| Literature DB >> 29568151 |
Michał Blatkiewicz1, Anna Antecka1, Andrzej Górak1,2, Stanisław Ledakowicz1.
Abstract
An approach to describe continuous partitioning of Cerrena unicolor laccase in a PEG 6000-phosphate aqueous two-phase system was proposed. The laccase was separated from crude supernatant of C. unicolor-submerged culture, and all the experiments were carried out in 25 °C and pH 7 conditions. Masses of both phases and their compositions at phase equilibrium, as well as laccase activity concentrations at different mixing points, were measured in batch experiments. An empirical short-cut method was developed which allows for calculation of mass and volume fractions of the phases, laccase concentration factors, and laccase recoveries. Theoretical predictions were verified by several experiments carried out in a special mixer-settler unit with automatic substrate feed and continuous collection of separated phases. Required concentration of the laccase was possible to achieve in a one-step extraction process in the mixer-settler unit. The predictions of the short-cut method were compared to the results of experimental measurements of phase compositions, phase volume fractions, concentration factors and enzymatic yields at steady-state operation of the extraction unit. The values of experimental results lay well within the 10% error range of the predicted values.Entities:
Keywords: ATPS; Downstream processing; Laccase; Model
Year: 2017 PMID: 29568151 PMCID: PMC5846976 DOI: 10.1007/s11696-017-0330-5
Source DB: PubMed Journal: Chem Zvesti ISSN: 0366-6352 Impact factor: 2.097
Fig. 1Extraction vessel
Fig. 2Single-stage mixer-settler unit
Numerically fitted parameters for binodal curve equation
| Parameter | Value |
|---|---|
|
| 14.3436 |
|
| − 52.5846 |
|
| 0.6879 |
|
| − 90.0156 |
Fig. 3Experimental aqueous two-phase system: a phase diagram, b extended phase diagram with tie line convergence point
Tie line convergence point coordinates
| Coordinate | Value |
|---|---|
|
| − 0.253 |
|
| 1.153 |
Fig. 4Chosen mixing points for the empirical stage
Mixing points and their corresponding concentration factor values for batch experiments
| Exp no. | Tie line | PEG [wt%] | Phos. [wt%] | CF [UL−1/UL−1] | Exp no. | Tie line | PEG [wt%] | Phos [wt%] | CF [UL−1/UL−1] |
|---|---|---|---|---|---|---|---|---|---|
| 1 | A | 39.7 | 3.1 | 0.515 ± 0.021 | 15 | C | 22.0 | 6.7 | 1.499 ± 0.012 |
| 2 | A | 33.1 | 5.6 | 0.543 ± 0.117 | 16 | C | 13.0 | 9.8 | 0.987 ± 0.102 |
| 3 | A | 26.5 | 8.1 | 0.245 ± 0.024 | 17 | C | 6.5 | 12.0 | 0.734 ± 0.106 |
| 4 | A | 19.8 | 10.6 | 0.192 ± 0.028 | 18 | D | 27.3 | 3.3 | 5.391 ± 0.121 |
| 5 | A | 13.2 | 13.1 | 0.178 ± 0.027 | 19 | D | 20.5 | 5.5 | 2.156 ± 0.070 |
| 6 | A | 6.6 | 15.6 | 0.257 ± 0.017 | 20 | D | 13.7 | 7.8 | 1.514 ± 0.020 |
| 7 | B | 36.6 | 2.9 | 1.183 ± 0.129 | 21 | D | 6.8 | 10.0 | 1.124 ± 0.004 |
| 8 | B | 30.5 | 5.1 | 1.070 ± 0.049 | 22 | E | 21.5 | 3.6 | 4.670 ± 0.162 |
| 9 | B | 24.4 | 7.3 | 0.600 ± 0.027 | 23 | E | 14.5 | 5.8 | 1.954 ± 0.004 |
| 10 | B | 18.3 | 9.5 | 0.495 ± 0.017 | 24 | E | 7.4 | 8.0 | 1.032 ± 0.047 |
| 11 | B | 12.2 | 11.7 | 0.491 ± 0.028 | 25 | F | 15.0 | 4.0 | 5.474 ± 0.162 |
| 12 | B | 6.1 | 13.9 | 0.506 ± 0.030 | 26 | F | 10.0 | 5.3 | 1.403 ± 0.063 |
| 13 | C | 32.4 | 3.1 | 3.982 ± 0.111 | 27 | F | 5.0 | 6.4 | 0.962 ± 0.009 |
| 14 | C | 25.9 | 5.3 | 2.061 ± 0.049 |
Mixing points for continuous extraction in a mixer-settler unit
| Exp. no. | PEG conc. [wt%] | Phos. conc. [wt%] | Phos. solution flow [g/s] | PEG solution flow [g/s] | Supernatant flow [g/s] |
|---|---|---|---|---|---|
| 1 | 23.5 | 4.6 | 0.030 | 0.010 | 0.023 |
| 2 | 7.8 | 9.2 | 0.009 | 0.018 | 0.030 |
| 3 | 34.7 | 5.4 | 0.038 | 0.010 | 0.006 |
| 4 | 14.3 | 12.6 | 0.018 | 0.027 | 0.017 |
| 5 | 27.5 | 3.3 | 0.034 | 0.007 | 0.020 |
| 6 | 17.0 | 8.1 | 0.021 | 0.017 | 0.023 |
Fig. 5a Mass increments of substrates and products over time: sum of substrates (filled square), mass of bottom phase (filled circle), mass of top phase (open circle). b Phase-forming components in phases over time: phosphate in bottom phase (filled square), PEG in bottom phase (filled circle), phosphate in top phase (open square), PEG in top phase (open circle). c Laccase activities in phases over time: bottom phase (filled circle), top phase (open circle). d Efficiency parameters over time: bottom phase concentration factor (filled circle), bottom phase yield (open circle)
Fig. 6Parity plots of experimental and theoretical values: a phosphate content in bottom phase, b PEG 6000 content in top phase, c bottom phase volume fraction, d bottom phase concentration factor, e bottom phase yield