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April 27, 2026ENVIRONMENTAL SYSTEMS RESEARCH1 citationsOpen Access

Ureolytic bacteria for MICP application to iron-rich slag materials for waste stabilization and carbon sequestration

SWSamantha M. WilcoxCMCatherine N. MulliganCNCarmen Mihaela Neculita

Key Points

  • This research aims to assess the application of ureolytic bacteria in microbial induced carbonate precipitation (MICP) for stabilizing and sequestering carbon in iron-rich slag materials.
  • Evaluated ecotoxicity of two iron-rich slag materials (S1 and S2) prior to bacterial screening.
  • Conducted bacterial screening and enrichment experiments to stimulate growth of Bacillus cereus from S1.
  • Compared the growth of stimulated Bacillus cereus with ureolytic Sporosarcina pasteurii.
  • S1 showed bacterial toxicity but not plant toxicity, while S2 exhibited high toxicity to both.
  • Bacillus cereus was enriched from S1 but S2 remained sterile after one enrichment cycle.
  • Sporosarcina pasteurii demonstrated higher growth and tolerance across various conditions compared to Bacillus cereus.

Abstract

Microbial induced carbonate precipitation (MICP) is a novel soil and cement strengthening technique for civil and geotechnical engineering fields. Recently emerging is the use of MICP as a biological remediation strategy to immobilize contaminants, strengthen metalliferous waste, and sequester carbon dioxide from mining activities. MICP has a broad spectrum of benefits, but application of bacteria species to inhospitable mining wastes is challenging. Most studies applying MICP to metal and/or metalloid contaminated waste utilize a biostimulation approach. This is not always feasible based on the toxic nature of the waste. This study evaluated the ecotoxicity of 2 iron-rich slag materials prior to bacterial screening and enrichment. S1 showed bacterial toxicity but not plant toxicity, while S2 showed high bacterial and plant toxicity. Bacterial screening found a lack of significant DNA in both iron-rich slag materials. Bacterial enrichment was able to stimulate growth of Bacillus cereus (PZ013063.1) from S1, while S2 remained sterile after 1-cycle of enrichment. Stimulated Bacillus cereus was compared to exogeneous, ureolytic Sporosarcina pasteurii, in which the latter showed higher bacterial growth and tolerance to a wider range of environmental conditions. Furthermore, since Bacillus cereus exhibited phenotypic heterogeneity of the urease gene during isolation, bioaugmentation using Sporosarcina pasteurii for MICP application to iron-rich slag materials is recommended.

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Cite This Study

Wilcox et al. (2026) studied this question.

synapsesocial.com/papers/69eefcf4fede9185760d3c6chttps://doi.org/10.1186/s40068-026-00472-4
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