| Literature DB >> 26257581 |
Huiqin Zhang1, Yan Li1, Xin Wang1, Anhuai Lu1, Hongrui Ding1, Cuiping Zeng1, Xiao Wang1, Xiaolei Wu2, Yong Nie2, Changqiu Wang1.
Abstract
BACKGROUND: Mn oxides occur in a wide variety of geological settings and exert considerable influences on the components and chemical behaviors of sediments and soils. Microbial reduction of Mn oxides is an important process found in many different environments including marine and freshwater sediments, lakes, anoxic basins, as well as oxic-anoxic transition zone of ocean. Although the pathway of Mn anaerobic reduction by two model bacteria, Geobacter and Shewanella, has been intensively studied, Mn bio-reduction is still the least well-explored process in nature. Particularly, reduction of Mn oxides by other bacteria and in the presence of O2 has been fewly reported in recent publishes.Entities:
Year: 2015 PMID: 26257581 PMCID: PMC4528715 DOI: 10.1186/s12932-015-0026-0
Source DB: PubMed Journal: Geochem Trans ISSN: 1467-4866 Impact factor: 4.737
Fig. 1Aqueous Mn2+ concentrations (a) and protein concentrations (solid symbol)/pH values (hollow symbol) (b) during anaerobic birnessite reduction with different initial cell concentrations.
Anaerobic reduction of birnessite under different cell concentrations
| Cell concentration (cell/mL) | AOS(Total Mn) | AOS(insoluble Mn) | Mn2+/Mn(total) (%) | Reduction extent (%) |
|---|---|---|---|---|
| 6.2 × 108 | 3.29 | 3.44 | 10 | 33 |
| 2.5 × 109 | 2.90 | 3.35 | 33 | 53 |
| 1.0 × 1010 | 2.13 | 2.22 | 39 | 93 |
| 0 | 3.83 | 3.91 | 4 | 5 |
All samples were biotreated for 28 days.
Fig. 2A positive relationship between protein and Mn2+ release rate (abscissa values were the mean values of proteins in 2–14 days).
Fig. 3Aqueous Mn2+ concentration (a) and protein concentration (solid symbol)/pH value (hollow symbols) (b) during aerobic birnessite reduction with different initial cell concentration.
Aerobic reduction of birnessite under different cell concentrations
| Cell concentration (cell/mL) | AOS(Total Mn) | AOS(insoluble Mn) | Mn2+/Mn(total) (%) | Reduction extent (%) | |
|---|---|---|---|---|---|
| 6.2 × 108 | 3.91 | 3.92 | <1 | <1 | |
| 2.5 × 109 | 3.44 | 3.44 | <1 | 25 | |
| 1.0 × 1010 | 3.21 | 3.21 | <1 | 37 | |
| 0 | 3.88 | 3.94 | 3 | 3 | |
All samples were biotreated for 24 days.
Fig. 4Aqueous Mn2+ concentration during birnessite reduction with/without AQDS under anaerobic condition (a) and aerobic condition (b).
Microbial Mn reduction with or without AQDS
| AQDS | Mn2+ release rate in 2–14 days (μM/day) | Mn2+ release rate in 14–28 days (μM/day) | AOS(total Mn) | AOS(insoluble Mn) | Reduction extent (%) | |
|---|---|---|---|---|---|---|
| Anaerobic | − | 48.0 | 26.5 | 2.90 | 3.35 | 53 |
| + | 95.1 | 43.7 | 2.17 | 2.57 | 91 | |
| Aerobic | − | / | / | 3.44 | 3.44 | 25 |
| + | / | / | 3.80 | 3.80 | 6 |
Samples were biotreated with cell concentration of 2.5 × 109 cell/mL for 28 days under anaerobic conditions and 24 days under aerobic conditions; (+) means with AQDS; (−) means without AQDS; (/) means not detected.
Fig. 5Reduction potential of O2, birnessite (at 2 × 10−5 and 2 × 10−6 M Mn2+ activity) [42] and AQDS (at 5 × 10−5 M AQDS plus 5 × 10−5 M AH2DS and 10−4 AQDS M plus 10−7 M AH2DS activity) [43] as a function of pH.
Fig. 6XRD patterns of bioreduced samples under anaerobic (a) and aerobic condition (b).
Fig. 7XANES spectra of original birnessite and bioreduced samples in the system with an initial cell concentration of 2.5 × 109 cells/mL.
Fig. 8SEM of original and bioreduced samples. a SEM of original globular-flower-like birnessite; b SEM of spindle-shape mineral after microbial reduction under aerobic condition; c EDS of spindle-shape mineral after microbial reduction under aerobic condition.