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March 8, 20265 citations

Microbial-induced calcite precipitation by indigenous alkaliphilic bacteria: a dual-enzyme strategy for crack-healing in cementitious materials.

MSMohammad ShiriABAbbas BahariMSMohammad Mahdi Khani Sarbangholi

Key Points

  • The aim is to explore a dual-enzyme approach to enhance microbial-induced calcite precipitation for healing cracks in concrete.
  • Screened over 200 indigenous bacterial isolates for urease and carbonic anhydrase activities.
  • Developed a dual-enzyme activity index to rank calcification potential.
  • Identified four robust strains capable of surviving in high pH conditions.
  • Conducted mechanical tests on bio-treated mortar specimens.
  • Top strains precipitated up to 89% more CaCO3 than controls.
  • Bio-treated specimens achieved compressive strength of 46.8 MPa, exceeding the cracked control of 34.2 MPa.
  • Ultrasonic pulse velocity, SEM, and XRD analyses confirmed effective crack healing.

Abstract

Microbial-induced calcite precipitation (MICP) offers a sustainable strategy for extending the service life of concrete through autonomous crack healing, yet the high alkalinity of cementitious environments restricts microbial viability. In this study, more than 200 indigenous bacterial isolates collected from extreme environments across Iran were systematically screened for urease and carbonic anhydrase (CA) activities. A dual-enzyme activity index (EAI) was developed to quantitatively rank their calcification potential. Four robust spore-forming strains-Bacillus subtilis, Sporosarcina pasteurii, Bacillus sphaericus, and the environmental isolate E10.2-were identified as top candidates based on high EAI values, sporulation capacity, and survival at pH 13.5. These strains retained at least 70% of their enzymatic activity after alkaline exposure and precipitated up to 89% more CaCO3 than controls. When incorporated into mortar, bio-treated specimens reached strength levels slightly exceeding the uncracked control under the tested conditions (46.8 MPa at 28 days compared to 34.2 MPa in cracked controls). Ultrasonic pulse velocity, SEM, and XRD analyses confirmed dense CaCO3 bridging within healed cracks. This study establishes a performance-based framework for selecting dual-enzyme-producing alkaliphilic bacteria for durable, self-healing concrete.

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Cite This Study

Shiri et al. (2026) studied this question.

synapsesocial.com/papers/69ada8c2bc08abd80d5bc0cdhttps://doi.org/10.1007/s00253-026-13764-7
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