| Literature DB >> 25627471 |
Marcin Bizukojc1, Joanna Gonciarz.
Abstract
Despite oxygen is believed to be the most important environmental factor for any aerobic microbial process, the quantitative studies of its influence on growth and metabolite formation on the level of individual pellets formed by filamentous fungi were seldom performed.Entities:
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Year: 2015 PMID: 25627471 PMCID: PMC4464389 DOI: 10.1007/s00449-015-1366-y
Source DB: PubMed Journal: Bioprocess Biosyst Eng ISSN: 1615-7591 Impact factor: 3.210
Fig. 1Changes of lovastatin (a), biomass (b), lactose (c) and organic nitrogen (d) concentrations in time in experiments from #1 to #3 with varied pellet diameter; linear graphs present lovastatin r LOV and biomass r X volumetric formation rates and lactose r LAC and organic nitrogen r N volumetric uptake rates
Fig. 2Averaged experimental oxygen profiles for A. terreus viable pellets of various diameters; oxygen concentrations in the pellet, boundary layer and bulk liquid were discriminated
Fig. 3Comparison of oxygen profiles in viable and dead pellets of various diameters in 96 h of the experiment; the measuring conditions for both viable and dead cells with regard to measurement time were exactly the same
Averaged effective diffusivities, external efficiencies and their standard deviations for A. terreus pellets of various sizes from various hours of cultivation
| Experiment/mean pellet diameter | Hour of cultivation (h) | Effective diffusivity | External efficiency |
|---|---|---|---|
| #1 | 24 | 634 ± 94 | 0.93 ± 0.05 |
| 48 | 1,164 ± 78 | 0.035 ± 0.005 | |
| 72 | 896 ± 47 | 0.0009 ± 0.0005 | |
| 96 | 887 ± 29 | 0.0009 ± 0.0004 | |
| 120 | 1155 ± 151 | 0.76 ± 0.18 | |
| 144 | 1342 ± 120 | 0.56 ± 0.34 | |
| #2 | 24 | 993 ± 28 | 0.26 ± 0.05 |
| 48 | 789 ± 45 | 0.29 ± 0.06 | |
| 72 | 850 ± 48 | 0.0009 ± 0.0005 | |
| 96 | 1,027 ± 150 | 0.60 ± 0.06 | |
| 120 | 824 ± 115 | 0.65 ± 0.06 | |
| 144 | 925 ± 142 | 0.33 ± 0.05 | |
| #3 1,400(±200) μm | 24 | 985 ± 11 | 0.93 ± 0.03 |
| 48 | 985 ± 20 | 0.97 ± 0.01 | |
| 72 | 909 ± 66 | 0.60 ± 0.05 | |
| 96 | 918 ± 120 | 0.92 ± 0.03 | |
| 120 | 1,691 ± 210 | 0.97 ± 0.04 | |
| 144 | 1,061 ± 123 | 0.98 ± 0.06 |
athe values of effective diffusivities were less accurately determined for these pellets, in which low oxygen concentration was observed
Fig. 4Determination of mass transfer impact on the processes run in A. terreus pellets using Weisz’s modulus and criterion; data for experiments from #1 to #3; vertical lines denounce Weisz’s criterion Φ < 0.3, 0.3 < Φ < 3 and Φ > 3, respectively
Fig. 5Changes of k a in time for A. terreus pellets in the experiments from #1 to #3; values were determined in each hour of the cultivation for three measured pellets
Fig. 6Time changes of averaged oxygen profiles in the viable pellets, lovastatin lactose concentration in experiments from #4 to #8; vertical arrows the surface of the pellet
Fig. 7Correlation between oxygen concentration on the surface of the pellet and lactose concentration in the broth for experiments (a) from #4 to #8 and (c) from #1 to #3, and oxygen concentration on the surface of the pellet and lovastatin concentration in the broth for experiments (b) from #4 to #8 and (d) from #1 to #3
A. terreus pellet diameters during lovastatin biosynthesis to be found in literature
| Average pellet diameter (μm) | Lovastatin titre (mg LOV l−1) | Bioreactor*; carbon source; aeration/stirring | Literature |
|---|---|---|---|
| 100–300 | Not given | 500-l STB; not given; controlled pO2 at 50 % | [ |
| 1,500 and 2,000 | 20 and 40 | 5-l STB; lactose; 800 and 300 rpm | [ |
| 2,000–3,000 | Not given | 17-l FBB; lactose; vvm = 1 liar l−1 min−1 | [ |
750–1,600 650–1,350 | 331 458 | 125-ml ShF; lactose; shaking speed not given 5-l STB; lactose; vvm = 1 liar l−1 min−1, 225–425 min−1 | [ |
| 3,500–5,650 | 900 | 2-l ALB; glucose and milk powder; 1.5 lair l−1 min−1 | [ |
| 1,000–3,800 | From 30 to 70 | 150-ml ShF; lactose; 110 min−1 | [ |
| 1,400–6,200 | From 30 to 90 | 150-ml ShF; lactose; 110 min−1 | This work |
STB stirred tank bioreactor, FBB fluidised bed bioreactor, ShF shake flask, ALB air-lift bioreactor