heavy metal contamination poses a significant threat to the environment and public health because of its persistent toxicity and the bioaccumulation of pollutants. Microbial remediation, leveraging the metabolic capabilities of microorganisms, has emerged as an efficient and sustainable path to reduce and remove substantial, heavy metal pollution. This chapter provides a comprehensive overview of microbial remediation studies, focusing on the mechanisms used by various bacteria, fungi, and algae to remove toxic substances and immobilize heavy metals. This chapter deals with several biochemical pathways in biosorption, bioaccumulation, biotransformation, and bioprecipitation. The role of genetic engineering and synthetic biology in increasing the microbial ability for targeted heavy metal removal was highlighted. The case studies explained here are the details of the booming field application of microbial remediation and the analysis of challenges and limitations in scaling up these technologies. In this chapter, insight for future research direction emphasizes the need for an interdisciplinary approach to optimize and integrate microbial remediation for its maximum efficacy within the broader environmental management framework discussed in the conclusion.
LA  - en
ER  - 
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πŸ€– AI Key Takeaways & Research Insights

Automated AI Analysis

πŸ’‘ Core Finding

Heavy metal contamination poses a significant threat to the environment and public health because of its persistent toxicity and the bioaccumulation of pollutants.

πŸ”¬ Methodology

Microbial remediation, leveraging the metabolic capabilities of microorganisms, has emerged as an efficient and sustainable path to reduce and remove substantial, heavy metal pollution.

🎯 Domain Impact

In this chapter, insight for future research direction emphasizes the need for an interdisciplinary approach to optimize and integrate microbial remediation for its maximum efficacy within the broader...

Abstract

Heavy metal contamination poses a significant threat to the environment and public health because of its persistent toxicity and the bioaccumulation of pollutants. Microbial remediation, leveraging the metabolic capabilities of microorganisms, has emerged as an efficient and sustainable path to reduce and remove substantial, heavy metal pollution. This chapter provides a comprehensive overview of microbial remediation studies, focusing on the mechanisms used by various bacteria, fungi, and algae to remove toxic substances and immobilize heavy metals. This chapter deals with several biochemical pathways in biosorption, bioaccumulation, biotransformation, and bioprecipitation. The role of genetic engineering and synthetic biology in increasing the microbial ability for targeted heavy metal removal was highlighted. The case studies explained here are the details of the booming field application of microbial remediation and the analysis of challenges and limitations in scaling up these technologies. In this chapter, insight for future research direction emphasizes the need for an interdisciplinary approach to optimize and integrate microbial remediation for its maximum efficacy within the broader environmental management framework discussed in the conclusion.

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