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Communication

Oxygenated Analogues of Santacruzamate A

1
Department of Organic Chemistry, University of Plovdiv Paisii Hilendarski, 24 Tsar Asen Str., 4000 Plovdiv, Bulgaria
2
Department of Human Anatomy and Physiology, University of Plovdiv Paisii Hilendarski, 24 Tsar Asen Str., 4000 Plovdiv, Bulgaria
*
Author to whom correspondence should be addressed.
Molbank 2021, 2021(1), M1188; https://0-doi-org.brum.beds.ac.uk/10.3390/M1188
Submission received: 27 January 2021 / Revised: 2 February 2021 / Accepted: 3 February 2021 / Published: 3 February 2021

Abstract

:
A new approach for the synthesis of Santacruzamate A analogues is demonstrated. The method allows functionalization at position 3 of the gamma-aminobutyric fragment and carbon chain variation.

1. Introduction

Santacruzamate A (Figure 1a) is a structurally simple natural product isolated from marine cyanobacterium Symploca sp. [1]. This natural product bears some structural similarity to the clinically used histone deacetylase (HDAC) inhibitor vorinostat (SAHA) [2]. The initial publication about its discovery also reported picomolar-level selective inhibitory activity against HDAC2 (IC50 = 119 pM), with a relatively weak inhibition of HDAC4 and HDAC6 [1]. Although these data were not entirely corroborated by later publications from the same group [3] and others [4,5,6], the interest drawn by this natural product has led to the preparation of many analogues, some with promising bioactivity [4,5,6,7,8]. Considering the current interest in this topic and the ongoing investigations of the structure-activity relationships, we saw an opportunity to contribute to the availability of structurally diverse Santacruzamate A analogues with our method for β-keto amide synthesis [9]. In a previous publication we demonstrated that this enamine-based domino approach provides access to β-keto amides IV functionalized with protected amino group in the side chain (Scheme 1, R1 = H, Ph) [10]. If N-ethoxycarbonyl glycine is used as the amino acid component III in this methodology and R1 is set to phenethyl, then the products IV would be structurally similar to Santacruzamate A, with introduced carbonyl functionality in the gamma-aminobutyric part and possible variation of the chain length by the choice of an appropriate R1 substituent in the acetoacetamide I (Figure 1b).

2. Results

To synthesize the oxo-analogue of Santacruzamate A, we first prepared the enaminoamide 2a (Scheme 2, m = 2) by condensation of N-phenethyl acetoacetamide with Boc-monoprotected ethylenediamine. This compound was then reacted with mixed carbonic anhydride of N-ethoxycarbonyl glycine to provide the intermediate 3a in 85% yield. Upon the subsequent Boc-deprotection and buffering with NaOAc solution, 3a gave the expected analogue 4a in 80% yield. By analogy, this procedure was applied for the preparation of N-methylated analogue 4b and chain-shifted analogue 4c (Scheme 2, Table 1). The entire synthetic sequence was carried out without any chromatographic purification of the intermediates. The final step gave practically pure keto amides 4 with only small proportion of the enol tautomer visible in the 1H NMR spectra (Supplementary materials).
The introduction of carbonyl group in the gamma-aminobutyric fragment of Santacruzamate A provides a useful handle for various further manipulations. For example, the reduction of 4a,b with NaBH4 was straightforward and gave the corresponding alcohols 5a,b in quantitative yields (Scheme 3).

3. Materials and Methods

All reagents and solvents were purchased from commercial suppliers (Sigma-Aldrich or Merck, Darmstadt, Germany) and were used without further purification. Boc-monoprotected ethylenediamine [11], acetoacetamides 1 [12,13], and enaminoamides 2 [9] were prepared according to the published procedures. NMR spectra were run on Bruker Avance AV600 (600/150 MHz 1H/13C) spectrometer (Bruker, Billerica, MA, USA) at BAS-IOCCP—Sofia and chemical shifts (δ, ppm) are downfield from TMS. High resolution mass spectral measurements were performed on a Thermo Scientific Q Exactive hybrid quadrupole-orbitrap mass spectrometer (Thermo Fisher Scientific, Waltham, MA, USA). TLC was done on aluminium-backed Silica gel 60 sheets (Merck) with KMnO4 staining; Melting points were measured on Boetius hot stage apparatus (Boetius, Germany) and are not corrected.

Synthetic Procedures

Oxo-analogues of Santacruzamate A (4ac), general procedure: To a magnetically stirred solution of the corresponding N-ethoxycarbonyl amino acid (1 mmol) in CH2Cl2 (5 mL), N-methylmorpholine (1 mmol, 0.11 mL) was added. The solution was then put in an ice bath and ethyl chloroformate (1 mmol, 0.1 mL) was added. The mixture was left to stir for 5 min and after that a solution of enamino amide 2 (1 mmol) and DMAP (0.2 mmol) in CH2Cl2 (10 mL) was added in one go. The ice bath was then removed, and the reaction mixture was left to stir for one more hour at r.t. The reaction mixture was then transferred to a separatory funnel with additional 30 mL of CH2Cl2 and washed with aqueous (10:1) HCl. The aqueous layer was extracted with 30 more mL of CH2Cl2, the combined organic layers were dried with anhydrous sodium sulfate, the drying agent was removed by filtration, and the solvent was evaporated under reduced pressure. The intermediates 3 solidified upon trituration with small volume of diethyl ether. The ethereal washings were filtered off and the crude compounds 3 were dissolved in TFA (1 mL TFA per 100 mg of 3). The TFA solutions were stirred for 5 min at r.t. and then 3 mol/L aqueous solution of NaOAc (10 mL for each mL of TFA) was added, followed by CH2Cl2 (30–50 mL). The mixture was left to stir intensely for 2 h. The layers were then separated, and the aqueous layer was extracted two more times with CH2Cl2. The organic layers were combined, washed with saturated aqueous NaHCO3 (20 mL), and then dried over Na2SO4. The solvent was removed on a rotary evaporator. Compounds 4a and 4c crystallized and were rinsed with small volumes of diethyl ether or ether-petroleum. Compound 4b was isolated as clear oil. Chromatography of the ethereal washings through a short plug of silica gel can afford small additional amounts of 4a,c.
(2-Oxo-3-phenethylcarbamoyl-propyl)-carbamic acid ethyl ester (4a): white solid, mp 137 –139 °C; Rf = 0.55 (Et2O:CH3OH 20:1); 1H-NMR (600 MHz, CDCl3, δ ppm, J Hz): 7.34–7.20 (m, 5H), 6.71 (br s, 1H), 5.40 (br s, 1H), 4.15 (q, J = 7.0, 2H) overlapped with 4.12 (d, J = 5.3, 2H), 3.55 (dt, J = 6.4, J = 7.0, 2H), 3.39 (s, 2H), 2.84 (t, J = 7.0, 2H), 1.27 (t, J = 7.0, 3H); 13C-NMR (150 MHz, CDCl3, δ ppm): 201.6, 164.8, 156.5, 138.6, 128.8, 128.7, 126.6, 61.4, 51.1, 47.0, 40.9, 35.5, 14.6; ESI-MS (m/z): 315.1320 [M + Na]+ (calcd for C15H20N2NaO4+ 315.1315); 291.1353 [M − H] (calcd for C15H19N2O4 291.1350).
Methyl-(2-oxo-3-phenethylcarbamoyl-propyl)-carbamic acid ethyl ester (4b): clear oil; Rf = 0.35 (Et2O:CH3OH 20:1); 1H-NMR (600 MHz, CDCl3, δ ppm, J Hz), only signals for the major rotamer are listed: 7.34–7.21 (m, 5H), 6.87 (br s, 1H), 4.17–4.09 (m, 4H) 3.55 (m, 2H), 3.38 (s, 2H), 2.94 (s, 3H), 2.85 (t, J = 7.0, 2H), 1.30 (t, J = 7.0, 3H); 13C-NMR (150 MHz, CDCl3, δ ppm): 202.0, 165.1, 157.0, 138.7, 128.8, 128.6, 126.6, 62.0, 58.9, 46.7, 41.0, 35.6, 35.5, 14.6; ESI-MS (m/z): 329.1475 [M + Na]+ (calcd for C16H22N2NaO4+ 329.1472).
(4-Benzylcarbamoyl-3-oxo-butyl)-carbamic acid ethyl ester (4c): white solid, mp 100–102 °C; Rf = 0.50 (Et2O:CH3OH 20:1); 1H-NMR (600 MHz, DMSO-d6, δ ppm, J Hz): 8.33 (br t, J = 5.9, 1H), 7.15–7.04 (m, 5H), 6.86 (br t, J = 5.9, 1H), 4.10 (d, J = 5.9, 2H) 3.77 (q, J = 7.0, 2H) 3.21 (s, 2H), 2.98(dt, J = 5.9, J = 7.0, 2H), 2.50 (t, J = 7.0, 2H), 0.95 (t, J = 7.0, 3H); 13C-NMR (150 MHz, DMSO-d6, δ ppm): 204.3, 166.5, 156.6, 139.6, 128.8, 127.7, 127.3, 60.0, 50.9, 42.9, 42.7, 35.7, 15.1; ESI-MS (m/z): 315.1317 [M + Na]+ (calcd for C15H20N2NaO4+ 315.1315);
Hydroxy-analogues of Santacruzamate A (5): To the corresponding keto amide 4 (100 mg) in methanol (10 mL) was added NaBH4 in small portions (5–7 mg every 10 min) until TLC indicated the absence of the starting material. The mixture was then diluted with water (50 mL) and extracted with CH2Cl2 (3 × 20 mL). The organic layers were combined, dried over Na2SO4, and the solvent was removed on a rotary evaporator to afford practically clean hydroxy amides 5.
(2-Hydroxy-3-phenethylcarbamoyl-propyl)-carbamic acid ethyl ester (5a): white solid, mp 104–105 °C; Rf = 0.50 (Et2O:CH3OH 20:1); 1H-NMR (600 MHz, CDCl3, δ ppm, J Hz): 7.25–7.11 (m, 5H), 6.20 (br s, 1H), 5.24 (br s, 1H), 4.02 (q, J = 7.0, 2H), 3.96 (m, 1H), 3.45 (dt, J = 5.9, J = 7.0, 2H), 3.22 (dt, 2J = 14.1, 3J = 4.7, 1H), 3.09 (dt, 2J = 14.1, 3J = 5.9, 1H), 2.75 (t, J = 7.0, 2H), 2.24 (m, 2H), 1.16 (t, J = 7.0, 3H); 13C-NMR (150 MHz, CDCl3, δ ppm): 172.04, 157.6, 138.6, 128.74, 128.70, 126.6, 68.2, 61.1, 45.9, 40.6, 39.6, 35.5, 14.6; ESI-MS (m/z): 317.1475 [M + Na]+ (calcd for C15H22N2NaO4+ 317.1472).
(2-Hydroxy-3-phenethylcarbamoyl-propyl)-methyl-carbamic acid ethyl ester (5b): white solid, mp 79–81 °C; Rf = 0.33 (Et2O:CH3OH 20:1); 1H-NMR (600 MHz, CDCl3, δ ppm, J Hz), only signals for the major rotamer are listed: 7.33–7.21 (m, 5H), 6.47 (br s, 1H), 4.15 (br s, 1H) overlapped with 4.13 (q, J = 7.0, 2H), 3.55 (m, 2H), 3.33 (m, 2H), 2.99 (s, 3H), 2.84 (t, J = 7.0, 2H), 2.33 (m, 2H), 1.28 (t, J = 7.0, 3H); 13C-NMR (150 MHz, CDCl3, δ ppm): 171.9, 158.0, 138.7, 128.8, 128.6, 126.6, 68.2, 61.8, 54.6, 40.6, 40.2, 36.2, 35.6, 14.7; ESI-MS (m/z): 331.1630 [M + Na]+ (calcd for C16H24N2NaO4+ 331.1628).

4. Conclusions

We successfully prepared new oxygenated analogues of Santacruzamate A. This extends the scope of the enamine-based domino approach to functionalized β-keto amides and demonstrates a viable route to many more analogues of the natural product.

Supplementary Materials

The following are available online, S1.PDF—processed 1H and 13C NMR spectra. S2.zip—Raw NMR data. S3.zip—mol files.

Author Contributions

Conceptualization, chemical synthesis, and manuscript writing: P.A.; chemical synthesis: S.M. and P.Y.; High resolution mass spectral measurements: M.N. All authors have read and agreed to the published version of the manuscript.

Funding

This research was funded by Bulgarian National Science Fund, grant number DN09-15/2016 and The University of Plovdiv, grant number HF19-MU-012. P.Y. acknowledges support from Bulgarian Ministry of Education and Science under the National Research Programme “Young scientists and postdoctoral students” 577/17.08.2018.

Data Availability Statement

The data presented in this study are available in this article and supporting supplementary material.

Acknowledgments

The authors are grateful to the Faculty of Biology, Department of Plant Physiology and Molecular Biology for access to high resolution mass spectrometer, provided under the EC FP7/REGPOT-2009-1/BioSupport project.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Pavlik, C.M.; Wong, C.Y.B.; Ononye, S.; Lopez, D.D.; Engene, N.; McPhail, K.L.; Gerwick, W.H.; Balunas, M.J. Santacruzamate A, a Potent and Selective Histone Deacetylase Inhibitor from the Panamanian Marine Cyanobacterium cf. Symploca sp. J. Nat. Prod. 2013, 76, 2026–2033. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  2. Marks, P.A. Discovery and development of SAHA as an anticancer agent. Oncogene 2007, 26, 1351–1356. [Google Scholar] [CrossRef] [Green Version]
  3. Gromek, S.M.; deMayo, J.A.; Maxwell, A.T.; West, A.M.; Pavlik, C.M.; Zhao, Z.; Li, J.; Wiemer, A.J.; Zweifach, A.; Balunas, M.J. Synthesis and biological evaluation of santacruzamate A analogues for anti-proliferative and immunomodulatory activity. Bioorg. Med. Chem. 2016, 24, 5183–5196. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  4. Liu, Q.; Lu, W.; Ma, M.; Liao, J.; Ganesan, A.; Hu, Y.; Wen, S.; Huang, P. Synthesis and biological evaluation of santacruzamate A and analogs as potential anticancer agents. RSC Adv. 2015, 5, 1109–1112. [Google Scholar] [CrossRef]
  5. Randino, R.; Gazzerro, P.; Mazitschek, R.; Rodriquez, M. Synthesis and biological evaluation of Santacruzamate-A based analogues. Bioorg. Med. Chem. 2017, 25, 6486–6491. [Google Scholar] [CrossRef] [PubMed]
  6. Krieger, V.; Hamacher, A.; Gertzen, C.G.W.; Senger, J.; Zwinderman, M.R.H.; Marek, M.; Romier, C.; Dekker, F.J.; Kurz, T.; Jung, M.; et al. Design, Multicomponent Synthesis, and Anticancer Activity of a Focused Histone Deacetylase (HDAC) Inhibitor Library with Peptoid-Based Cap Groups. J. Med. Chem. 2017, 60, 5493–5506. [Google Scholar] [CrossRef] [PubMed]
  7. Andrade, S.N.; Evangelista, F.C.G.; Seckler, D.; Marques, D.R.; Freitas, T.R.; Nunes, R.R.; Oliveira, J.T.; Ribeiro, R.I.M.A.; Santos, H.B.; Thomé, R.G.; et al. Synthesis, cytotoxic activity, and mode of action of new Santacruzamate A analogs. Med. Chem. Res. 2018, 27, 2397–2413. [Google Scholar] [CrossRef]
  8. Balunas, M.J.; Pavlik, C.M.; Gerwick, G.H. Santacruzamate A compositions and analogs and methods of use. Patent WO2014018913A2, 30 January 2014. Available online: https://patents.google.com/patent/WO2014018913A2/en. (accessed on 1 January 2021).
  9. Angelov, P. Enamine-Based Domino Strategy for C-Acylation/Deacetylation of Acetoacetamides: A Practical Synthesis of β-Keto Amides. Synlett 2010, 1273–1275. [Google Scholar] [CrossRef]
  10. Yanev, P.; Angelov, P. Synthesis of functionalised β-keto amides by aminoacylation/domino fragmentation of β-enamino amides. Beilstein J. Org. Chem. 2018, 14, 2602–2606. [Google Scholar] [CrossRef] [PubMed]
  11. Kofoed, T.; Hansen, H.F.; Ørum, H.; Koch, T. PNA synthesis using a novel Boc/acyl protecting group strategy. J. Pept. Sci. 2001, 7, 402–412. [Google Scholar] [CrossRef] [PubMed]
  12. Clemens, R.J.; Hyatt, J.A. Acetoacetylation with 2,2,6-trimethyl-4H-1,3-dioxin-4-one: A convenient alternative to diketene. J. Org. Chem. 1985, 50, 2431–2435. [Google Scholar] [CrossRef]
  13. Witzeman, J.S.; Nottingham, W.D. Transacetoacetylation with tert-butyl acetoacetate: Synthetic applications. J. Org. Chem. 1991, 56, 1713–1718. [Google Scholar] [CrossRef]
Figure 1. Santacruzamate A (a) and oxygenated analogues (b).
Figure 1. Santacruzamate A (a) and oxygenated analogues (b).
Molbank 2021 m1188 g001
Scheme 1. Synthetic methodology for functionalized β-keto amides [10].
Scheme 1. Synthetic methodology for functionalized β-keto amides [10].
Molbank 2021 m1188 sch001
Scheme 2. Reagents and conditions: (i) BocNHCH2CH2NH2, CH2Cl2, Na2SO4, 24 h r.t.; (ii) N-Ethoxycarbonyl amino acid, NMM, EtOCOCl, CH2Cl2, 0 °C, 5 min; Then 2 and DMAP (0.2 equiv.) in CH2Cl2, 0 °C to r.t., 1 h.; (iii) TFA, 5 min, r.t., then aq. CH3COONa, 2 h, r.t.
Scheme 2. Reagents and conditions: (i) BocNHCH2CH2NH2, CH2Cl2, Na2SO4, 24 h r.t.; (ii) N-Ethoxycarbonyl amino acid, NMM, EtOCOCl, CH2Cl2, 0 °C, 5 min; Then 2 and DMAP (0.2 equiv.) in CH2Cl2, 0 °C to r.t., 1 h.; (iii) TFA, 5 min, r.t., then aq. CH3COONa, 2 h, r.t.
Molbank 2021 m1188 sch002
Scheme 3. Reduction of oxo-analogues to hydroxy-analogues.
Scheme 3. Reduction of oxo-analogues to hydroxy-analogues.
Molbank 2021 m1188 sch003
Table 1. Yields of keto amides 4, prepared according to Scheme 2.
Table 1. Yields of keto amides 4, prepared according to Scheme 2.
4nmRYield (%) 1
a12H68
b12CH376
c21H71
1 Overall yield after three steps, based on the starting acetoacetamide 1.
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Angelov, P.; Manolov, S.; Yanev, P.; Naydenov, M. Oxygenated Analogues of Santacruzamate A. Molbank 2021, 2021, M1188. https://0-doi-org.brum.beds.ac.uk/10.3390/M1188

AMA Style

Angelov P, Manolov S, Yanev P, Naydenov M. Oxygenated Analogues of Santacruzamate A. Molbank. 2021; 2021(1):M1188. https://0-doi-org.brum.beds.ac.uk/10.3390/M1188

Chicago/Turabian Style

Angelov, Plamen, Stanimir Manolov, Pavel Yanev, and Mladen Naydenov. 2021. "Oxygenated Analogues of Santacruzamate A" Molbank 2021, no. 1: M1188. https://0-doi-org.brum.beds.ac.uk/10.3390/M1188

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