Understanding the Biosynthesis of Paxisterol in Lichen-Derived Penicillium aurantiacobrunneum for Production of Fluorinated Derivatives
Abstract
:1. Introduction
2. Results
3. Materials and Methods
3.1. Fungal Source
3.2. Feeding Assays
3.2.1. 13C-Labelled Glucose
3.2.2. 13C-Labelled Sodium Acetate
3.3. Extraction and Isolation of Compound 7
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Sample Availability
References
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Position | (20R)-7α-Fluoroacetoxy-8-hydroxypaxisterol (7 a) | (20R)-7,8-Dihydroxypaxisterol (3 b) | ||
---|---|---|---|---|
1H | 13C | 1H | 13C | |
δH (m, J in Hz) | δC, Type | δH (m, J in Hz) | δC, Type | |
1 | 1.02 (m), 1.77 (m) | 37.6, CH2 | 1.02 (m), 1.77 (m) | 30.2, CH2 |
2 | 1.48 (m), 1.75 (m) | 30.2, CH2 | 1.49 (m), 1.75 (m) | 30.2, CH2 |
3 | 3.54 (m) | 70.5, CH | 3.58 (ddd, 15.8, 10.9, 4.7) | 70.6, CH2 |
4 | 1.34 (m), 1.45 (m) | 36.5, CH2 | 1.37 (m), 1.48 (dd, 12, 5.5) | 36.7, CH2 |
5 | 1.57 (m) | 37.5, CH | 1.68 (m) | 36.2, CH |
6 | 1.34 (m), 2.09 (m) | 29.3, CH2 | 1.26 (m), 2.06 (m) | 32.1, CH2 |
7 | 5.15 (brt, 2.5) | 74.7, CH | 3.74 (t, 2.6) | 71.4, CH |
8 | 72.8, C | 73.9, C | ||
9 | 1.07 (m) | 49.2, CH | 1.11 (m) | 48.1, CH |
10 | 35.5, C | 35.4, C | ||
11 | 1.64 (m), 1.80 (m) | 18.5, CH2 | 1.63 (m), 1.80 (m) | 18.4, CH2 |
12 | 1.71 (m), 2.24 (m) | 28.2, CH2 | 1.71 (m), 2.27 (m) | 28.2, CH2 |
13 | 57.5, C | 57.2, C | ||
14 | 1.82 (m) | 55.2, CH | 2.23 (brs) | 55.0, CH |
15 | 4.30 (brs) | 74.6, CH | 4.34 (brs) | 74.3, CH |
16 | 1.70 (m), 1.92 (d, 13.1) | 34.8, CH2 | 1.83 (m), 1.95 (m) | 34.8, CH2 |
17 | 2.14 (d, 9.7) | 49.2, CH | 2.15 (d, 9.5) | 49.1, CH |
18 | 5.51 (s) | 107.3, CH | 5.54 (s) | 107.3, CH |
19 | 1.00 (a) | 11.7, CH3 | 0.98 (s) | 11.5, CH3 |
20 | 85.2, C | 85.0, C | ||
21 | 1.33 (s) | 26.4, CH3 | 1.37 (s) | 26.2, CH3 |
22 a,b | 1.75 (m) | 39.8, CH2 | 1.79 (m) | 39.6, CH2 |
23 | 1.95 (m), 2.02 (m) | 29.5, CH2 | 2.01 (m) | 29.1, CH2 |
24 | 155.8, C | 155.7, C | ||
25 | 2.26 (sept, 6.8) | 33.9, CH | 2.28 (sept, 6.8) | 33.8, CH |
26 | 1.03 (6.8) | 21.1, CH3 | 1.06 (s) | 20.9, CH3 |
27 | 1.03 (6.8) | 21.1, CH3 | 1.06 (s) | 20.9, CH3 |
28 | 4.71 (brs), 4.76 (brs) | 105.8, CH2 | 4.73 (brs), 4.79 (brs) | 105.6, CH2 |
CH2F | 4.94 (dd, 46.8, 17.6), 4.97 (dd, 46.8, 17.6) | 77.8 (178.2 Hz), CH2 | ||
O-C=O | 168.2, C |
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Yamano, Y.; Rakotondraibe, H.L. Understanding the Biosynthesis of Paxisterol in Lichen-Derived Penicillium aurantiacobrunneum for Production of Fluorinated Derivatives. Molecules 2022, 27, 1641. https://doi.org/10.3390/molecules27051641
Yamano Y, Rakotondraibe HL. Understanding the Biosynthesis of Paxisterol in Lichen-Derived Penicillium aurantiacobrunneum for Production of Fluorinated Derivatives. Molecules. 2022; 27(5):1641. https://doi.org/10.3390/molecules27051641
Chicago/Turabian StyleYamano, Yoshi, and Harinantenaina L. Rakotondraibe. 2022. "Understanding the Biosynthesis of Paxisterol in Lichen-Derived Penicillium aurantiacobrunneum for Production of Fluorinated Derivatives" Molecules 27, no. 5: 1641. https://doi.org/10.3390/molecules27051641
APA StyleYamano, Y., & Rakotondraibe, H. L. (2022). Understanding the Biosynthesis of Paxisterol in Lichen-Derived Penicillium aurantiacobrunneum for Production of Fluorinated Derivatives. Molecules, 27(5), 1641. https://doi.org/10.3390/molecules27051641