Abstract
In this review, we discuss microbiological and molecular concepts of Microbially Induced Calcium Carbonate Precipitation (MICP) and their role in bioconcrete. MICP is a widespread biochemical process in soils, caves, freshwater, marine sediments, and hypersaline habitats. MICP is an outcome of metabolic interactions between diverse microbial communities with organic and/or inorganic compounds present in the environment. Some of the major metabolic processes involved in MICP at different levels are urea hydrolysis, denitrification, dissimilatory sulfate reduction, and photosynthesis. Currently, MICP directed by urea hydrolysis, denitrification, and dissimilatory sulfate reduction has been reported to aid in the development of bioconcrete and has demonstrated an improvement in the mechanical and durability properties of concrete. Bioconcrete is a promising sustainable technology which reduces negative environmental impact caused by CO2 emissions from the construction sector, as well as in terms of economic benefits by way of promoting a self-healing process of concrete structures. Among the metabolic processes mentioned above, urea hydrolysis is the most applied in concrete repair mechanisms. MICP by urea hydrolysis is induced by a series of reactions driven by urease (Ur) and carbonic anhydrase (CA). Catalytic activity of these two enzymes depends on diverse parameters, which are currently being studied under laboratory conditions to better understand the biochemical mechanisms involved and their regulation in microorganisms. It is clearly evident that microbiological and molecular components are essential to improving the process and performance of bioconcrete.
Introduction
Concrete is the most used construction material due to its resistance, durability and low cost in comparison to other construction materials. Annually, more than 10 billion tons of concrete are used at a global level and experts have predicted that the concrete demand is likely to grow to 16 billion tons in 2050 The current technology employed by the construction industry generates a negative impact on the global environment and economy. The industrial process involved in cement production from lime (precursor of concrete), consumes between 2 and 3% of the global energy demand, generating 0.73–0.99 t CO2/t of cement produced, which accounts for about 8–10% of the global anthropogenic emissions of CO2 and 3.4% of the total CO2 global emissions (Achal et al., ; Aprianti, ; Miller et al., ). Increase in consumption of concrete is a consequence of the susceptibility of infrastructures to physical, chemical and biological factors such as temperature variations, exposure to corrosive and radioactive substances, aggressive gases, natural disasters, and microbial activity (Jroundi et al., ; Narayanasamy et al., ; Achal et al., ; Siddique et al., 2016; Turick and Berry, 2016; Van Tittelboom et al., 2016). These factors cause microcracks formation, which affect mechanical and durability properties of concrete such as compressive strength, flexural strength, and permeability, consequently reducing the useful life of concrete (Achal and Mukherjee, ) and increasing the cost of the maintenance and repair of infrastructures. Although the global cost of concrete production ranges between € 60/m3 to € 75/m3, the average cost for crack repair in Europe is about € 130/ m3 (Silva et al., 2015), which reveals the high cost involved in the maintenance and repair of concrete structures. In the last two decades, incorporation of a bacterial metabolic process known as Microbially Induced Calcium Carbonate Precipitation (MICP) has emerged as an alternative method to reduce the cost and environmental impact. Bioconcrete production is based on the addition of bacteria with the ability to induce the formation of minerals (biomineralization) from the cement matrix. This process is facilitated through the ingress of water, CO2 and other chemical substances such as SO4 and , among others (De Muynck et al., ; Jonkers et al., ; Dhami et al., ; Achal and Mukherjee, ; Bundur et al., ; Verma et al., 2015), aids in self-healing and improves the physical and mechanical properties of the concrete structure. Of late, several reviews have been published on biotechnological aspects of bioconcrete (Zhu and Dittrich, 2016; Joshi et al., ; Krajewska, ; Jain and Arnepalli, ), but microbiological and molecular concepts of MICP and the mechanisms of MICP by different microbial groups have not yet been reported. In this review, types of biomineralization processes, metabolic pathways employed by diverse microbial groups and the genetic factors in relation to urease and carbonic anhydrase activities associated with MICP are discussed.
Biomineralization
The biomineralization process consists of the biological synthesis of minerals by microorganisms. In nature, biomineralization processes are widespread in different environments and they involve microorganisms of different taxonomies and with diverse metabolic pathways. Carbonates, phosphates, silicates, sulfates, sulfides, oxides, or hydroxides along with a variety of cations such as Ca2+, Fe, Mg2+, and MnO2 form biominerals through microbial activity. The process also involves organic macromolecules such as proteins, polysaccharides, glycoproteins, and proteoglycans, which function as skeletal support (Fu et al., ; Ghosh et al., ; Sarayu et al., 2014). Biomineralization is divided into three mechanisms: Biologically Controlled Mineralization (BCM) (Figure 1), Biologically Induced Mineralization (BIM) (Figure 2), and Biologically Mediated Mineralization (BMM) (Figure 3) (Dupraz et al., ; Achal et al., ). In BCM (Figure 1), the metabolic activity of the microorganism controls nucleation, composition, localization, and the morphology of biominerals. This mechanism could be an extracellular (BCMe) (Figure 1A), intracellular (BCMin) (Figure 1B) and an intercellular (BCMint) process (Figure 1C) with the participation of organic macromolecules exopolysaccharides (EPS) or vesicles. The importance of the regulation of genes on structure, composition, and intrinsic specific morphology of biominerals has also been mentioned previously (Weiner and Dove, 2003).
Figure 1
Figure 2
Figure 3
In Biologically Induced Mineralization (BIM), minerals are precipitated indirectly due to the interactions between metabolic byproducts of microorganisms and ions present in the environment (Figure 2). However, the participation of microbial cells in composition, localization, and nucleation of minerals is limited. The minerals generated by BIM are characterized by their wide range in size of particulates, poor crystallinity, and morphology (Weiner and Dove, 2003).
In Biologically Mediated Mineralization (BMM), mineral formation is the result of an interaction between an organic matrix and organic and/or inorganic compounds without the necessity of extracellular or intracellular biological activity (Figure 3). Dupraz et al. (
Microbially Induced Calcium Carbonate Precipitation (MICP)
In MICP, calcium carbonate mineral formation is the result of the interaction among different metabolic byproducts, viz., (HCO3−) and calcium ions present in the microenvironment (Perito and Mastromei, 2011; Achal et al.,
MICP has been reported as part of numerous biotechnological applications such as remediation of soil and water contaminated by heavy metals, metalloids and cations (Ca2+) (Achal et al.,
Bioconcrete
Adolphe et al. (
In last two decades, there are various studies on the different implementation strategies, to enhance the performance of bioconcrete through the protection of cells such as the addition of nutrient sources and different materials e.g., polyurethane, sol-gel ceramics, calcium sulphoaluminate cement, and magnetic iron oxide nanoparticle (IONS). These methods can benefit the bacteria to survive under harsh concrete matrix conditions such as a high pH (~13.5), limitation of nutrient and water ingress. Bang et al. (
Earlier, to reduce the costs of nutrients added, Achal et al. (
In the UK, the Resilient Materials for Life project led by Cardiff University in partnership with the universities of Cambridge, Bath and Bradford, have developed four self-healing techniques; the use of microcapsules containing mineral healing agents, bacterial healing, the use of a shape memory polymer based system for crack closure and the delivery of a mineral healing agent through a vascular flow network. They observed that all four techniques showed significant results of accelerated crack healing in the range of 14–28% and the Whole-Life Costing (WLC) analysis indicated a ~12% reduction in the cost of repairs and maintenance (Teall et al., 2016; Al-Tabbaa et al.,
Adolphe et al. (
Moreover, the potential of a protein known as “Bioremediase,” which promotes biosilicification has been reported. Bioremediase is a silica leaching enzyme, and is 78% similar to bovine carbonic anhydrase II, but does not show carbonic anhydrase activity (Biswas et al.,
A summary of different nutrients used in bioconcrete studies and their effect on bioconcrete characters are presented in Table 1.
Table 1
| Bacteria | Metabolism | Nutrients | Incorporation of bacteria in concrete | Improvement of mechanical property of concrete | Decrement of water absorption | Self-healing of cracks | References |
|---|---|---|---|---|---|---|---|
| Sporosarcina pasteurii | Lactose Mother Liquor wastewater, Urea, Nutrient broth, Yeast Extract | Direct | ~17% CS | - | 24.0–28.4% of the total weight | Achal et al., | |
| Sporosarcina pasteurii | Corn Steep Liquor wastewater, Nutrient broth, Yeast extract | Direct | ~35% CS | - | 14–30% of the total weight | Achal et al., | |
| Sporosarcina pasteurii | Urea, Yeast Extract | Direct | ~33% CS | ~33% | 30–100 μm (size of calcite) | Abo-El-Enein et al., | |
| ACRN | Urea, Yeast extract | Direct | ~35% CS | - | 10–30 μm (size of calcite) | Narayanasamy et al., | |
| Bacillus sphaericus | Urea Hydrolisis | Urea, Yeast Extract, Calcium Nitrate | Immobilized | - | >40% | 48–80% of the total weight | Wang et al., 2014 |
| Bacillus mucilaginous | Saccharose, Yeast Extract, Calcium Nitrate | Immobilized | ~56–72% FS | - | 87.5% of the total weight | Chen et al., | |
| Enterobacter sp. | Lentil seeds, Sugar, Urea, Beef extract. | Direct | ~23% FS | ~15.40% | - | Charpe et al., | |
| ACRN | Urea, Yeast extract | Direct | 14.94% CS | - | - | Castro-Alonso et al., | |
| Bacillus cereus | Tofu wastewater, Nutrient Broth | Direct | 27.8% CS | - | - | Fang et al., | |
| Sporosarcina pasteurii ATCC 11859 | Urea, Peptone, Beef extract. | Immobilized | 84% CS | ~50% | 417 μm (width of crack healing) | Xu and Wang, 2018 | |
| Pseudomona aeruginosa and Diaphorobacter nitroreducens | Denitrification | Urea, Calcium formate, Calcium nitrate, Yeast extract | Immobilized | - | ~42% (Pseudomonas aeruginosa) and ~47% (Diaphorobacter nitroreducens) | 100–500 μm (width of crack healing) | Ersan et al., |
| ACDC | Urea, Calcium formate, Calcium nitrate, Yeast extract | Direct | - | - | 400 μm (width of crack healing) | Ersan et al., | |
| SRB | Sulfate reduction | Nutrient broth | Direct | ~13% CS | ~8.5% | - | Alshalif et al., |
| Nutrient broth | Direct | 60.87% CS and 52.30% FS | - | - | Tambunan et al., 2019 | ||
| Bacterium BKH1 | Silicification | Nutrient broth, Tryptone | Direct | ~39.4% CS and 33% FS | ~50% | - | Majumdar et al., |
| T-Bacillus subtilis | Peptone, Yeast extract | Direct | ~16.6% CS | - | ~85 nm (diameter of gehlenite) | Sarkar et al., 2015 | |
| Bacterium BKH4 | Nutrient broth, Tryptone | Direct | >50% | ~61.4% | - | Sarkar et al., 2019 | |
| Bacillus cohnii | ND | Absence of nutrients | Direct | ~40% | ~22% | 16% beidillite, and 37% gismondine (width of crack healing) | Chaurasia et al., |
Nutrients and their effect on compressive strength, flexural strength, water permeability, and self-healing of bioconcrete matrix.
CS, compressive Strength; FS, Flexural Strength; ND, Not determined.
On the other hand, Chaurasia et al. (
Apart from the advantages discussed above, bioconcrete has also been reported to lower the contribution of carcinogens (one-thirtieth), ecotoxicity (one-tenth), and fossil fuels (six-sevenths) compared to traditional concrete (Gonsalves,
Major Microbial Metabolic Processes Involved in MICP
The major microbial metabolic processes involved in MICP are urea hydrolysis, ammonification of amino acids, denitrification, dissimilatory sulfate reduction and photosynthesis (Castanier et al.,
Urea Hydrolysis
A series of complex reactions in urea hydrolysis are driven by urease (EC 3.5.1.5) and carbonic anhydrase (EC 4.2.1.1) enzymes (Figure 4). One mole of urea is hydrolyzed by urease (UE) to one mole of ammonia and carbamate (Equation 1), and the carbamate is spontaneously hydrolyzed to produce one mole of ammonia and carbonic acid (Equation 2). Carbonic acid is converted to bicarbonate (Equation 3) by carbonic anhydrase (CA) and two moles of ammonium and hydroxide are formed due to ammonia hydrolysis (Equation 4). Consequently, pH is increased around the cell and induces precipitation of calcium carbonate in presence of soluble Ca2+ (Equations 5–7). Under unfavorable conditions, the cell survives by allowing the entry and accumulation of calcium ions, resulting in an excessive expulsion of protons. Subsequently, the cells actively export calcium and compensate the loss of protons. A low concentration of protons and a high concentration of Ca2+ in the microenvironment is required for secretion of carbonate ions while the supersaturation of carbonate induces precipitation of calcium carbonate on the surface of the cell. Exopolymers, biofilms and even inactive spores can provide nucleation sites for the above-mentioned reactions (Van Tittelboom et al., 2010; Kim et al.,
With respect to kinetics parameters (Km and Vmax) of UE and CA, a wide range have been reported. Stocks-Fischer et al. (1999) observed that pH influenced UE affinity to the substrate as well as the enzyme activity of Sporosarcina pasteurii. UE activity was found to be decreased at pH 7.0 and with Km and Vmax values of 41.6 mM and 3.55 mM min−1 mg−1 of protein, respectively. However, the affinity improved with pH increase, with a Km of 26.2 mM and Vmax of 1.72 mM min−1 mg−1 at pH of 8.3–9.0. Bachmeier et al. (
Figure 4

Schematic diagram of MICP formation mediated by urease and carbonic anhydrase.
Calcite, aragonite, and vaterite are some of the most representative biomineral polymorphs with different types of crystallization such as rhombohedral, orthorhombic, and hexagonal (Sarayu et al., 2014). Earlier, Achal et al. (
Table 2
| Bacteria | Enzyme | Enzyme state | Activity | Km (mM) | Vmax (Mm min−1 mg−1) | CaCO3 precipitation | References |
|---|---|---|---|---|---|---|---|
| Sporosarcina pasteurii | UE | Free | NR | 26.2 | 1.72 | 0.72 mM | Stocks-Fischer et al., 1999 |
| Escherichia coli | UE | Free Immobilized | NR | 17.3 22.9 | 1.57 0.73 | 25 mM | Bachmeier et al., |
| Sporosarcina pasteurii | UE | Free | 412 U ml−1 | - | - | 25–30% of the total weight | Achal et al., |
| Bacillus pumillus | CA | Free Immobilized | 82.5 U ml−1 52 U ml−1 | 1.251 6.143 | 0.02029 0.02857 | 61 mg calcite/cell dry mass 20.8 mg calcite/cell dry mass | Yadav et al., 2011 |
| Bacillus megaterium | UE CA | Free | 553 U ml−1 1.87 U mg−1 | NR | NR | 2.26 mg calcite/cell dry mass | Achal et al., |
| Bacillus simplex | UE CA | Free | 493 U ml−1 1.41 U mg−1 | NR | NR | 1.8 mg calcite/cell dry mass | Achal et al., |
| Bacillus megaterium | UE CA | Free | 690 U ml−1 115 U ml−1 | NR | NR | 32% of the total weight | Dhami et al., |
Urease and carbonic anhydrase activity, Km, Vmax, and CaCO3 precipitation of free and immobilized systems.
Ammonification of Amino Acids
Another microbial mechanism is ammonification of amino acids, and in this process, microbial activity produces CO2 and ammonia during metabolism of amino acids (Equation 8). Hydrolysis of ammonia produces ammonium and hydroxide ions around the cell (Equation 9), leading to their supersaturation, which consequently favors the precipitation of calcium carbonate (Equations 10, 11) (Zhu and Dittrich, 2016).
Myxococcus xanthus is reported to use this mechanism during its growth in liquid and solid mediums and resulting in different polyforms (Rodriguez-Navarro et al., 2003; Chekroun et al.,
Denitrification
In denitrification, MICP results from the oxidation of organic matter using NO3− as a final electron acceptor. The process produces NO2, CO2, and OH−, (Equation 12) and the bacteria creates an alkaline microenvironment by the consumption of H+ in the presence of soluble calcium ions (Zhu and Dittrich, 2016).
Ersan et al. (
Dissimilatory Sulfate Reduction
In organic matter rich anaerobic environments, the presence of calcium induces the indirect formation of calcium carbonate minerals by sulfate-reducing bacteria (SRB) due to dissimilatory sulfate reduction process (Equation 13). It has been demonstrated that Desulfovibrio sp. has the ability to precipitate calcium carbonate through removal of sulfates from gypsum (CaSO4.H2O) by a combination of three mechanisms: dissolution, diffusion and calcium carbonate precipitation. Calcium ions released by gypsum dissolution react with carbon dioxide (CO2) under an alkaline pH microenvironment due to sulfide removal, which leads to calcium carbonate precipitation (Perito and Mastromei, 2011).
Recently Alshalif et al. (
Photosynthesis
Apart from the above heterotrophic bacterial metabolic processes, the feasibility of MICP by autotrophic processes, such as photosynthesis and methane oxidation, have also been reported. Cyanobacteria and microalgae are the main photosynthetic microorganisms responsible for MICP in the aquatic environment. Calcium carbonate precipitation by photosynthetic microorganisms occurs due to and exchange (Equations 14, 15); is diffused through the membrane and dissociates in cytosol of the cell into CO2 and OH− and this reaction is catalyzed by carbonic anhydrase (CA), leading to an increase of pH due to OH− generation, which along with calcium ions present in the microenvironment induces MICP (Equation 16) (Dhami et al.,
It should be mentioned however, that the application of photosynthetic microorganisms as agents of bioconcrete can be achieved only when structures are exposed to CO2 and sunlight, which are principal components for photosynthesis process (Seifan et al., 2016).
Methane Oxidation
In marine and freshwater sediments, the concentration of carbon dioxide is largely driven by methane oxidizing bacteria under both aerobic and anoxic conditions. In aerobic conditions, this process is initiated with conversion of methane to methanol by methane mono-oxygenase activity in the presence of oxygen (Equation 17). In the periplasm of a cell, methanol (carbon source) is converted to formate through several enzymatic processes. Subsequently, when formate is in equilibrium with formic acid, methane mono-oxygenase oxidizes formic acid to CO2 by formate dehydrogenase activity (Equations 18–21). Carbon dioxide produced turns into , and calcium carbonate is precipitated in presence of calcium ions (Equation 22) around the cells (Ersan,
Anaerobic methanotrophic bacteria too produces bicarbonate as a result of methane anaerobic oxidation, with sulfate as the final electron acceptor and in presence of calcium ions (Equations 23, 24) (Seifan et al., 2016; Zhu and Dittrich, 2016).
Recently, Caesar et al. (
Genetic Factors Involved in Enzymatic Activity (UE and CA) in MICP
As in all bacterial regulatory systems, bacterial UE genes are organized in operons and clusters. Structural subunits of this enzyme are habitually encoded by the genes ureA, ureB, and ureC, which are adjacent to each other and arranged from smallest to largest (Mobley et al.,
Initially, it was believed that urease as well as other nitrogen metabolism related proteins were regulated by the activity of enzyme glutamine synthetase. However, it was demonstrated that complex transcriptional regulation mechanisms govern only nitrogen related genes. Though regulatory mechanisms of urease are complex too, in most cases except for Sporosarcina pasteurii, its expression in bacteria has shown to be induced by the presence of urea, controlled by nitrogen availability or dependent on pH changes (Figure 5) (Mobley and Hausinger,
Figure 5

Regulatory mechanisms of urease. (A) Urease constitutive system in Sporosarcina pasteurii. (B) Urease System induced by urea in Proteus mirabilis. (C) Urease system induced by nitrogen availability in Klebsiella aerogenes. (D) Urease system induced by pH in Streptococcus salivarius.
The only regulatory gene of the ure operon identified until now is ureR, which is found in the operon of Proteus mirabilis. The urea from this microorganism is induced by the presence of urea, and it has been demonstrated that ureR is a positive activator that binds to the promoter of ureD (Nicholson et al.,
One of the best examples of urease-induced expression by nitrogen availability is the case of K. aerogenes. This bacterium relies on a nitrogen regulatory system (NTR), which consists of two components NTRB an NTRC, for the activation of several genes, glutamine synthetase among them, under nitrogen limiting conditions (Macaluso et al.,
Presence of nitrogen-containing compounds was also shown to control the expression of the B. subtilis urease. In this bacterium, three promoters were identified upstream of the ureA gene start codon. The first promoter (P1), the closest one to ureA, was designated as a constitutive one that generates low levels of expression, while the other two promoters (P2 and P3), localized further upstream, were found to be regulated by the protein CodY (Wray et al., 1997). This regulator controls hundreds of genes that are needed for the survival of Bacillus subtilis on adverse growth conditions (Mollem et al.,
Changes in pH were shown to regulate the expression of urease from Streptoccocus salivarius. Huang et al. (
Another bacterial urease whose regulation is dependent on pH changes is the one encoded by H. pylori. The urease gene cluster of this microorganism consists of two operons: ureAB, which includes the structural genes, and ureIEFGH, which comprises the accessory genes for the assembling of the active center. Akada et al. (
Although regulatory mechanisms for urease expression have been extensively investigated in pathogenic bacteria as described above, further research is needed in order to understand the rates of urease expression and the regulatory strategies behind them during calcite precipitation, as little information is available concerning environmental bacteria.
On the other hand, the regulatory mechanisms for CA expression is not understood yet. It is only known that carbonic anhydrase is classified into five different genetically distinct families widely distributed in prokaryotes and eukaryotes; α-, β-, γ-, δ-, and ζ-CAs. In bacteria, genes encoding for enzymes belonging to α-, β-, and ζ-CAs classes, which contain zinc ion (Zn2+) in their active site, coordinated by three histidine residues and a water molecule/hydroxide ion, in β- class by two Cys and one His residues are coupled with a fourth ligand of a water molecule/hydroxide ion (Capasso and Supuran,
Conclusion
It can be observed that a wide variety of bacterial groups play a major role in MICP and has potential in bioconcrete and as well as self-healing agents in concrete repair mechanisms. Most of the studies have focused primarily on mechanical and structural properties of concrete, however, understanding the biological aspect is the most important to select suitable microorganisms and to provide conditions for their survival and activity in concrete structures and to extend their life-time, facilitating a self-healing process. Survival of bacterial cells in bioconcrete depends on the regulation of genetic factors and associated activities of urease and carbonic anhydrase. While great strides have been made on the influence of different factors, such as; type of bacteria, nutrient conditions, enzymes, concentration of calcium, etc., on MICP, there are very few studies on monitoring the survival and activity of the bacterial cells in bioconcrete. Furthermore, studies on the regulatory mechanisms of urease and carbonic anhydrase enzymes, which play a major role in MICP are very limited. Urease expression has been extensively studied in pathogenic bacteria, but not much work has been done on the expression of CA. The importance of understanding the genetic factors related to urease and carbonic anhydrase, and associated regulation mechanisms has been presented in this review. Future work on these aspects will aid in the development of novel bacterial strains by genetic/protein engineering to improve their survival and activity under the harsh conditions of concrete.
Statements
Author contributions
MC-A, RN, and NB designed this review based on the perspective from their own work and as well as other published work in this area. MC-A contributed extensively to writing this manuscript. LM-H contributed to the genetic concepts of urease and carbonic anhydrase. MS-M contributed to the microbiological concepts of urease and carbonic anhydrase. MM contributed to the biomineralization. RN contributed to the chemical aspects of calcium carbonate precipitation and bioconcrete and NB contributed to the microbial diversity and their mechanisms. NB along with MC-A and RN revised and structured the manuscript. All authors read and approved the final manuscript.
Acknowledgments
MC-A, LM-H, MS-M, MM, and NB thank Universidad Autónoma de Coahuila for providing digital library support through CONRICyT for consultation of research papers cited in this work. RN also thanks Universidad Juárez del Estado de Durango.
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
References
1
Abo-El-EneinS. A.El-SayedH. A.AliA. H.MohammedY. T.KhaterH. M.OudaA. S. (2014). Physico-mechanical properties of high performance concrete using different aggregates in presence of silica fume. HBRC J. 10, 43–48. 10.1016/j.hbrcj.2013.06.002
2
AchalV.MukherjeeA. (2015). A review of microbial precipitation for sustainable construction. Constr Build Mater. 93, 1224–1235. 10.1016/j.conbuildmat.2015.04.051
3
AchalV.MukherjeeA.BasuP. C.ReddyM. S. (2009). Lactose mother liquor as an alternative nutrient source for microbial concrete production by Sporosarcina pasteurii. J. Ind. Microbiol. Biotechnol. 36, 433–438. 10.1007/s10295-008-0514-7
4
AchalV.MukherjeeA.KumariD.ZhangQ. (2015). Biomineralization for sustainable construction–a review of processes and applications. Earth. Sci. Rev. 148:1–17. 10.1016/j.earscirev.2015.05.008
5
AchalV.MukherjeeA.ReddyM. S. (2010). Biocalcification by Sporosarcina pasteurii using corn steep liquor as the nutrient source. Ind Biotechnol. 6, 170–174. 10.1089/ind.2010.6.170
6
AchalV.MukherjeeA.ZhangA. (2016). Unearthing ecological wisdom from natural habitats and its ramifications on development of biocement and sustainable cities. Landsc. Urban. Plan. 155, 61–68. 10.1016/j.landurbplan.2016.04.013
7
AchalV.PanX.ÖzyurtN. (2011). Improved strength and durability of fly ash-amended concrete by microbial calcite precipitation. Ecol. Eng. 37, 554–559. 10.1016/j.ecoleng.2010.11.009
8
AdolpheJ. P.LoubièreJ. F.ParadasJ.SoleilhavoupF. (1990) Procédé Detraitement Biologique d'une Surface Artificielle. París: Francia European Patent 90400G97.0. (after French patent 8903517, 1989).
9
AdzamiN. S.GhazaliM. F.RamliA. H.TajarudinH. A.DaudZ. (2018). A new potential of calcium carbonate production induced by Bacillus sphaericus in batch fermentation. Int. J. Integr. Eng. 10, 43–47. 10.30880/ijie.2018.10.09.024
10
AguileraL. A. P.ZapataJ. A. N.MoralesB. O. O. (2015). La bioprecipitación de carbonato de calcio por la biota nativa como un método de restauración. Nexo Rev. Científ.28, 25–40. 10.5377/nexo.v28i01.1779
11
AkadaJ. K.ShiraiM.TakeuchiH.TsudaM.NakazawaT. (2000). Identification of the urease operon in Helicobacter pylori and its control by mRNA decay in response to pH. Mol Microbiol. 36, 1071–1084. 10.1046/j.1365-2958.2000.01918.x
12
AlshalifA. F.IrwanJ. M.OthmanN.AnnezaL. H. (2016). Isolation of Sulphate Reduction Bacteria (SRB) to Improve Compress Strength and Water Penetration of Bio-Concrete. MATEC Web Conf. 47:01016. 10.1051/matecconf/20164701016
13
Al-TabbaaA.LarkB.PaineK.JeffersonT.LitinaC.GardnerD.et al. (2018). Biomimetic cementitious construction materials for next-generation infrastructure. Proc. Inst.Civ. Eng.Smart. Infrastr. Constr. 171, 67–76. 10.1680/jsmic.18.00005
14
Al-TabbaaA.LitinaC.GiannarosP.KanellopoulosA.SouzaL. (2019). First UK field application and performance of microcapsule-based self-healing concrete. Constr. Build. Mat.208, 669–685. 10.1016/j.conbuildmat.2019.02.178
15
AnbuP.KangC. H.ShinY. J.SoJ. S. (2016). Formations of calcium carbonate minerals by bacteria and its multiple applications. SpringerPlus5:250. 10.1186/s40064-016-1869-2
16
ApriantiE. (2017). A huge number of artificial waste material can be supplementary cementitious material (SCM) for concrete production–a review part II. J Clean. Prod.142, 4178–4194. 10.1016/j.jclepro.2015.12.115
17
BachmeierK. L.WilliamsA. E.WarmingtonJ. R.BangS. S. (2002). Urease activity in microbiologically-induced calcite precipitation. J Biotechnol. 93, 171–181. 10.1016/S0168-1656(01)00393-5
18
BackesC. W.AnkerH. T.KeessenA. M.BaanerL.MöckelS. (2018). Comparison of Ammonia Regulation in Germany, The Netherlands and Denmark-Legal Framework. IFRO Report series.
19
BangS. S.GalinatJ. K.RamakrishnanV. (2001). Calcite precipitation induced by polyurethane-immobilized Bacillus pasteurii. Enzyme. Microb. Technol. 28, 404–409. 10.1016/S0141-0229(00)00348-3
20
BenzeraraK.SkouripanetF.LiJ.FerardC.GuggerM.LaurentT.et al. (2014). Intracellular Ca-carbonate biomineralization is widespread in cyanobacteria. Proc. Natl. Acad. Sci. U.S.A.111, 10933–10938. 10.1073/pnas.1403510111
21
BiswasM.MajumdarS.ChowdhuryT.ChattopadhyayB.MandalS.HalderU.et al. (2010). Bioremediase a unique protein from a novel bacterium BKH1, ushering a new hope in concrete technology. Enzyme. Microb. Technol. 46, 581–587. 10.1016/j.enzmictec.2010.03.005
22
BraissantO.VerrecchiaE. P. (2002). Microbial biscuits of vaterite in Lake Issyk-Kul (Republic of Kyrgyzstan) – Discussion. J. Sediment. Res.72, 944–946. 10.1306/041802720944
23
BundurZ. B.KirisitsM. J.FerronR. D. (2015). Biomineralized cement-based materials: Impact of inoculating vegetative bacterial cells on hydration and strength. Cement Concrete Res. 67, 237–245. 10.1016/j.cemconres.2014.10.002
24
BurneR. A.ChenY.-Y. M. (2000). Bacterial ureases in infectious diseases. Microb. Infect.2, 533–542. 10.1016/S1286-4579(00)00312-9
25
CaesarK. H.KyleJ. R.LyonsT. W.TripatiA.LoydS. J. (2019). Carbonate formation in salt dome cap rocks by microbial anaerobic oxidation of methane. Nat. Commun. 10:808. 10.1038/s41467-019-08687-z
26
CamN.GeorgelinT.JaberM.LambertJ. F.BenzeraraK. (2015). In vitro synthesis of amorphous Mg-, Ca-, Sr- and Ba-carbonates: WHAT do we learn about intracellular calcification by cyanobacteria?Geochim. Cosmochim. Acta161, 36–49. 10.1016/j.gca.2015.04.003
27
CapassoC.SupuranC. T. (2015). An overview of the alpha-, beta- and gamma-carbonic anhydrases from Bacteria: can bacterial carbonic anhydrases shed new light on evolution of bacteria?. J. Enzyme Inhib. Med. Chem. 30, 325–332. 10.3109/14756366.2014.910202
28
CastanierS.Métayer-LevrelL. G.PerthuisotJ. P. (1999) Ca-carbonates precipitation limestone genesis—the microbiogeologist point of view. Sediment. Geol. 126, 9–23. 10.1016/S0037-0738(99)00028-7
29
Castro-AlonsoM. J.LopezC. E.Garcia-PerezS. O.NarayanasamyR.FajardoG. J.HerreraH.et al. (2018). Improved strength and durability of concrete through metabolic activity of ureolytic bacteria. Environ. Sci. Pollut. Res. Int. 25, 21451–21458. 10.1007/s11356-017-9347-0
30
CharpeA. U.LatkarM. V.ChakrabartiT. (2017). Microbially assisted cementation–a biotechnological approach to improve mechanical properties of cement. Constr. Build. Mater. 135, 472–476. 10.1016/j.conbuildmat.2017.01.017
31
ChaurasiaL.BishtV.SinghL. P.GuptaS. (2019). A novel approach of biomineralization for improving micro and macro-properties of concrete. Constr. Build. Mater. 195, 340–351. 10.1016/j.conbuildmat.2018.11.031
32
ChekrounK. B.Rodríguez-NavarroC.González-MuñozM. T.AriasJ. M.CultroneG.Rodríguez-GallegoM. (2004). Precipitation and growth morphology of calcium carbonate induced by Myxococcus xanthus: implications for recognition of bacterial carbonates. J Sediment Res. 74, 868–876. 10.1306/050504740868
33
ChenH.QianC.HuangH. (2016). Self-healing cementitious materials based on bacteria and nutrients immobilized respectively. Constr. Build. Mater. 126, 297–303. 10.1016/j.conbuildmat.2016.09.023
34
ChengL.Cord-RuwischR. (2012). In situ soil cementation with ureolytic bacteria by surface percolation. Ecol. Eng.42:64–72. 10.1016/j.ecoleng.2012.01.013
35
CouradeauE.BenzeraraK.GérardE.MoreiraD.BernardS.BrownG. E.et al. (2012). An early-branching microbialite cyanobacterium forms intracellular carbonates. Science336, 459–462. 10.1126/science.1216171
36
Cruz-RamosH.GlaserP.WrayL. V.FisherS. H. (1997). The Bacillus subtilis ureABC operon. J. Bacteriol. 179, 3371–3373. 10.1128/jb.179.10.3371-3373.1997
37
DaviesR.TeallO.PilegisM.KanellopoulosA.SharmaT.JeffersonA.et al. (2018). Large scale application of self-healing concrete: design, construction, and testing. Front. Mat.5:51. 10.3389/fmats.2018.00051
38
De MuynckW.CoxK.De BelieN.VerstraeteW. (2008). Bacterial carbonate precipitation as an alternative surface treatment for concrete. Constr. Build. Mater. 22, 875–885. 10.1016/j.conbuildmat.2006.12.011
39
DhamiN. K.ReddyM. S.MukherjeeA. (2014). Application of calcifying bacteria for remediation of stones and cultural heritages. Front. Microbiol. 5:304. 10.3389/fmicb.2014.00304
40
DuprazC.ReidR. P.BraissantO.DechoA. W.NormanR. S.VisscherP. T. (2009). Processes of carbonate precipitation in modern microbial mats. Earth. Sci. Rev.96, 141–162. 10.1016/j.earscirev.2008.10.005
41
ErcoleC.CacchioP.BottaA. L.CentiV.LepidiA. (2007). Bacterially induced mineralization of calcium carbonate: the role of exopolysaccharides and capsular polysaccharides. Microsc. Microanal. 13, 42–50. 10.1017/S1431927607070122
42
ErnstF. D.KuipersE. J.HeijensA.SarwariR.StoofJ.PennC. W.et al. (2005). The nickel-responsive regulator NikR controls activation and repression of gene transcription in Helicobacter pylori. Infect. Immun. 73, 7252–7258. 10.1128/IAI.73.11.7252-7258.2005
43
ErsanY.BoonN.De BelieN. (2015). Microbial self-healing concrete: denitrification as an enhanced and environment-friendly approach, in 5th International Conference on Self-Healing Materials, ed NicholsonK. (Ghent).
44
ErsanY. C. (2019). Overlooked strategies in exploitation of microorganisms in the field of building materials, in Ecological Wisdom Inspired Restoration Engineering, eds. AchalV.MukherjeeA. (Singapore: Springer; CRC Press), 19–45. 10.1007/978-981-13-0149-0_2
45
ErsanY. C.BoonN.De BelieN. (2018). Granules with activated compact denitrifying core (ACDC) for self-healing concrete with corrosion protection functionality, in Microorganisms-Cementitious Materials Interactions: Final Conference of RILEM TC 253-MCI., eds BertronA.JonkersH. (Toulouse: RILEM Publications), 475–484.
46
FangC.HeJ.AchalV.PlazaG. (2019). Tofu wastewater as efficient nutritional source in biocementation for improved mechanical strength of cement mortars. Geomicrobiol. J.36, 515–521. 10.1080/01490451.2019.1576804
47
FuG.ValiyaveettilS.WopenkaB.MorseD. E. (2005). CaCO3 biomineralization: acidic 8-kDa proteins isolated from aragonitic abalone shell nacre can specifically modify calcite crystal morphology. Biomacromolecules6, 1289–1298. 10.1021/bm049314v
48
GhoshS.BiswasM.ChattopadhyayB. D.MandalS. (2009). Microbial activity on the microstructure of bacteria modified mortar. Cement. Concrete. Comp. 31, 93–98. 10.1016/j.cemconcomp.2009.01.001
49
GonsalvesG. M. (2011). Bioconcrete-a Sustainable Substitute for Concrete? (Master's thesis). Universitat Politècnica de Catalunya. Institut Universitari de Recerca en Ciència i Tecnologies de la Sostenibilitat, Barcelone, Spain.
50
GossT. J.BenderR. A. (1995). The nitrogen assimilation control protein, NAC, is a DNA binding transcription activator in Klebsiella aerogenes. J. Bacteriol. 177, 3546–3555. 10.1128/jb.177.12.3546-3555.1995
51
HamdanN.KavazanjianE. J.RittmannB. E. (2011). Sequestration of radionuclides and metal contaminants through microbially-induced carbonate precipitation, in 14th Pan-American Conference on Soil Mechanics and Geotechnical Engineering (Toronto, ON: Canada).
52
HardikarV. V.MatijevicE. (2001). Influence of ionic and non ionic dextrans on the formation of calcium hydroxide and calcium carbonate particles. Colloids. Surf.186, 23–31. 10.1016/S0927-7757(01)00479-4
53
HeadI. M.GrayN. D.BabenzienH. D.Oliver-GlöcknerF. (2000). Uncultured giant sulfur bacteria of the genus Achromatium. FEMS Microbiol. Ecol. 33, 171–180. 10.1111/j.1574-6941.2000.tb00739.x
54
HuangS. C.BurneR. A.ChenY. Y. (2014). The pH-dependent expression of the urease operon in Streptococcus salivarius is mediated by CodY. Appl. Environ. Microbiol. 80, 5386–93. 10.1128/AEM.00755-14
55
IvanovV.StabnikovV.StabnikovaO.KawasakiS. (2019). Environmental safety and biosafety in construction biotechnology. World J. Microbiol. Biotechnol.35:26. 10.1007/s11274-019-2598-9
56
JainS.ArnepalliD. N. (2019). Biominerlisation as a remediation technique: a critical review, in Geotechnical Characterisation and Geoenvironmental Engineering, eds StalinV.MuttharamM. (Singapore: Springer), 155–162. 10.1007/978-981-13-0899-4_19
57
Jimenez-LopezC. J.JroundiF.Rodríguez-GallegoM.AriasJ. M.Gonzalez-MuñozM. T. (2007). Biomineralization induced by Myxobacteria, in Proceedings of the II International Conference on Environmental, Industrial and Applied Microbiology (BioMicroWorld2007), ed Mendez-VilasA. (Seville: World Scientific), 143–154. 10.1142/7133
58
JonkersH. M. (2011). Bacteria-based self-healing concrete. Heron56, 1–12.
59
JonkersH. M.SchlangenE. (2009). A two component bacteria-based on self-healing concrete, in Concrete Repair, Rehabilitation, and Retrofitting II: 2nd International Conference on Concrete Repair, Rehabilitation and Retrofitting, eds AlexanderM. G.BeushausenH.DehnF.MoyoP. (Cape Town: CRC Press). 10.1201/9781439828403.ch27
60
JonkersH. M.ThijssenA.MuyzerG.CopurogluO.SchlangenE. (2010). Application of bacteria as self-healing agent for the development of sustainable concrete. Ecol. Eng.36, 230–235. 10.1016/j.ecoleng.2008.12.036
61
JoshiS.GoyalS.MukherjeeA.ReddyM. S. (2017). Microbial healing of cracks in concrete: a review. J. Ind. Microbiol. Biotechnol.44, 1511–1525. 10.1007/s10295-017-1978-0
62
JroundiF.Fernández-VivasA.Rodriguez-NavarroC.BedmarE. J.González-MuñozM. T. (2010). Bioconservation of deteriorated monumental calcarenite stone and identification of bacteria with carbonatogenic activity. Microb. Ecol. 60, 39–54. 10.1007/s00248-010-9665-y
63
JroundiF.Gonzalez-MuñozM. T.Garcia-BuenoA.Rodriguez-NavarroC. (2014). Consolidation of archaeological gypsum plaster by bacterial biomineralization of calcium carbonate. Acta. biomater. 10, 3844–3854. 10.1016/j.actbio.2014.03.007
64
KangC. H.ChoiJ. H.NohJ.KwakD. Y.HanS. H.SoJ. S. (2014). Microbially induced calcite precipitation-based sequestration of strontium by Sporosarcina pasteurii WJ-2. App. Biochem. Biotechnol. 174, 2482–2491. 10.1007/s12010-014-1196-4
65
KhaliqW.EhsanM. B. (2016). Crack healing in concrete using various bio influenced self-healing techniques. Constr. Build. Mater.102, 349–357. 10.1016/j.conbuildmat.2015.11.006
66
KimI. G.JoB. H.KangD. G.KimC. S.ChoiY. S.ChaH. J. (2012). Biomineralization-based conversion of carbon dioxide to calcium carbonate using recombinant carbonic anhydrase. Chemosphere87, 1091–1096. 10.1016/j.chemosphere.2012.02.003
67
KimJ. K.MulrooneyS. B.HausingerR. P. (2005). Biosynthesis of active Bacillus subtilis urease in the absence of known urease accessory proteins. J. Bacteriol. 187, 7150–7154. 10.1128/JB.187.20.7150-7154.2005
68
KrajewskaB. (2018). Urease-aided calcium carbonate mineralization for engineering applications: a review. J. Adv. Res.13, 59–67. 10.1016/j.jare.2017.10.009
69
Le Metayer-LevrelG.CastanierS.OrialG.LoubiereJ. F.PerthuisotJ. P. (1999). Applications of bacterial carbonatogenesis to the protection and regeneration of limestones in buildings and historic patrimony. Sediment. Geol.126, 25–34. 10.1016/S0037-0738(99)00029-9
70
LiM.ChengX.GuoH. (2013). Heavy metal removal by biomineralization of urease producing bacteria isolated from soil. Int. Biodeterior. Biodegradation.76, 81–85. 10.1016/j.ibiod.2012.06.016
71
MacalusoA.BestE. A.BenderR. A. (1990). Role of the nac gene product in the nitrogen regulation of some NTR-regulated operons of Klebsiella aerogenes. J. Bacteriol. 172, 7249–7255. 10.1128/jb.172.12.7249-7255.1990
72
MajumdarS.SarkarM.ChowdhuryT.ChattopadhyayB.MandalS. (2012). Use of bacterial protein powder in commercial fly ash pozzolana cements for high performance construction materials. Open J. Civ. Eng.2, 218–228. 10.4236/ojce.2012.24029
73
MillerS. A.HorvathA.MonteiroP. J. (2018). Impacts of booming concrete production on water resources worldwide. Nat. Sustain.1:69. 10.1038/s41893-017-0009-5
74
MobleyH. L.GarnerR. M.BauerfeindP. (1995). Helicobacter pylori nickel-transport gene nixA: synthesis of catalytically active urease in Escherichia coli independent of growth conditions. Mol. Microbiol. 16, 97–109. 10.1111/j.1365-2958.1995.tb02395.x
75
MobleyH. L.HausingerR. P. (1989). Microbial ureases: significance, regulation, and molecular characterization. Microbiol. Rev.53, 85–108.
76
MollemV.NakauraY.ShiversR. P.YamaguchiH.LosickR.FujitaY.et al. (2003). Additional targets of the Bacillus subtilis global regulator CodY identified by chromatin immunoprecipitation and genome-wide transcript analysis. J. Bacteriol. 185, 1911–1922. 10.1128/JB.185.6.1911-1922.2003
77
MorsR. M.JonkersH. M. (2016). Feasibility of lactate derivative based agent as additive for concrete for regain of crack water tightness by bacterial metabolism. Ind. Crop. Prod. 106, 97–104. 10.1016/j.indcrop.2016.10.037
78
NarayanasamyR.AlvaradoA.Sanchez MedranoJ.Betancourt HernandezJ.BalagurusamyN. (2013). Potential of soil bacteria from the comarca lagunera, north-east Mexico for bioconcrete development, in Proceedings of the 4th International Conference on Self-Healing Materials ICSHM, eds De BelieN.Van der ZwaagS.GruyaertE.Van TittelboomK.DebbautB. (Ghent), 601–605.
79
NarayanasamyR.Villegas-FloresN.Betancourt-SilvaF.Betancourt-HernandezJ.BalagurusamyN. (2010). Application of bacteria in repairing the concrete cracks—a review concrete under severe conditions, in Sixth International Conference on Concrete Under Severe Conditions, Environment Load, eds. Castro-BorgesP.MorenoE. I.SakaiK.GjørvO. E.BanthiaN. (Merida Yucatan: CRC Press), 1237–1244. 10.1201/b10552-164
80
NicholsonE. B.ConcaughA. E.FoxallP. A.IslandM. D.MobleyH. L. (1993). Proteus mirabilis urease: transcriptional regulation by UreR. J. Bacteriol.175, 465–473. 10.1128/jb.175.2.465-473.1993
81
O'ConnellM.McNallyC.RichardsonM. G. (2010). Biochemical attack on concrete in wastewater applications: a state of the art review. Cem. Concr. Comp. 32, 479–485. 10.1016/j.cemconcomp.2010.05.001
82
OkwadhaG. D.LiJ. (2011). Biocontainment of polychlorinated biphenyls (PCBs) on flat concrete surfaces by microbial carbonate precipitation. J. Environ. Manage.92, 2860–2864. 10.1016/j.jenvman.2011.05.029
83
OkyayT. O.RodriguesD. F. (2015). Biotic and abiotic effects on CO2 sequestration during microbially-induced calcium carbonate precipitation. FEMS Microbiol. Ecol.91:fiv017. 10.1093/femsec/fiv017
84
ParkS. I.HausingerR. P. (1995). Requirement of carbon dioxide for in vitro assembly of the urease nickel metallocenter. Science267, 1156–1158. 10.1126/science.7855593
85
PeritoB.MarvasiM.BarabesiC.MastromeiG.BracciS.VendrellM.et al. (2014). A Bacillus subtilis cell fraction (BCF) inducing calcium carbonate precipitation: biotechnological perspectives for monumental stone reinforcement. J. Cult. Herit.15, 345–351. 10.1016/j.culher.2013.10.001
86
PeritoB.MastromeiG. (2011). Molecular basis of bacterial calcium carbonate precipitation, in Molecular Biomineralization: Aquatic Organisms Forming Extraordinary Materials, ed. MüllerW. E. G. (Berlin; Heidelberg: Springer), 113–139. 10.1007/978-3-642-21230-7_5
87
PflockM.KennardS.DelanyI.ScarlatoV.BeierD. (2005). Acid-induced activation of the urease promoters is mediated directly by the ArsRS two-component system of Helicobacter pylori. Infect. Immun.73, 6437–6445. 10.1128/IAI.73.10.6437-6445.2005
88
Rodriguez-NavarroC.Rodriguez-GallegoM.ChekrounK. B.Gonzalez-MuñozM. T. (2003). Conservation of ornamental stone by Myxococcus xanthus-induced carbonate biomineralization. Appl. Environ. Microbiol. 69, 2182–2193. 10.1128/AEM.69.4.2182-2193.2003
89
RuanS.QiuJ.WengY.YangY.YangE. H.ChuJ.et al. (2019). The use of microbial induced carbonate precipitation in healing cracks within reactive magnesia cement-based blends. Cem. Concr. Res. 115, 176–188. 10.1016/j.cemconres.2018.10.018
90
SalmanV.BerbenT.BowersR. M.WoykeT.TeskeA.AngertE. R. (2016). Insights into the single cell draft genome of “Candidatus Achromatium palustre”. Stand Genomic. Sci.11:28. 10.1186/s40793-016-0146-x
91
SarayuK.IyerN. R.MurthyA. R. (2014). Exploration on the biotechnological aspect of the ureolytic bacteria for the production of the cementitious materials—a review. Appl. Biochem. Biotechnol.172, 2308–2323. 10.1007/s12010-013-0686-0
92
SarkarA.ChatterjeeA.MandalS.ChattopadhyayB. (2019). An alkaliphilic bacterium BKH 4 of bakreshwar hot spring pertinent to bio-concrete technology. J. Appl. Microbiol. Biochem.6, 1742–1750. 10.1111/jam.14236
93
SarkarM.AdakD.TamangA.ChattopadhyayB.MandalS. (2015). Genetically-enriched microbe-facilitated self-healing concrete–a sustainable material for a new generation of construction technology. RSC Adv.5, 105363–105371. 10.1039/C5RA20858K
94
SarkarM.ChowdhuryT.ChattopadhyayB.GachhuiR.MandalS. (2014). Autonomous bioremediation of a microbial protein (bioremediase) in Pozzolana cementitious composite. J. Mat. Sci. 49, 4461–4468. 10.1007/s10853-014-8143-1
95
SchreierH. J.BrownS. W.HirschiK. D.NomelliniJ. F.SonensheinA. L. (1989). Regulation of Bacillus subtilis glutamine synthetase gene expression by the product of the glnR gene. J. Mol. Biol. 210, 51–63. 10.1016/0022-2836(89)90290-8
96
SeifanM.EbrahiminezhadA.GhasemiY.SamaniA. K.BerenjianA. (2018). The role of magnetic iron oxide nanoparticles in the bacterially induced calcium carbonate precipitation. Appl. Microbiol. Biotechnol. 102, 3595–3606. 10.1007/s00253-018-8860-5
97
SeifanM.SamaniA. K.BerenjianA. (2016). Bioconcrete: next generation of self-healing concrete. Appl Microbiol. Biotechnol.100, 2591–2602. 10.1007/s00253-016-7316-z
98
SiddiqueR.SinghK.SinghM.CorinaldesiV.RajorA. (2016). Properties of bacterial rice husk ash concrete. Constr. Build. Mater.121, 112–119. 10.1016/j.conbuildmat.2016.05.146
99
SilvaF. B.BoonN.De BelieN.VerstraeteW. (2015). Industrial application of biological self-healing concrete: challenges and economical feasibility. J. Commer. Biotechno.21, 31–38. 10.5912/jcb662
100
SondiI.SondiB. (2005). Influence of the primary structure of enzymes on the formation of CaCO3 polymorphs: a comparison of plant (Canavalia ensiformis) and bacterial (Bacillus pasteurii) ureases. Langmuir21, 8876–8882. 10.1021/la051129v
101
SonensheinA. L. (2005). CodY, a global regulator of stationary phase and virulence in Gram-positive bacteria. Curr. Opin. Microbiol. 8, 203–207. 10.1016/j.mib.2005.01.001
102
Stocks-FischerA.GalinatJ. K.BangS. S. (1999). Microbiological precipitation of CaCO3. Soil Biol. Biochem. 31, 1563–1571. 10.1016/S0038-0717(99)00082-6
103
SupuranC. T.CapassoC. (2016). New light on bacterial carbonic anhydrases phylogeny based on the analysis of signal peptide sequences. J. Enzyme. Inhib. Med. Chem.31, 1254–1260. 10.1080/14756366.2016.1201479
104
TambunanT.JukiM. I.OthmanN. (2019). Mechanical properties of sulphate reduction bacteria on the durability of concrete in chloride condition. MATEC Web Conf. EDP Sci. 258:0102410.1051/matecconf/201925801024
105
TeallO.DaviesR.PilegisM.KanellopoulosA.SharmaT.PaineK.et al. (2016). Self-healing concrete full-scale site trials, in Proceedings of the 11th fib International PhD Symposium in Civil Engineering, eds MaekawaK.KasugaA.YamazakiJ. (Tokyo: Balkema Publishers), 639–646.
106
TianoP.BiagiottiL.MastromeiG. (1999). Bacterial bio-mediated calcite precipitation for monumental stones conservation: methods of evaluation. J. Microbiol. Meth. 36, 139–145. 10.1016/S0167-7012(99)00019-6
107
TurickC. E.BerryC. J. (2016). Review of concrete biodeterioration in relation to nuclear waste. J. Environ. Radioact.151, 12–21. 10.1016/j.jenvrad.2015.09.005
108
TziviloglouE.WiktorV.JonkersH. M.SchlangenE. (2016). Bacteria-based self-healing concrete to increase liquid tightness of cracks. Constr. Build. Mat. 122, 118–125. 10.1016/j.conbuildmat.2016.06.080
109
Van TittelboomK.De BelieN.De MuynckW.VerstraeteW. (2010). Use of bacteria to repair cracks in concrete. Cem. Concr. Res.40, 157–166. 10.1016/j.cemconres.2009.08.025
110
Van TittelboomK.WangJ.AraújoM.SnoeckD.GruyaertE.DebbautB.et al. (2016). Comparison of different approaches for self-healing concrete in a large-scale lab test. Constr. Build. Mat.107, 125–137. 10.1016/j.conbuildmat.2015.12.186
111
Van VlietA. H.ErnstF. D.KustersJ. G. (2004). NikR-mediated regulation of Helicobacter pylori acid adaptation. Trends. Microbiol. 12, 489–494. 10.1016/j.tim.2004.09.005
112
VermaR. K.ChaurasiaL.BishtV.ThakurM. (2015). Biomineralization and bacterial carbonate precipitation in mortar and concrete. Biosci. Bioeng.1, 5–11.
113
WangJ.Van TittelboomK.De BelieN.VerstraeteW. (2012). Use of silica gel or polyurethane immobilized bacteria for self-healing concrete. Constr. Build. Mater.26, 532–540. 10.1016/j.conbuildmat.2011.06.054
114
WangJ. Y.SoensH.VerstraeteW.De BelieN. (2014). Self-healing concrete by use of microencapsulated bacterial spores. Cem. Concr. Res.56, 139–152. 10.1016/j.cemconres.2013.11.009
115
WedelA.KustuS. (1995). The bacterial enhancer-binding protein NTRC is a molecular machine: ATP hydrolysis is coupled to transcriptional activation. Genes Dev.9, 2042–2052. 10.1101/gad.9.16.2042
116
WeinerS.DoveP. M. (2003). An overview of biomineralization processes and the problem of the vital effect. Rev. Mineral. Geochem. 54, 1–29. 10.2113/0540001
117
WhiffinV. S.Van PaassenL. A.HarkesM. P. (2007). Microbial carbonate precipitation as a soil improvement technique. Geomicrobiol. J. 24, 417–423. 10.1080/01490450701436505
118
WrayL. V.FersonA. E.FisherS. H. (1997). Expression of the Bacillus subtilis ureABC operon is controlled by multiple regulatory factors including CodY, GlnR, TnrA, and Spo0H. J. Bacteriol.179, 5494–5501. 10.1128/jb.179.17.5494-5501.1997
119
XuH.PengX.BaiS.TaK.YangS.LiuS.et al. (2019). Precipitation of calcium carbonate mineral induced by viral lysis of cyanobacteria: evidence from laboratory experiments. Biogeosciences16, 949–960. 10.5194/bg-16-949-2019
120
XuJ.WangX. (2018). Self-healing of concrete cracks by use of bacteria-containing low alkali cementitious material. Constr. Build. Mat.167, 1–14. 10.1016/j.conbuildmat.2018.02.020
121
YadavR.LabhsetwarN.KotwalS.RayaluS. (2011). Single enzyme nanoparticle for biomimetic CO2 sequestration. J. Nanoparticle. Res.13, 263–271. 10.1007/s11051-010-0026-z
122
YadavR. R.KrishnamurthiK.ShekhA. Y.MudliarS. N.DeviS. S.ChakrabartiT. (2014) Activity enhancement of carbonic anhydrase in Chlamydomonas sp. for effective CO2 sequestration. Clean. Technol. Environ. Policy. 16, 1827–1833. 10.1007/s10098-014-0734-7
123
ZhangJ.ZhouA.LiuY.ZhaoB.LuanY.WangS.et al. (2017). Microbial network of the carbonate precipitation process induced by microbial consortia and the potential application to crack healing in concrete. Sci. Rep.7:14600. 10.1038/s41598-017-15177-z
124
ZhuT.DittrichM. (2016). Carbonate precipitation through microbial activities in natural environment, and their potential in biotechnology: a review. Front. Bioeng. Biotechnol.4:4. 10.3389/fbioe.2016.00004
Summary
Keywords
MICP, urease, carbonic anhydrase, molecular factors, genetic factors, bioconcrete
Citation
Castro-Alonso MJ, Montañez-Hernandez LE, Sanchez-Muñoz MA, Macias Franco MR, Narayanasamy R and Balagurusamy N (2019) Microbially Induced Calcium Carbonate Precipitation (MICP) and Its Potential in Bioconcrete: Microbiological and Molecular Concepts. Front. Mater. 6:126. doi: 10.3389/fmats.2019.00126
Received
02 March 2019
Accepted
14 May 2019
Published
10 June 2019
Volume
6 - 2019
Edited by
Libo Yan, Technische Universitat Braunschweig, Germany
Reviewed by
Ru Mu, Hebei University of Technology, China; Sriramya Duddukuri Nair, Cornell University, United States; Aijuan Zhou, Taiyuan University of Technology, China
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© 2019 Castro-Alonso, Montañez-Hernandez, Sanchez-Muñoz, Macias Franco, Narayanasamy and Balagurusamy.
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*Correspondence: Rajeswari Narayanasamy naraya@ujed.mxNagamani Balagurusamy bnagamani@uadec.edu.mx
This article was submitted to Structural Materials, a section of the journal Frontiers in Materials
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