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Bacillus pasteurii

◑ Environmental
Sequenced
Public genome assembly available

Bacillus pasteurii (now reclassified as Sporosarcina pasteurii) is a urease-producing soil bacterium studied primarily for its role in microbially induced calcite precipitation, a process used in construction materials and environmental engineering, and is not a recognized probiotic organism. Research on this species focuses on urease biochemistry, environmental bioremediation, and, in one in vitro study, polypropylene microplastic degradation. It has no established probiotic safety profile and is not used in human supplementation.

Where it's been studied

Share of this strain's 6 body-system-tagged papers that concern each system. Research coverage, not measured effect.

Symptoms in the research

Share of this strain's 5 symptom-tagged papers that mention each symptom or condition. Research coverage, not evidence of benefit.

Research

162 papers reference this strain in the probiotic database.

Match confidence
2026 IN_VITRO
Experimental data related to the removal of U(VI)
· Mendeley Data
2025 IN_VITRO
Microbial-modified coal-based solid waste backfill material: Mechanical improvement and its effect on the water environment
· Journal of Cleaner Production
2025 IN_VITRO
Effect of freeze-thaw cycles on engineering properties of nano-SiO2 enhanced microbially induced calcium carbonate precipitation in kaolinite clay
· Cold Regions Science and Technology
2025 IN_VITRO
Optimizing Bacillus pasteurii spore germination and unveiling impermeability mechanisms in microbial self-healing concrete
· Frontiers in Microbiology
2025 IN_VITRO
Sustainable reuse of coal mine overburden stabilised with microbially induced calcite precipitation
· Proceedings of the Institution of Civil Engineers - Ground Improvement
2025 IN_VITRO
Rapid and highly effective self-repair of concrete cracks based on magnetic microbes
· Magazine of Concrete Research
2025 OTHER
Bio-Enhanced Lightweight Concrete: Self-Healing and Mechanical Performance
· SSRN Electronic Journal
2025 IN_VITRO
Biomineralization and High Calcite Formation by Bacillus: Implications for Fiber Bio-Concrete Applications
· Fusion Journal of Engineering and Sciences
2025 OTHER
The synergistic performance and mechanism of coal dust suppression contributed by Bacillus pasteurii assisted with a potent indigenous Lysinibacilus MN-5
· Journal of environmental chemical engineering
2024 IN_VITRO
Research on the Effect of Natural Seawater in Domesticating Bacillus pasteurii and Reinforcing Calcareous Sand
· Journal of Marine Science and Engineering
2024 IN_VITRO
Biodegradation of polypropylene microplastics by Bacillus pasteurii isolated from a gold mine tailing
· Emerging contaminants
2024 IN_VITRO
Synthesis of 2-aminothiazole sulfonamides as potent biological agents: Synthesis, structural investigations and docking studies
· Heliyon
2024 IN_VITRO
Alkali-Resistant Domestication of Bacillus pasteurii and Its Growth Kinetics in Sodium Carboxymethyl Cellulose Solid-Free Drilling Fluids
· ACS Omega
2024 IN_VITRO
Bio-Grouting: Advancing Soil Stabilization for Eco-Friendly Infrastructure
· Journal of Civil Engineering and Urbanism
2024 IN_VITRO
Temperature- and alkali-resistant induced domestication of Bacillus pasteurii in drilling fluid and its borehole wall enhancement properties
· Petroleum Science
2024 IN_VITRO
Biocalcification of Sandy Gypseous Soil by Bacillus Pasteurii
· Salud Ciencia y Tecnología - Serie de Conferencias
2024 IN_VITRO
Microbial-Induced Calcium Carbonate Precipitation and Basalt Fiber Cloth Reinforcement Used for Sustainable Repair of Tunnel Lining Cracks
· Buildings
2023 IN_VITRO
Identification of coastal pesticide pollutants as potent inhibitors of Bacillus pasteurii urease mediated calcium carbonate precipitation: a computational approach
· Journal of Biomolecular Structure and Dynamics
2023 IN_VITRO
Performance of Self-Healed Alkali-Activated Slag Mortar at Elevated Temperature
· Journal of Materials in Civil Engineering
2023 IN_VITRO
A Binary Microorganism Self-Healing Agent for Concrete Cracks Comprising Bacillus pasteurii and Saccharomyces cerevisiae
· Journal of Materials in Civil Engineering
Browse all 162 papers →

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