| Literature DB >> 35740878 |
Loïc Martinet1,2, Dominique Baiwir3, Gabriel Mazzucchelli4, Sébastien Rigali1,2.
Abstract
Ferroverdins are ferrous iron (Fe2+)-nitrosophenolato complexes produced by a few Streptomyces species as a response to iron overload. Previously, three ferroverdins were identified: ferroverdin A, in which three molecules of p-vinylphenyl-3-nitroso-4-hydroxybenzoate (p-vinylphenyl-3,4-NHBA) are recruited to bind Fe2+, and Ferroverdin B and Ferroverdin C, in which one molecule of p-vinylphenyl-3,4-NHBA is substituted by hydroxy-p-vinylphenyl-3,4-NHBA, and by carboxy-p-vinylphenyl-3,4-NHBA, respectively. These molecules, especially ferroverdin B, are potent inhibitors of the human cholesteryl ester transfer protein (CETP) and therefore candidate hits for the development of drugs that increase the serum concentration of high-density lipoprotein cholesterol, thereby diminishing the risk of atherosclerotic cardiovascular disease. In this work, we used high-resolution mass spectrometry combined with tandem mass spectrometry to identify 43 novel ferroverdins from the cytosol of two Streptomyces lunaelactis species. For 13 of them (designated ferroverdins C2, C3, D, D2, D3, E, F, G, H, CD, DE, DF, and DG), we could elucidate their structure, and for the other 17 new ferroverdins, ambiguity remains for one of the three ligands. p-formylphenyl-3,4-NHBA, p-benzoic acid-3,4-NHBA, 3,4-NHBA, p-phenylpropionate-3,4-NHBA, and p-phenyacetate-3,4-NHBA were identified as new alternative chelators for Fe2+-binding, and two compounds (C3 and D3) are the first reported ferroverdins that do not recruit p-vinylphenyl-3,4-NHBA. Our work thus uncovered putative novel CETP inhibitors or ferroverdins with novel bioactivities.Entities:
Keywords: CETP inhibitors; HDL cholesterol; Streptomyces; biosynthetic gene cluster; iron complexes; metal-nitrosophenolato compounds; natural products
Mesh:
Substances:
Year: 2022 PMID: 35740878 PMCID: PMC9221444 DOI: 10.3390/biom12060752
Source DB: PubMed Journal: Biomolecules ISSN: 2218-273X
Figure 1Molecular tag signals for the identification of ferroverdin-related compounds. ①For ferroverdin A, B, and C, the m/z ratios are 268.06 and 119.05 (for the p-vinylphenyl-3,4-NHBA and its major MS fragment); ②For ferroverdin B, the m/z ratios are 284.06 and 135.04 (for the hydroxy-p-vinylphenyl-3,4-NHBA and its major MS fragment); ③ For ferroverdin C, the m/z ratios are 312.05, 163.04, and 166.04 (for carboxy-p-vinylphenyl-3,4-NHBA and its two major MS fragments).
Ferroverdin-like compounds produced by the S. lunaelactis strains MM109T and MM37.
| # | Ferroverdin | Molecular Formula | Δm(ppm) | Fe2+ Chelators | Reference | |
|---|---|---|---|---|---|---|
| 1 | A | C45H30N3O12Fe− | 860.1199 | 1.7 | AAA | [ |
| 2 | B | C45H30N3O13Fe− | 876.1141 | 0.9 | AAB | [ |
| 3 | C | C46H30N3O14Fe− | 904.1010 | 1.2 | AAC | [ |
| 4 | C2 | C47H30N3O16Fe− | 948.0990 | 1 | ACC | This study |
| 5 | C3 | C48H30N3O18Fe− | 992.0868 | 1 | CCC | This study |
| 6 | D | C44H28N3O13Fe− | 862.0991 | 1.6 | AAD | This study |
| 7 | D2 | C43H26N3O14Fe− | 864.0784 | 1.7 | ADD | This study |
| 8 | D3 | C42H24N3O15Fe− | 866.0579 | 1.9 | DDD | This study |
| 9 | E | C44H28N3O14Fe− | 878.0933 | 0.7 | AAE | This study |
| 10 | F | C37H24N3O12Fe− | 758.0726 | 1.4 | AAF | This study |
| 11 | G | C46H32 N3O14Fe− | 906.1253 | 1.5 | AAG | This study |
| 12 | H | C44H30N3O14Fe− | 892.1101 | 2.1 | AAH | This study |
| 13 | CD | C45H28N3O15Fe− | 906.0888 | 1.3 | ACD | This study |
| 14 | DE | C43H26N3O15Fe− | 880.0732 | 1.5 | ADE | This study |
| 15 | DF | C36H22 N3O13Fe− | 760.0518 | 1.4 | ADF | This study |
| 16 | DG | C46H28N3O15Fe− | 908.1043 | 1.2 | ADG | This study |
| From compounds 17 to 46, MS/MS fragmentation did not allow us to identify the third chelating molecule | ||||||
| 17 | NA | C47H32N3O15Fe− | 934.1196 | 0.79 | AAX | This study |
| 18 | NA | C39H30N3O10Fe− | 756.1295 | 1.2 | AAX | This study |
| 19 | NA | C38H31N3O16Fe− | 841.1068 | 1 | AAX | This study |
| 20 | NA | C45H32N3O14Fe− | 894.1246 | 0.8 | AAX | This study |
| 21 | NA | C47H32N3O13Fe− | 902.1298 | 0.8 | AAX | This study |
| 22 | NA | C54H56N6O19Fe− | 1148.2958 | 0.5 | AAX | This study |
| 23 | NA | C48H34N3O15Fe− | 948,1361 | 1.3 | AAX | This study |
| 24 | NA | C38H21N3O17Fe− | 857.1021 | 1.5 | AAX | This study |
| 25 | NA | C40H25N4O13Fe− | 825.0794 | 2.5 | AAX | This study |
| 26 | NA | C34H31N3O16Fe− | 793.0000 | 1.5 | AAX | This study |
| 27 | NA | C35H33N3O16Fe− | 807.0000 | 1.9 | AAX | This study |
| 28 | NA | C33H26N3O10Fe− | 680.0979 | 0.9 | AAX | This study |
| 29 | NA | C45H30N3O15Fe− | 908.0593 | 4.3 | AAX | This study |
| 30 | NA | C36H32N3O10Fe− | 722.1453 | 1.5 | AAX | This study |
| 31 | NA | C40H32N4O16Fe− | 880.11792 | 1.3 | AAX | This study |
| 32 | NA | C32H27N3O16Fe− | 765.0757 | 1.5 | AAX | This study |
| 33 | NA | C46H30N3O15Fe− | 920.1043 | 1.2 | AAX | This study |
| 34 | NA | C47H34N3O14Fe− | 920.1412 | 1.2 | AAX | This study |
| For compounds 35 to 44, MS/MS fragmentation only identified | ||||||
| 35 | NA | C47H32N3O16Fe− | 950.1150 | 1.3 | AXX | This study |
| 36 | NA | C44H30N3O15Fe− | 896.1037 | 0.6 | AXX | This study |
| 37 | NA | C39H28N4O10Fe− | 768.1158 | 0.3 | AXX | This study |
| 38 | NA | C37H32N3O12Fe− | 766.1348 | 1 | AXX | This study |
| 39 | NA | C40H30N3O12Fe− | 800.1192 | 1 | AXX | This study |
| 40 | NA | C41H31N4O10Fe− | 795.1405 | 1.3 | AXX | This study |
| 41 | NA | C36H30N3O12Fe− | 752.1190 | 0.77 | AXX | This study |
| 42 | NA | C53H54N6O20Fe− | 1150.2754 | 0.2 | AXX | This study |
| 43 | NA | C43H26N3O15Fe− | 880.0732 | 1.5 | AXX | This study |
| 44 | NA | C40H30N5O16Fe− | 892.1035 | 0.1 | AXX | This study |
| 45 | NA | C35H30N3O10Fe− | 708.1296 | 1.4 | ? | This study |
| 46 | NA | C35H28N3O10Fe− | 706.1140 | 1.4 | ? | This study |
The letter(s) and number assigned to the newly structurally defined ferroverdins are based on the following principles: (1) a novel letter (starting from “D” as ferroverdins A, B, and C were previously designated) was given to ferroverdins that possess at least 1 unconventional molecule involved in iron chelation, in addition to p-vinylphenyl-3,4-NHBA; (2) the new letter was assigned according to the chronological order of its discovery (the first newly discovered molecule was assigned D, the second E, etc.); (3) the number associated with a letter (from 2 to 3) reflects the number of iron-chelating molecule(s) that are different from p-vinylphenyl-3,4-NHBA.
Figure 2Structure proposed for new ferroverdins. Compound identification and structure elucidation was performed by UPLC–MS/MS. Each compound was identified based on its exact mass and isotope pattern and the analysis of the MS/MS spectra obtained by molecular ion fragmentation as detailed in supplementary Figure S1.
Molecules involved in ferrous iron chelation in ferroverdins.
| Ferroverdins | ||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
|
| 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 | 15 | 16 |
| A | B | C | C2 | C3 | D | D2 | D3 | E | F | G | H | CD | DE | DF | DG | |
| 3 | 2 | 2 | 1 | - | 2 | 1 | - | 2 | 2 | 2 | 2 | 1 | 1 | 1 | 1 | |
| Hydroxy- | - | 1 | - | - | - | - | - | - | - | - | - | - | - | - | - | - |
| Carboxy- | - | - | 1 | 2 | 3 | - | - | - | - | - | - | - | 1 | - | - | - |
| - | - | - | - | - | 1 | 2 | 3 | - | - | - | - | 1 | 1 | 1 | 1 | |
| - | - | - | - | - | - | - | - | 1 | - | - | - | - | 1 | - | - | |
| 3,4-NHBA | - | - | - | - | - | - | - | - | - | 1 | - | - | - | - | 1 | - |
| - | - | - | - | - | - | - | - | - | - | 1 | - | - | - | - | 1 | |
| - | - | - | - | - | - | - | - | - | - | - | 1 | - | - | - | - | |