| Literature DB >> 26473885 |
Shogo Mori1, Howard Williams2, Davey Cagle3, Kristopher Karanovich4, F David Horgen5, Roger Smith6, Coran M H Watanabe7.
Abstract
A new bioactive macrolactone, nuiapolide (1) was identified from a marine cyanobacterium collected off the coast of Niihau, near Lehua Rock. The natural product exhibits anti-chemotactic activity at concentrations as low as 1.3 μM against Jurkat cells, cancerous T lymphocytes, and induces a G2/M phase cell cycle shift. Structural characterization of the natural product revealed the compound to be a 40-membered macrolactone with nine hydroxyl functional groups and a rare tert-butyl carbinol residue.Entities:
Keywords: cell cycle; chemotaxis; cyanobacteria; macrolactone; polyketide
Mesh:
Substances:
Year: 2015 PMID: 26473885 PMCID: PMC4626689 DOI: 10.3390/md13106274
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Evaluation of Jurkat cultures in the Boyden chamber assay. Images of microscope fields of the bottom well after 24 h of incubation. (a) Bottom well received no FBS and no test substance; (b) Bottom well received 10% FBS and no test substance; (c) Bottom well received 10% FBS and FTY720 (5 µg/mL); (d) Bottom well received 10% FBS and 13-F10 extract (25 µg/mL). Shrinkage of cells in (c) is indicative of cell death.
Figure 2Cytotoxicity profile analysis of extracts: The turquoise bar represents samples where the percentage of live cells is ≥90% of the control. The black bar represents samples where the percentage of live cells is <90%. Controls included wells grown without FBS (−FBS) and with FTY720 (1 or 5 µg/mL). Sample codes are library plate number and coordinate on the plate. (a) Sample set 10- to 15- and (b) sample set 16- and 17-.
Figure 3Evaluation of nuiapolide (1) activity at 1 µg/mL. Images of microscope fields of the bottom well after 24 h of incubation. (a) Bottom well received no FBS and no test substance; (b) Bottom well received 10% FBS and no test substance; (c) Bottom well received 10% FBS and FTY720 (5 µg/mL); (d) Bottom well received 10% FBS and nuiapolide (1) (1 µg/mL).
Figure 4Cell cycle analysis of Jurkat cells treated with nuiapolide (1), 5 μg/mL. (a) Histograms of Jurkat cells stained with propidium iodide (numbers in the legend indicate the number of cells plotted for each treatment); (b) Table providing the % of cells distributed in each stage of the cell cycle.
Figure 6Structure of nuiapolide (1) and caylobolides A (2) and B (3).
NMR spectral data for nuiapolide (1) a.
| Position | δH ( | δH ( | δC in MeOH- | δC in DMSO- | TOCSY | HSQC-TOCSY b | HMBC c |
|---|---|---|---|---|---|---|---|
| 1 | - | - | 166.90, C | 166.04, C | |||
| 2 | 5.74, s | 5.67, s | 115.73, CH | 116.69, CH | 4, 44, 41–43 | 44 | 1, 3, 4, 44 |
| 3 | - | - | 161.20, C | 160.04, C | |||
| 4 | 2.58, m and 2.83, m | 2.59, m | 32.69, CH2 | 33.11, CH2 | 2, Ha, 5, 6, HC f | 5 | 2, 3, 5 |
| 5 | 1.60, m | 1.49, m | 23.86, CH2 | 24.08, CH2 | 4, H-a, a-OH, HC f | 4, C-i, C-iii | |
| 6 (C-i) d | 1.49, m | 1.31, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | 4, H-a, a-OH, HC f | C-i, C-iii | |
| 7 (H-a) e (C-iii) d | 3.78, s | 3.58, s | 69.8–70.8, CH | 69.2–70.2, CH | 4, a-OH, H-b, HC f | C-i, 8 | |
| (7)-OH | - | 4.44, d (4.4) or 4.47, d (4.2) | - | - | H-a, HC f | 8, C-i, C-iii | |
| 8 | 1.56, m | 1.37 | 43.51, CH2 | 44.67, CH2 | H-a, a-OH, HC f | C-i, C-ii, C-iii | C-iii |
| 9 (H-a) e (C-iii) d | 3.78, s | 3.58 | 69.8–70.8, CH | 69.2–70.2, CH | 4, a-OH, H-b, HC f | C-i, 8 | |
| (9)-OH | - | 4.44, d (4.4) or 4.47, d (4.2) | - | - | H-a, HC f | 8, C-i, C-iii | |
| 10 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-a, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 11 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 12 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 13 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2, CH | H-a, H-c, HC f | C-i, C-ii | |
| (13)-OH | - | 4.14, d (4.1) | - | - | H-b, HC f | C-i, C-iii | |
| 14 (C-i) c | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 15 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 16 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 17 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2 | H-a, H-c, HC f | C-i, C-ii | |
| (17)-OH | - | 4.14, d (4.1) | - | - | H-b, HC f | C-i, C-iii | |
| 18 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 19 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 20 (C-i) c | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 21 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2, CH | H-a, H-c, HC f | C-i, C-ii | |
| (21)-OH | - | 4.14, d (4.1) | - | - | H-b, HC f | C-i, C-ii | |
| 22 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 23 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 24 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 25 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2, CH | H-a, H-c, HC f | C-i, C-ii | |
| (25)-OH | - | 4.14, d (4.1) | - | - | H-b, HC f | C-i, C-iii | |
| 26 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 27 (C-ii)d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 28 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 29 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2, CH | H-a, H-c, HC f | C-i, C-ii | |
| (29)-OH | - | 4.14, d (4.1) | - | - | H-b, HC f | C-i, C-iii | |
| 30 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 31 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 32 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 33 (H-b) e (C-iii) d | 3.57, s | 3.37, s | 69.8–70.8, CH | 69.2–70.2, CH | H-a, H-c, HC f | C-i, C-ii | |
| (33)-OH | - | 4.14. d (4.1) | - | - | H-b, HC f | C-i, C-iii | |
| 34 (C-i) d | 1.48–1.59, m | 1.24–1.41, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 35 (C-ii) d | 1.31–1.55, m | 1.19–1.37, m | 20.8–21.5, CH2 | 21.4–22.0, CH2 | H-b, HC f | C-i, C-ii, C-iii | C-i, C-iii |
| 36 (C-i) d | 1.42, m | 1.28, m | 36.2–37.4, CH2 | 37.2–38.1, CH2 | H-b, HC f | 37, C-i, C-ii, C-iii | C-i, C-ii, C-iii |
| 37 (H-c) e | 3.42, m | 3.25, m | 67.58, CH | 67.25, CH | H-b, c-OH, 39 | C-i | |
| (37)-OH | - | 4.15, d (5.58) | - | - | 39, H-b, HC f | 38, C-i, C-iii | |
| 38 | 1.58, m | 1.44, m | 37.55, CH2 | 38.56, CH2 | H-c, c-OH, HC f | 37, 39 | C-i, C-iii |
| 39 | 5.02, dd (9.7, 2.5) | 4.94, dd (9.7, 2.5) | 76.82, CH | 76.91, CH | H-c, c-OH, 41–43, 44, HC f | 38 | 1, 37, 38, 40, 41–43 |
| 40 | - | - | 33.91, C | 34.60, C | |||
| 41–43 | 0.93, s | 0.85, s | 25.00, CH3 | 26.27, CH3 | 2, 39 | 39, 40 | |
| 44 | 1.96, s | 1.87, s | 23.89, CH3 | 24.91, CH3 | 39 | 2, 5 | 2, 3, 4 |
a 1H NMR and 13C NMR in methanol-d4 and DMSO-d6 in the left four columns and 2D NMR correlations in the right four columns for each position were shown on the table; b HSQC-TOCSY correlations are 1H → 13C, and correlations at the same position are excluded; c HMBC correlations are 1H → 13C; d Three grouped 13C NMR peaks are marked as C-i, C-ii, and C-iii; e Three 1H NMR peaks of protons on hydroxyl carbons are marked as H-a, H-b, and H-c; f HC is overlapped hydrocarbon peaks at 1.31–1.59 (methanol-d4) and 1.19–1.41 (DMSO-d6) in 1H NMR.
Figure 5Partial structure of nuiapolide (1) with key HMBC correlations.