| Literature DB >> 26857605 |
Congkui Tian1, Jinren Ni1, Fang Chang1, Sitong Liu1, Nan Xu2, Weiling Sun1, Yuan Xie2, Yongzhao Guo2, Yanrong Ma1, Zhenxing Yang1, Chenyuan Dang1, Yuefei Huang3, Zhexian Tian4, Yiping Wang4.
Abstract
Although DBP (di-n-butyl phthalate) is commonly encountered as an artificially-synthesized plasticizer with potential to impair fertility, we confirm that it can also be biosynthesized as microbial secondary metabolites from naturally occurring filamentous fungi strains cultured either in an artificial medium or natural water. Using the excreted crude enzyme from the fungi for catalyzing a variety of substrates, we found that the fungal generation of DBP was largely through shikimic acid pathway, which was assembled by phthalic acid with butyl alcohol through esterification. The DBP production ability of the fungi was primarily influenced by fungal spore density and incubation temperature. This study indicates an important alternative natural waterborne source of DBP in addition to artificial synthesis, which implied fungal contribution must be highlighted for future source control and risk management of DBP.Entities:
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Year: 2016 PMID: 26857605 PMCID: PMC4746570 DOI: 10.1038/srep19791
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Temporal evolution of DBP production by three fungi inoculated in artificial media at 28 °C:
(a–c) show the concentration of total produced DBP during the culture process inoculated with T. asperellum PTN7, A. niger PTN42 and P. lanosum PTN121, respectively. The labels 1, 2 and 3 refer to spore suspensions of 20 μL, 200 μL, and 2000 μL; (d) shows the concentration change of DBP in the culture medium without fungal mycelium during the culture process inoculated with T. asperellum PTN7, A. niger PTN42 and P. lanosum PTN121 at 200 μL spore suspension (See control in Supplementary Fig. S3, control 1).
Figure 2Dry weight of mycelium results for different spore densities by three fungi inoculated in artificial media at 28 °C from 20 mL fermentation broth.
HPLC quantification of DBP production by three fungi at different background DBP concentration in artificial medium (times of repetition = 3).
| Fungal strains | Background DBP concentration (μg/L) | ||||
|---|---|---|---|---|---|
| 0 | 25 | 50 | 75 | 100 | |
| PTN7 | 3031 ± 42 | 2958 ± 45 | 3003 ± 21 | 3055 ± 35 | 2922 ± 34 |
| PTN42 | 2642 ± 19 | 2595 ± 31 | 2646 ± 56 | 2605 ± 36 | 2557 ± 41 |
| PTN121 | 2850 ± 42 | 2796 ± 32 | 2822 ± 34 | 2893 ± 93 | 2768 ± 51 |
Concentration (μg/L) of DBP by the three fungi cultured in artificial medium at 15 °C and 28 °C(repetition times = 3).
| Strains | First test(μg/L) | Duplicated (μg/L) | Triplicated (μg/L) | Average (μg/L) |
|---|---|---|---|---|
| PTN7(15 °C) | 5259 | 5276 | 5154 | 5230 ± 80 |
| PTN42(15 °C) | 14663 | 14677 | 15103 | 14810 ± 190 |
| PTN121(15 °C) | 5876 | 5936 | 5934 | 5920 ± 60 |
| PTN7(28 °C) | 2821 | 2847 | 2903 | 2857 ± 42 |
| PTN42(28 °C) | 2447 | 2545 | 2521 | 2504 ± 51 |
| PTN121(28 °C) | 2640 | 2626 | 2551 | 2606 ± 48 |
Physicochemical properties of the nature water.
| pH | TOC (mg/L) | TP (mg/L) | |
|---|---|---|---|
| W-CH | 7.27 | 2.702 | 0.21 |
| W-W | 7.89 | 5.969 | 0.15 |
| W-ZH | 8.02 | 3.251 | 0.17 |
W-CH, W-W and W-ZH represent water samples collected from upper Chongqing, middle Wuhan and downstream Zhenjiang reaches of the Yangtze River, respectively.
Concentrations (μg/L) of DBP and dry weight of mycelia at the 50 day’s cultivation of the three fungi in natural water at 15 °C (repetition times = 3).
| Sample No. | First test(μg/L) | Duplicated(μg/L) | Triplicated(μg/L) | Average(μg/L) | Dry weight ofmycelia (mg) |
|---|---|---|---|---|---|
| 16.5 | 16.9 | 18.1 | 17.1 ± 0.79 | 1.3 ± 0.21 | |
| W-CH-PTN7 | 42.8 | 43.6 | 41.4 | 42.6 ± 1.18 | 21.1 ± 1.24 |
| W-CH-PTN42 | 20.6 | 21.4 | 21.8 | 21.2 ± 0.59 | 4.2 ± 0.37 |
| W-CH-PTN121 | 30.2 | 31.2 | 29.7 | 30.4 ± 0.79 | 8.5 ± 0.68 |
| 10.4 | 12.8 | 11.0 | 11.4 ± 1.18 | 1.8 ± 0.16 | |
| W-W-PTN7 | 17.9 | 18.5 | 19.0 | 18.5 ± 0.59 | 16.4 ± 1.87 |
| W-W-PTN42 | 18.7 | 19.4 | 18.5 | 18.9 ± 0.60 | 3.6 ± 0.49 |
| W-W-PTN121 | 33.2 | 33.8 | 37.1 | 34.8 ± 2.16 | 9.6 ± 0.72 |
| 11.4 | 13.6 | 12.2 | 12.4 ± 1.18 | 1.9 ± 0.21 | |
| W-ZH-PTN7 | 17.7 | 18.5 | 19.2 | 18.5 ± 0.79 | 15.8 ± 0.98 |
| W-ZH-PTN42 | 19.0 | 18.7 | 19.4 | 19.0 ± 0.39 | 2.9 ± 0.32 |
| W-ZH-PTN121 | 33.6 | 35.0 | 34.0 | 34.2 ± 0.79 | 11.6 ± 0.56 |
W-CH, W-W and W-ZH represent water samples respectively collected from upper Chongqing, middle Wuhan and downstream Zhenjiang reaches of the Yangtze River. The dates of weight of mycelia are measured by the dry weight of mycelium culture in 200 ml nature water.
Figure 3(A) HPLC time series of D-glucose, D-glucose and n-butyl alcohol, phthalic acid and n-butyl alcohol, protocatechuic acid and n-butyl alcohol for cases when the substrates were catalyzed by crude enzyme from the three different species of filamentous fungi: (a) T.asperellum PTN7; (b) A.niger PTN42; and (c) P.lanosum PTN121. Black arrows indicate the corresponding HPLC peaks of DBP (See controls in Supplementary Fig. S3, controls 2–7). (B) Biosynthesis of DBP catalyzed by crude enzyme from the three different species of filamentous fungi with different substrates: (a) phthalic acid and n-butyl alcohol; (b) protocatechuic acid and n-butyl alcohol; (c) D-glucose and n-butyl alcohol; and (d) D-glucose. (C) DBP biosynthesis of the filamentous fungi, T.asperellum PTN7, A.niger PTN42, and P.lanosum PTN121.