Next Article in Journal
In Silico Evaluation of New Fluoroquinolones as Possible Inhibitors of Bacterial Gyrases in Resistant Gram-Negative Pathogens
Previous Article in Journal
Organic–Inorganic Hybrid Sol–Gel Material Loaded with an Heterocyclic Aldehyde with Potential Application for Cu(II) Detection
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Proceeding Paper

Synthesis of New Functionally Substituted Bicyclo[4.2.1]nona-2,4,7-trienes by Co(I)-Catalyzed [6π + 2π] Cycloaddition of 1-Benzoylcycloheptatriene †

by
Gulnara N. Kadikova
*,
Lilya U. Dzhemileva
and
Usein M. Dzhemilev
Institute of Petrochemistry and Catalysis of Russian Academy of Sciences, 141 Prospekt Oktyabrya, 450075 Ufa, Russia
*
Author to whom correspondence should be addressed.
Presented at the 25th International Electronic Conference on Synthetic Organic Chemistry, 15–30 November 2021; Available online: https://ecsoc-25.sciforum.net/.
Chem. Proc. 2022, 8(1), 45; https://doi.org/10.3390/ecsoc-25-11631
Published: 12 November 2021

Abstract

:
Functionally substituted bicyclo[4.2.1]nona-2,4,7-trienes were synthesized for the first time on the basis of the reaction of [6π + 2π] cycloaddition of hexyn-1 and 4-pentynenitrile to 1-benzoylcycloheptatriene under the action of the three-component catalytic system Co(acac)2(dppe)/Zn/ZnI2.

1. Introduction

Bicyclo[4.2.1]nonatrienes are undoubtedly of interest for the development of the chemistry of biologically active and medicinal compounds. The bicyclo[4.2.1]nonane backbone forms a key structural element of some important terpenoids and their metabolites (mediterraneols, longifolene, longicamphoric acid, culmorin, secolongifolenediol), exhibiting pronounced antitumor activity [1,2,3] (Figure 1). As the analysis of literature data [4] shows, currently one of the effective and available methods for constructing a bicyclo[4.2.1]nonane skeleton is based on the reactions of catalytic cycloaddition of alkynes to 1,3,5-cycloheptatriene and its derivatives. These transformations open access to bicyclo[4.2.1]nonanes containing reactive functional substituents of various nature in the structure, which is an essential condition for their use as precursors in the synthesis of biologically active and other practically important compounds.
Earlier [4,5,6,7,8,9], we obtained a wide spectrum of bicyclo[4.2.1]nona-2,4,7-trienes using the catalytic cycloaddition reaction of 1- and 7-substituted 1,3,5-cycloheptatrienes. In the development of these studies, we, for the first time, carried out the Co(I)-catalyzed [6π + 2π] cycloaddition of terminal alkynes to 1-benzoylcycloheptatriene to obtain new bicyclo[4.2.1]nona-2,4,7-trienes.

2. Results and Discussion

We found that the [6π + 2π] cycloaddition of terminal alkynes—hexyne-1 2a and 4-pentynenitrile 2b to 1-benzoylcycloheptatriene 1, under the action of the three-component catalytic system Co(acac)2(dppe)/Zn/ZnI2 [8,9,10,11,12,13] under the developed conditions (10 mol% Co(acac)2(dppe), 30 mol% Zn, 20 mol% ZnI2, 1,2-dichloroethane (C2H4Cl2), 20 h, 60 °C) passes with the formation of substituted bicyclo[4.2.1]nona-2,4,7-trienes 3,4a,b in 80–84% yields. Bicyclo[4.2.1]nona-2,4,7-trienes 3,4a,b are formed as two regioisomers in a 1:1 ratio. Each of the regioisomers was isolated individually using column chromatography (Table 1).
Earlier [8], we found that substituted bicyclo[4.2.1]nona-2,4,7-trienes have a cytotoxic effect on a number of tumor cell lines. In the development of these studies, we studied the in vitro antitumor activity of bicyclo[4.2.1]nona-2,4,7-trienes 3,4a,b synthesized in this work against tumor lines Jurkat, K562, U937, and HL60 (Table 2). It was found that cycloadducts 3,4a,b exhibit antitumor activity, and the values of inhibitory concentration are in the range IC50 = 0.021 ± 0.002–0.048 ± 0.004 µM.

3. Conclusions

Thus, we were the first to carry out the reactions of [6π + 2π]-cycloaddition of alkynes to 1-benzoylcycloheptatriene under the action of the three-component catalytic system Co(acac)2(dppe)/Zn/ZnI2 to obtain previously undescribed O-, N-containing bicyclo[4.2.1]nona-2,4,7-trienes in high yields (80–84%). The obtained functionally substituted bicyclic compounds may be of interest as key precursors in the synthesis of important biologically active compounds and drugs.

4. Experimental Part

A chromatographic analysis was performed on a chromatograph using a 2000 × 2 mm column (SE-30 (5%) stationary phase on Chromaton N-AW-HMDS (0.125–0.160 mm), helium carrier gas (30 mL/min), and temperature programming from 50 to 300 °C at an 8 °C/min rate). Flash column chromatography was performed over silica gel 0.060–0.200 mm, 60 A. The 1H and 13C NMR spectra were recorded in CDCl3 at 125 MHz for 13C and 500 MHz for 1H. The chemical shifts are reported as δ values in parts per million, relative to the internal standard Me4Si. The coupling constants (J) are reported in hertz.
High-resolution mass spectra (HRMS) were measured on an instrument using a time-of-flight mass analyzer (TOF) with electrospray ionization (ESI). In experiments on selective collisional activation, the activation energy was set at a maximum abundance of fragment peaks. A syringe injection was used for solutions in MeCN/H2O, 50/50 v/v (flow rate 3 mL/min). Nitrogen was applied as a dry gas; the interface temperature was set at 180 °C. All reactions were carried out in a dry argon atmosphere. 1,2-Dichloroethane was dried and freshly distilled before use. 1-Hexyne, 4-pentynenitrile, Co(acac)2, 1,2-bis(diphenylphosphino)ethane were purchased from commercial sources. Co(acac)2(dppe), 1-benzoylcycloheptatriene were synthesized according to procedures described in the literature [14,15].
Cycloaddition of alkynes to 1-benzoylcycloheptatriene (general procedure). Zn powder (30 mol%) was added to a solution of Co(acac)2(dppe) (10 mol%) in C2H4Cl2 (1.5 mL) for 2a (in CF3CH2OH for 2b) in a Schlenk tube in a dry argon atmosphere, and the mixture was stirred at room temperature for 2 min. Next, 1-benzoylcycloheptatriene (1.0 mmol), the alkyne (1.3 mmol) in C2H4Cl2 (1.5 mL) for 2a (in CF3CH2OH for 2b) and dry ZnI2 (20 mol%) were added successively. After heating at 60 °C for 20 h, the reaction was stopped by the addition of petroleum ether and stirring in air for 10 min to deactivate the catalyst. After filtration through a short pad of silica, the volatiles were removed under a vacuum. Chromatographic purification over SiO2 (petroleum ether → petroleum ether/ethyl acetate 30:1 as eluent for 3,4a, petroleum ether → petroleum ether/ethyl acetate 10:1 → 5:1 → 2:1 as eluent for 3,4b) afforded the target products 3,4a,b.
(8-Butylbicyclo[4.2.1]nona-2,4,7-trien-1-yl)(phenyl)methanone (3a): Yield 42% (0.117 g), colorless oil, Rf = 0.40 (petroleum ether/ethyl acetate 30:1). 1H NMR (500 MHz, CDCl3): δ 8.07–8.10 (m, 2H), 7.54 (t, J = 7.3 Hz, 1H), 7.44 (t, J = 7.7 Hz, 2H), 6.66 (d, J = 11.1 Hz, 1H), 6.31 (dd, J = 10.5 Hz, J = 7.3 Hz, 1H), 5.92–6.02 (m, 2H), 5.15 (s, 1H), 3.27 (t, J = 6.9 Hz, 1H), 2.60 (dd, J = 11.8 Hz, J = 7.2 Hz, 1H), 2.04–2.17 (m, 2H), 1.83 (d, J = 11.8 Hz, 1H), 1.18–1.42 (m, 4H), 0.83 (t, J = 7.3 Hz, 3H) ppm. 13C NMR (125 MHz, CDCl3): δ 202.4, 141.0, 139.1, 138.9, 136.5, 132.5, 129.2 (2C), 128.3 (2C), 123.7, 122.5, 117.1, 66.5, 42.4, 37.6, 31.2, 27.1, 22.4, 13.9 ppm. HRMS (ESI-TOF): calcd for C20H22ONa [M + Na]+ 301.1568, found 301.1565.
(7-Butylbicyclo[4.2.1]nona-2,4,7-trien-1-yl)(phenyl)methanone (4a): Yield 42% (0.117 g), colorless oil, Rf = 0.46 (petroleum ether/ethyl acetate 30:1). 1H NMR (500 MHz, CDCl3): δ 8.04 (d, J = 7.7 Hz, 2H), 7.40–7.58 (m, 3H), 6.39 (d, J = 10.9 Hz, 1H), 6.27 (dd, J = 10.1 Hz, J = 7.8 Hz, 1H), 5.92–6.03 (m, 2H), 5.42 (s, 1H), 3.39 (t, J = 7.1 Hz, 1H), 2.38 (dd, J = 11.3 Hz, J = 7.1 Hz, 1H), 2.19 (t, J = 7.6 Hz, 2H), 1.99 (d, J = 11.5 Hz, 1H), 1.26–1,54 (m, 4H), 0.92 (t, J = 7.3 Hz, 3H) ppm. 13C NMR (125 MHz, CDCl3): δ 202.5, 140.0, 138.9, 138.4, 135.7, 132.7, 129.2 (2C), 128.3 (2C), 124.3, 122.1, 120.4, 64.0, 46.7, 37.2, 30.8, 28.4, 22.5, 13.9 ppm. HRMS (ESI-TOF): calcd for C20H22ONa [M + Na]+ 301.1568, found 301.1564.
3-(6-Benzoylbicyclo[4.2.1]nona-2,4,7-trien-7-yl)propanenitrile (3b): Yield 40% (0.110 g), colorless oil, Rf = 0.58 (petroleum ether/ethyl acetate 2:1). 1H NMR (500 MHz, CDCl3): δ 8.06 (d, J = 7.4 Hz, 2H), 7.58 (t, J = 7.4 Hz, 1H), 7.46 (t, J = 7.7 Hz, 2H), 6.47 (d, J = 11.2 Hz, 1H), 6.34 (dd, J = 10.7 Hz, J = 7.4 Hz, 1H), 6.07 (dd, J = 11.2 Hz, J = 7.2 Hz, 1H), 6.01 (dd, J = 10.9 Hz, J = 7.5 Hz, 1H), 5.27 (s, 1H), 3.31 (td, J = 7.1 Hz, J = 2.3 Hz, 1H), 2.44–2.64 (m, 5H), 1.95 (d, J = 11.7 Hz, 1H) ppm. 13C NMR (125 MHz, CDCl3): δ 202.03, 139.24, 137.46, 135.78, 135.67, 133.06, 129.19 (2C), 128.51 (2C), 124.09, 123.75, 119.34, 119.29, 66.22, 42.47, 37.66, 23.27, 17.31 ppm. HRMS (ESI-TOF): calcd for C19H17NONa [M + Na]+ 298.1208, found 298.1204.
3-(1-Benzoylbicyclo[4.2.1]nona-2,4,7-trien-7-yl)propanenitrile (4b): Yield 40% (0.110 g), colorless oil, Rf = 0.55 (petroleum ether/ethyl acetate 2:1). 1H NMR (500 MHz, CDCl3): δ 8.00–8.04 (m, 2H), 7.54–7.59 (m, 1H), 7.45 (t, J = 7.8 Hz, 2H), 6.37 (d, J = 11.1 Hz, 1H), 6.28 (dd, J = 10.4 Hz, J = 7.4 Hz, 1H), 6.07 (dd, J = 11.1 Hz, J = 7.4 Hz, 1H), 5.97–6.02 (m, 1H), 5.54 (s, 1H), 3.45 (t, J = 7.1 Hz, 1H), 2.50–2.60 (m, 4H), 2.39 (dd, J = 11.6 Hz, J = 6.9 Hz, 1H), 2.03 (d, J = 11.6 Hz, 1H) ppm. 13C NMR (125 MHz, CDCl3): δ 201.7, 138.7, 137.9, 135.2, 133.6, 133.1, 129.2 (2C), 128.4 (2C), 125.4, 122.6, 122.4, 119.3, 64.0, 46.4, 37.0, 24.7, 16.8 ppm. HRMS (ESI-TOF): calcd for C19H17NONa [M + Na]+ 298.1208, found 298.1206.

Author Contributions

Conceptualization, U.M.D. and G.N.K.; methodology, validation, and execution of chemistry experiments, G.N.K. and L.U.D.; manuscript preparation, G.N.K., L.U.D. and U.M.D. All authors have read and agreed to the published version of the manuscript.

Funding

The work was done within approved plans for research projects at the IPC RAS State Registration No. FMRS-2022-0075 and Grant of Russian Foundation for Basic Research (19-03-00393).

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

Data available on request.

Acknowledgments

The structural studies of the synthesized compounds were performed with the use of Collective Usage Centre “Agidel” at the Institute of Petrochemistry and Catalysis of RAS. The biological studies of bicycles were done in the Laboratory of Molecular Design and Drug Bioscreening at the Institute of Petrochemistry and Catalysis.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Suryawanshi, S.N.; Nayak, U.R. Novel Lead Tetraacetate Oxidation of Longicycline: Formation and Reactions of the Elusive True Longicamphor. Tetrahedron Lett. 1977, 18, 2619–2620. [Google Scholar] [CrossRef]
  2. Francisco, C.; Banaigs, B.; Valls, R.; Codomier, L. Mediterraneol a, a novel rearranged diterpenoid-hydroquinone from the marine alga Cystoseira mediterranea. Tetrahedron Lett. 1985, 26, 2629–2632. [Google Scholar] [CrossRef]
  3. Francisco, C.; Banaigs, B.; Teste, J.; Cave, A. Mediterraneols: A Novel Biologically Active Class of Rearranged Diterpenoid Metabolites from Cystoseira Mediterranea (Pheophyta). J. Org. Chem. 1986, 51, 1115–1120. [Google Scholar] [CrossRef]
  4. D’yakonov, V.A.; Kadikova, G.N.; Dzhemilev, U.M. Transition Metal Complex-Mediated Chemistry of 1,3,5-Cycloheptatrienes. Russ. Chem. Rev. 2018, 87, 797–820. [Google Scholar] [CrossRef]
  5. Dzhemilev, U.M.; Kadikova, G.N.; Kolokoltsev, D.I.; D’yakonov, V.A. Catalytic [6π + 2π]-Cycloaddition of Alkynes, 1,2- and 1,3-Dienes to 1,3,5-Cycloheptatrienes Involving Ti Complexes. Tetrahedron 2013, 69, 4609–4611. [Google Scholar] [CrossRef]
  6. D’yakonov, V.A.; Kadikova, G.N.; Kolokoltsev, D.I.; Ramazanov, I.R.; Dzhemilev, U.M. Titanium-Catalyzed [6π + 2π]-Cycloaddition of Alkynes and Allenes to 7-Substituted 1,3,5-Cycloheptatrienes. Eur. J. Org. Chem. 2015, 2015, 4464–4470. [Google Scholar] [CrossRef]
  7. D’yakonov, V.A.; Kadikova, G.N.; Nasretdinov, R.N.; Kolokoltsev, D.I.; Dzhemilev, U.M. Titanium-catalyzed [6π + 2π]-cycloaddition of Si-containing alkynes to bis(1,3,5-cycloheptatriene-7-yl)alkanes. Tetrahedron Lett. 2017, 58, 1714–1716. [Google Scholar] [CrossRef]
  8. D’yakonov, V.A.; Kadikova, G.N.; Nasretdinov, R.N.; Dzhemileva, L.U.; Dzhemilev, U.M. The Synthesis of Bicyclo[4.2.1]nona-2,4,7-trienes by [6π + 2π]-Cycloaddition of 1-Substituted 1,3,5-Cycloheptatrienes Catalyzed by Titanium and Cobalt Complexes. J. Org. Chem. 2019, 84, 9058–9066. [Google Scholar] [CrossRef] [PubMed]
  9. Kadikova, G.N.; Dzhemileva, L.U.; D’yakonov, V.A.; Dzhemilev, U.M. Synthesis of Functionally Substituted Bicyclo[4.2.1]nona-2,4-dienes and Bicyclo[4.2.1]nona-2,4,7-trienes by Cobalt(I)-catalyzed [6π + 2π] Cycloaddition of 2-Tropylcyclohexanone. ACS Omega 2020, 5, 31440–31449. [Google Scholar] [CrossRef]
  10. D’yakonov, V.A.; Kadikova, G.N.; Dzhemileva, L.U.; Gazizullina, G.F.; Ramazanov, I.R.; Dzhemilev, U.M. Cobalt-Catalyzed [6 + 2] Cycloaddition of Alkynes with 1,3,5,7-Cyclooctatetraene as a Key Element in the Direct Construction of Substituted Bicyclo[4.3.1]decanes. J. Org. Chem. 2017, 82, 471–480. [Google Scholar] [CrossRef] [PubMed]
  11. Achard, M.; Tenaglia, A.; Buono, G. First Cobalt(I)-Catalyzed [6 + 2] Cycloadditions of Cycloheptatriene with Alkynes. Org. Lett. 2005, 7, 2353–2356. [Google Scholar] [CrossRef] [PubMed]
  12. D’yakonov, V.A.; Kadikova, G.N.; Nasretdinov, R.N.; Dzhemileva, L.U.; Dzhemilev, U.M. Targeted Synthesis of 9-Azabicyclo[4.2.1]nona-2,4,7-trienes by Cobalt(I)-Catalyzed [6π + 2π]-Cycloaddition of Alkynes to N-Substituted Azepines and Their Antitumor Activity. Eur. J. Org. Chem. 2020, 2020, 623–626. [Google Scholar] [CrossRef]
  13. Kadikova, G.N.; D’yakonov, V.A.; Dzhemilev, U.M. Synthesis of New Functionally Substituted 9-Azabicyclo[4.2.1]nona-2,4,7-trienes by Cobalt(I)-Catalyzed [6π + 2π]-Cycloaddition of N-Carbocholesteroxyazepine to Alkynes. Molecules 2021, 26, 2932. [Google Scholar] [CrossRef] [PubMed]
  14. Cotton, F.A.; Faut, O.D.; Goodgame, M.L.; Holm, R.H. Magnetic Investigations of Spin-free Cobaltous Complexes. VI. Complexes Containing Phosphines and the Position of Phosphines in the Spectrochemical Series. J. Am. Chem. Soc. 1961, 83, 1780–1785. [Google Scholar] [CrossRef]
  15. Blair, J.A.; Tate, C.J. The reaction of cycloheptatriene with acyl halides in the presence of Lewis acids. A convenient synthesis of 1-acylcycloheptatrienes. J. Chem. Soc. C 1971, 1592–1596. [Google Scholar] [CrossRef]
Figure 1. Natural products with the bicyclo[4.2.1]nonane core.
Figure 1. Natural products with the bicyclo[4.2.1]nonane core.
Chemproc 08 00045 g001
Table 1. Cobalt-catalyzed [6π + 2π]-cycloaddition of 1-benzoylcycloheptatriene (1) with alkynes (2) 1.
Table 1. Cobalt-catalyzed [6π + 2π]-cycloaddition of 1-benzoylcycloheptatriene (1) with alkynes (2) 1.
Chemproc 08 00045 i001
AlkyneR3a,b:4a,b 2Yield 3 (%)
2aBu1:184
2b(CH2)2CN1:180 4
1 Reaction conditions: 1 (1 mmol), 2 (1.3 mmol), Co(acac)2(dppe) (0.10 mmol), Zn (0.3 mmol), ZnI2 (0.20 mmol), C2H4Cl2 (3 mL), 60 °C, 20 h. 2 Ratio determined by 1H NMR. 3 Yields of products isolated by column chromatography. 4 CF3CH2OH as the solvent.
Table 2. Cytotoxic activities IC50 in vitro of bicyclo[4.2.1]nona-2,4,7-trienes 3,4a,b measured on tumor cell cultures (Jurkat, K562, U937, HL60) and normal fibroblasts (µM).
Table 2. Cytotoxic activities IC50 in vitro of bicyclo[4.2.1]nona-2,4,7-trienes 3,4a,b measured on tumor cell cultures (Jurkat, K562, U937, HL60) and normal fibroblasts (µM).
CompoundJurkatK562U937HL60Fibroblasts
3a0.028 ± 0.0020.022 ± 0.0030.031 ± 0.0030.025 ± 0.0020.154 ± 0.018
4a0.024 ± 0.0020.030 ± 0.0030.027 ± 0.0020.021 ± 0.0020.150 ± 0.016
3b0.033 ± 0.0030.048 ± 0.0040.029 ± 0.0020.035 ± 0.0020.194 ± 0.022
4b0.029 ± 0.0020.034 ± 0.0030.031 ± 0.0030.036 ± 0.0030.189 ± 0.020
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Kadikova, G.N.; Dzhemileva, L.U.; Dzhemilev, U.M. Synthesis of New Functionally Substituted Bicyclo[4.2.1]nona-2,4,7-trienes by Co(I)-Catalyzed [6π + 2π] Cycloaddition of 1-Benzoylcycloheptatriene. Chem. Proc. 2022, 8, 45. https://doi.org/10.3390/ecsoc-25-11631

AMA Style

Kadikova GN, Dzhemileva LU, Dzhemilev UM. Synthesis of New Functionally Substituted Bicyclo[4.2.1]nona-2,4,7-trienes by Co(I)-Catalyzed [6π + 2π] Cycloaddition of 1-Benzoylcycloheptatriene. Chemistry Proceedings. 2022; 8(1):45. https://doi.org/10.3390/ecsoc-25-11631

Chicago/Turabian Style

Kadikova, Gulnara N., Lilya U. Dzhemileva, and Usein M. Dzhemilev. 2022. "Synthesis of New Functionally Substituted Bicyclo[4.2.1]nona-2,4,7-trienes by Co(I)-Catalyzed [6π + 2π] Cycloaddition of 1-Benzoylcycloheptatriene" Chemistry Proceedings 8, no. 1: 45. https://doi.org/10.3390/ecsoc-25-11631

Article Metrics

Back to TopTop