Real-time monitoring of calcification process by Sporosarcina pasteurii biofilm
Literature Information
Dustin Harris, Jyothir Ganesh Ummadi, Andrew R. Thurber, Yvan Allau, Circe Verba, Frederick Colwell, Marta E. Torres, Dipankar Koley
Sporosarcina pasteurii is known to produce calcite or biocement in the presence of urea and Ca2+. Herein, we report the use of novel ultramicrosensors such as pH, Ca2+, and redox sensors, along with a scanning electrochemical microscope (SECM), to monitor a real-time, bacteria-mediated urea hydrolysis process and subsequent changes in morphology due to CaCO3 precipitation. We report that the surface pH of a live biofilm changed rapidly from 7.4 to 9.2 within 2 min, whereas similar fast depletion (10 min) of Ca2+ was observed from 85 mM to 10 mM in the presence of a high urea (10 g L−1) brine solution at 23 °C. Both the pH and the Ca2+ concentration profiles were extended up to 600 μm from the biofilm surface, whereas the bulk chemical composition of the brine solution remained constant over the entire 4 h of SECM experiments. In addition, we observed a change in biofilm surface morphology and an increase in overall biofilm height of 50 μm after 4 h of precipitation. Electron microscopy confirmed the changes in surface morphology and formation of CaCO3 crystals. Development of the Ca2+ profile took 10 min, whereas that of the pH profile took 2 min. This finding indicates that the initial urea hydrolysis process is fast and limited by urease or number of bacteria, whereas later CaCO3 formation and growth of crystals is a slow chemical process. The ultramicrosensors and approaches employed here are capable of accurately characterizing bioremediation on temporal and spatial scales pertinent to the microbial communities and the processes they mediate.
Recommended Journals
Related Literature
Light-driven generation of chlorine and hydrogen from brine using highly selective Ru/Ti oxide redox catalysts
L. McCafferty, C. O'Rourke, A. Mills, A. Kafizas, I. P. Parkin, J. A. Darr
DOI: 10.1039/C6SE00057F
Rapid formation of self-organised Ag nanosheets with high efficiency and selectivity in CO2 electroreduction to CO
Chong-Yong Lee, Yong Zhao, Caiyun Wang, David R. G. Mitchell, Gordon G. Wallace
DOI: 10.1039/C7SE00069C
Environmentally friendly nitrogen-doped carbon quantum dots for next generation solar cells
Conor Rocks, Dilli Babu Padmanaban, Paul Maguire, Vladimir Svrcek, Davide Mariotti
DOI: 10.1039/C7SE00158D
Ultralayered core–shell metal oxide nanosheet arrays for supercapacitors with long-term electrochemical stability
Ye Shen, Yifan Pan, Zhenyu Cheng, Yen Wei, Guangjian Zeng, Liucheng Mao
DOI: 10.1039/C8SE00290H
Solution processed single-phase Cu2SnS3 films: structure and photovoltaic performance
Devendra Tiwari, Tristan Koehler, Reiner Klenk, David J. Fermin
DOI: 10.1039/C7SE00150A
FeS2 microspheres wrapped by N-doped rGO from an Fe-based ionic liquid precursor for rechargeable lithium ion batteries
Chengfeng Du, Jianrong Li, Xiaoying Huang
DOI: 10.1039/C8SE00539G
You might also like
How should waste containing 6-Chloro-5-(2'-hydroxy-3'-methoxy-4-biphenylyl)-3-(3-methoxyphenyl)-1H-pyrrolo[3,2-d]pyrimidine-2,4(3H,5H)-dione (CAS: 1346607-05-3) be handled?
Waste containing 6-Chloro-5-(2'-hydroxy-3'-methoxy-4-biphenylyl)-3-(3-methoxyphe...
What are the main uses of (3alpha,5alpha)-3-Hydroxypregnane-11,20-dione (CAS: 23930-19-0)?
(3alpha,5alpha)-3-Hydroxypregnane-11,20-dione is primarily used in the pharmaceu...
What is the market or research trend for 4-Amino-6-chloro-2-pyridinecarboxylic acid (CAS: 546141-56-4)?
The market for 4-Amino-6-chloro-2-pyridinecarboxylic acid (CAS: 546141-56-4) is ...
Are there alternatives to (2-Benzoylethyl)trimethylammonium chloride (CAS: 24472-88-6) in synthesis?
Alternatives to (2-Benzoylethyl)trimethylammonium chloride (CAS: 24472-88-6) in ...
Is N-[4-Nitro-3-(trifluoromethyl)phenyl]acetamide (CAS: 393-12-4) safe?
N-[4-Nitro-3-(trifluoromethyl)phenyl]acetamide (CAS: 393-12-4) is generally safe...
Are there alternatives to [(4R,5R,6S)-5-hydroxy-10-imino-3,7-dioxa-1,9-diazatricyclo[6.4.0.02,6]dodeca-8,11-dien-4-yl]methyl dihydrogen phosphate (CAS: 39679-56-6) in synthesis?
Alternative reagents such as other phosphates or similar functional groups can b...
Are there alternatives to N,N'-Bis(3-aminopropyl)-1,3-propanediamine (CAS: 4605-14-5) in synthesis?
There are alternatives to N,N'-Bis(3-aminopropyl)-1,3-propanediamine (CAS: 4605-...
What precautions should be taken when handling Aluminium trihexadecanoate (CAS: 555-35-1)?
When handling Aluminium trihexadecanoate, it is important to use appropriate per...
What is (1,1-Dioxido-3-oxo-1,2-benzothiazol-2(3H)-yl)acetic acid (CAS: 52188-11-1)?
(1,1-Dioxido-3-oxo-1,2-benzothiazol-2(3H)-yl)acetic acid is a chemical compound ...
Are there alternatives to 5,5-dimethyloxolan-2-one (CAS: 3123-97-5) in synthesis?
Several alternatives to 5,5-dimethyloxolan-2-one (CAS: 3123-97-5) can be used in...
Source Journal
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.










-1,2-cyclohexanediamine structure N,N'-Bis[3-(2-methoxyphenyl)-2-hydroxybenzyl](1R,2R)-1,2-cyclohexanediamine structure](https://static.chemtradehub.com/structs/928/928769-12-4-a4f0.webp)
![Benzyl 2-{[(tert-butoxy)carbonyl]amino}acetate structure Benzyl 2-{[(tert-butoxy)carbonyl]amino}acetate structure](https://static.chemtradehub.com/structs/542/54244-69-8-6399.webp)
![2-Methyl-2-propanyl (2E)-5-chloro-2-[3-methoxy-4-(4-methyl-1H-imidazol-1-yl)benzylidene]pentanoate structure 2-Methyl-2-propanyl (2E)-5-chloro-2-[3-methoxy-4-(4-methyl-1H-imidazol-1-yl)benzylidene]pentanoate structure](https://static.chemtradehub.com/structs/122/1225232-42-7-ee03.webp)
![2-morpholino-2-[2-(trifluoromethyl)pyrimidin-5-yl]ethanamine structure 2-morpholino-2-[2-(trifluoromethyl)pyrimidin-5-yl]ethanamine structure](https://static.chemtradehub.com/structs/119/1192570-20-9-2810.webp)
