| Literature DB >> 19426479 |
Angela Ivask1, Taisia Rõlova, Anne Kahru.
Abstract
BACKGROUND: Recombinant whole-cell sensors have already proven useful in the assessment of the bioavailability of environmental pollutants like heavy metals and organic compounds. In this work 19 recombinant bacterial strains representing various Gram-positive (Staphylococcus aureus and Bacillus subtilis) and Gram-negative (Escherichia coli, Pseudomonas fluorescens) bacteria were constructed to express the luminescence encoding genes luxCDABE (from Photorhabdus luminescens) as a response to bioavailable heavy metals ("lights-on" metal sensors containing metal-response elements, 13 strains) or in a constitutive manner ("lights-off" constructs, 6 strains).Entities:
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Year: 2009 PMID: 19426479 PMCID: PMC2685376 DOI: 10.1186/1472-6750-9-41
Source DB: PubMed Journal: BMC Biotechnol ISSN: 1472-6750 Impact factor: 2.563
Characteristics of Escherichia coli MC1061-based luminescent heavy metal sensors and toxicity control strains
| MC1061 | MC1061 | MC1061 (pSL | MC1061 | MC1061 | |
| 230 ± 90 | 2940 ± 930 | 520 ± 70 | 575000 ± 35200 | 6500 ± 2270 | |
| 400 | 20 | 100 | no induction | no induction | |
| 4 × 107 | 107 | 8 × 106 | 8 × 106 | 107 | |
| 10-10 (0.00003)/5 × 10-6 (1.4) | 8 × 10-8 (0.02)/10-5 (2.7) | no induction | 10-6 (0.4) | 10-6 (0.4) | |
| 8 × 10-12 (0.000002)/5 × 10-8 (0.01) | not tested | not tested | 3 × 10-6 (0.7) | not tested | |
| 3 × 10-7 (0.06)/5 × 10-4 (92) | 10-8 (0.003)/5 × 10-6 (0.9) | no induction | 4 × 10-4 (70) | 2 × 10-4 (31) | |
| no induction | 5 × 10-6 (0.8)/5 × 10-2 (8000) | no induction | 10-2 (1600) | 4 × 10-3 (640) | |
| no induction | 7 × 10-7 (0.2)/10-3 (330) | no induction | 2.4 × 10-4 (79) | 6 × 10-4 (190) | |
| not tested | not tested | 10-7 (0.02)/10-3 (240) | not tested | 5.4 × 10-4 (86) | |
| not tested | not tested | 2 × 10-6 (0.3)/10-5 (2.6) | not tested | 2 × 10-6 (0.3) | |
a control for MC1061(pmerRBSBPmerlux)
b control for MC1061(pSLcueR/pDNPcopAlux) and MC1061(pSLzntR/pDNPzntAlux)
c luminescence (relative light units, RLU) of 100 μl of bacterial suspension before the test as measured by plate luminometer Fluoroskan (ThermoLabsystems). Average of at least three assays
d as fold over the (non-induced) background
e see equation 4 in Methods
f the lowest tested concentration causing a measurable decrease in the bioluminescence of the sensor strains (read from concentration-induction curves in Figure 1)
g concentration causing 50% decrease in bioluminescence production (calculated from Figure 2)
h tested as ZnSO4 × 7H2O
i tested as CuSO4 × 5H2O
Figure 1Induction of luminescence (expressed as normalized luminescence) by heavy metals in different sensor strains. Names of sensors and symbols for heavy metals are indicated. Data represent mean ± SD of three independent measurements.
Figure 2Toxicity of heavy metals for constitutively luminescent control strains. Toxicity of heavy metals is expressed as inhibition of bioluminescence or decrease in normalized luminescence after 2 hours incubation. Names of strains and symbols for heavy metals are indicated. Data represent mean ± SD of three independent measurements. 2-h EC50 values calculated from these curves are presented in Tables 1-4.
Characteristics of Pseudomonas fluorescens OS8-based plasmid-containing luminescent heavy metal sensors and toxicity control strains
| OS8(pDN | OS8(pDN | OS8(pDN | OS8(pDNlux) | |
| 1600 ± 540 | 3960 ± 1300 | 25900 ± 8700 | 64500 ± 6600 | |
| 200 | 7 | 6 | no induction | |
| 5 × 106 | 4 × 106 | 4 × 106 | 5 × 106 | |
| 10-9 (0.0003)/10-7 (0.04) | 10-7 (0.04)/10-6 (0.4) | 10-7 (0.03)/10-6 (0.4) | 2.5 × 10-7 (0.07) | |
| 10-10 (0.00003)/10-7 (0.04) | not tested | not tested | 2 × 10-6 (0.5) | |
| 5 × 10-6 (0.9)/10-2 (2740) | 8 × 10-7 (0.2)/5 × 10-4 (92) | 6 × 10-8 (0.01)/10-4 (18) | 4 × 10-2 (7300) | |
| No induction | 4 × 10-5 (6.4)/5 × 10-2 (8050) | 8 × 10-6 (1.3)/3 × 10-2 (4800) | 3 × 10-2 (4800) | |
| No induction | 9 × 10-7 (0.3)/10-3 (500) | 4 × 10-7 (0.1)/10-3 (500) | 7 × 10-4 (230) | |
| not tested | not tested | not tested | not tested | |
| not tested | not tested | not tested | not tested | |
a luminescence (relative light units, RLU) of 100 μl of bacterial suspension before the test as measured by plate luminometer Fluoroskan (ThermoLabsystems). Average of at least three assays
b as fold over the (non-induced) background
c see equation 4 in Methods
d the lowest tested concentration causing a measurable decrease in the bioluminescence of the sensor strains (read from concentration-induction curves in Figure 1)
e concentration causing 50% decrease in the bioluminescence production (calculated from Figure 2)
f tested as ZnSO4 × 7H2O
g tested as CuSO4 × 5H2O
Characteristics of Pseudomonas fluorescens OS8-based chromosomal luminescent heavy metal sensors and toxicity control strains
| OS8::Kn | OS8::Kn | OS8::Kn | OS8::Kn | OS8::Kn | OS8::Knlux | |
| 1290 ± 240 | 1250 ± 180 | 3530 ± 1570 | 84 ± 35 | 2860 ± 320 | 600–1400b | |
| 400 | 7 | 20 | 50 | 80 | no induction | |
| 2 × 107 | 3 × 107 | 6 × 106 | 3 × 106 | 3 × 107 | 3 × 106 – 3 × 107b | |
| 3 × 10-9 (0.0008)/5 × 10-6 (1.3) | no induction | 3 × 10-7 (0.08)/5 × 10-6 (1.4) | 3 × 10-8 (0.008)/10-6 (0.4) | 2 × 10-8 (0.005)/10-6 (0.4) | 5 × 10-7 (0.14) | |
| 3 × 10-9 (0.0008)/5 × 10-6 (1.3) | not tested | not tested | not tested | not tested | 2 × 10-6 (0.58) | |
| 5 × 10-5 (9.2)/5 × 10-2 (9150) | no induction | 8 × 10-8 (0.02)/10-2 (2750) | 8 × 10-8 (0.02)/5 × 10-4 (92) | 3 × 10-8 (0.006)/5 × 10-3 (915) | 2 × 10-2 (3660) | |
| no induction | no induction | 3 × 10-5 (4.8)/5 × 10-2 (8050) | 2 × 10-5 (3.2)/10-2 (2420) | 4 × 10-6 (0.6)/2 × 10-2 (3220) | 3.5 × 10-2 (5640) | |
| no induction | no induction | 4 × 10-7 (0.1)/10-3 (500) | 2 × 10-7 (0.07)/10-3 (500) | 3 × 10-7 (0.1)/10-3 (500) | 7 × 10-4 (231) | |
| not tested | 5 × 10-5 (8)/10-3 (240) | not tested | not tested | not tested | 8 × 10-3 (1280) | |
| not tested | no induction | not tested | not tested | not tested | 5 × 10-7 (0.083) | |
a luminescence (relative light units, RLU) of 100 μl of bacterial suspension before the test as measured by plate luminometer Fluoroskan (ThermoLabsystems). Average of at least three assays
b cells at different optical densities (see Methods) yielded different RLU values and number of viable cells
c as fold over the (non-induced) background
d see equation 4 in Methods
e the lowest tested concentration causing a measurable decrease in the bioluminescence of the sensor strains (read from concentration-induction curves in Figure 1)
f concentration causing 50% decrease in the bioluminescence production (calculated from Figure 2)
g tested as ZnSO4 × 7H2O
h tested as CuSO4 × 5H2O
Characteristics of Staphylococcus aureus and Bacillus subtilis-based luminescent heavy metal sensors and toxicity control strains
| 81 ± 30 | 84 ± 30 | 750 ± 70 | 120 ± 40 | |
| 30 | 4 | no induction | no induction | |
| 107 | 107 | 107 | 107 | |
| 10-8 (0.003)/5 × 10-7 (0.1) | 4 × 10-8 (0.01)/5 × 10-7 (0.1) | 5 × 10-8 (0.01) | 10-7 (0.04) | |
| 4 × 10-8 (0.007)/10-5 (2.75) | 10-8 (0.002)/10-7 (0.027) | 8 × 10-7 (0.2) | 3 × 10-6 (0.6) | |
| 2 × 10-5 (3.2)/5 × 10-4 (81) | 10-5 (1.6)/10-4 (24) | 8 × 10-5 (13) | 10-4 (22) | |
| 10-7 (0.03)/10-3 (500) | 10-7 (0.03)/10-3 (500) | 10-3 (530) | 3 × 10-3 (990) | |
a control for RN4220(pcadCPcadAlux)
b control for BR51(pcadCPcadAlux)
c luminescence (relative light units, RLU) of 100 μl of bacterial suspension before the test as measured by plate luminometer Fluoroskan (ThermoLabsystems). Average of at least three assays.
d as fold over the (non-induced) background
e see equation 4 in Methods
f the lowest tested concentration causing a measurable decrease in the bioluminescence of the sensor strains (read from concentration-induction curves in Figure 1)
g concentration causing 50% decrease in the bioluminescence production (calculated from Figure 2)
h tested as ZnSO4 × 7H2O