Synthesis 2019; 51(10): 2230-2236
DOI: 10.1055/s-0037-1611211
paper
© Georg Thieme Verlag Stuttgart · New York

Flexible Entry into 3-Arylpent-2-enedioic Acids via Heck–Matsuda Arylation of Dimethyl Glutaconate with Arenediazonium Tosylates

Dmitry Dar’in
a   Saint Petersburg State University, Saint Petersburg 199034, Russian Federation   Email: m.krasavin@spbu.ru
,
Grigory Kantin
a   Saint Petersburg State University, Saint Petersburg 199034, Russian Federation   Email: m.krasavin@spbu.ru
,
Olga Bakulina
a   Saint Petersburg State University, Saint Petersburg 199034, Russian Federation   Email: m.krasavin@spbu.ru
,
Raivis Žalubovskis
b   Latvian Institute of Organic Synthesis, Riga 1006, Latvia
,
Mikhail Krasavin*
a   Saint Petersburg State University, Saint Petersburg 199034, Russian Federation   Email: m.krasavin@spbu.ru
› Author Affiliations
This work was supported by the Russian Foundation for Basic Research (project grant 18-515-76001) under «ERA.Net RUS plus» joint program grant RUS_ST2017-309 and State Education Development Agency of Republic of Latvia (‘THIOREDIN’).
Further Information

Publication History

Received: 27 December 2018

Accepted after revision: 29 January 2019

Publication Date:
25 February 2019 (online)


Abstract

For the preparation of compound libraries of Michael acceptors with tunable reactivity toward nuclophilic selenocysteine residue of thioredoxin reductase, a range of 3-arylglutaconic acids were required. The existing methods at the time had limited scope or involved several steps. A hitherto undescribed protocol for direct palladium(II) acetate-catalyzed arylation of glutaconic acid dimethyl ester at position 3 has been developed with a diverse set of arenediazonium tosylates followed by hydrolysis. This generally good-yielding two-step sequence displayed a propensity to deliver E-configured coupling products while compounds mostly featured in the literature were predominantly Z-configured. The possibility for preparing a library of 4-arylpyridine-2,6(1H,3H)-diones has been exemplified.

Supporting Information

 
  • References

  • 1 Address correspondence to this author at the Laboratory of Chemical Pharmacology, Institute of Chemistry, Saint Petersburg State University, 26 Universitetskyi prospekt, Peterhof 198504, Russian Federation.
  • 2 Buggle K, Ghogain UN, Nangle M, MacManus P. J. Chem. Soc., Perkin Trans. 1 1983; 1427
  • 3 Pednekar SR, Samant SD, Deodhar KD. Heterocycles 1984; 22: 1979
  • 4 Pednekar S, Jain AK, Menon KK. Indian J. Heterocycl. Chem. 2004; 14: 1
  • 5 Khatri AI, Samant SD. Synthesis 2015; 47: 343
  • 6 Zhang B, Zhang J, Peng S, Liu R, Li X, Hou Y, Han X, Fang J. Exp. Opin. Ther. Pat. 2017; 27: 547
  • 7 Patel NB, Sharma RD. Synth. Commun. 2013; 43: 1250
  • 8 Reich HJ, Hondal RJ. ACS Chem. Biol. 2016; 11: 821
    • 9a Sanin AV, Nenajdenko VG, Kuzʼmin VS, Balenkova ES. J. Org. Chem. 1996; 61: 1986
    • 9b Chen J, Meng S, Wang L, Tang H, Huang Y. Chem. Sci. 2015; 6: 4184
    • 9c Chen W, Jing Z, Chin KF, Qiao B, Zhao Y, Yan L, Tan C.-H, Jiang Z. Adv. Synth. Catal. 2014; 356: 1292
    • 9d Wang Y.-F, Wu S, Karmaker PG, Sohail M, Wang Q, Chen F.-X. Synthesis 2015; 47: 1147
  • 10 SciFinder search performed on December 23, 2018.
  • 11 Peet NP, Sunder S. Heterocycles 1986; 24: 393
  • 12 Balazs L, Kadas I, Tõke L. Tetrahedron Lett. 2000; 41: 7583
  • 13 Jagtap S. Catalysts 2017; 7: 267
  • 14 Roglans A, Pla-Quintana A, Moreno-Manas M. Chem. Rev. 2006; 106: 4622

    • Selected examples:
    • 15a Kamble RB, Devalankar D, Suryavanshi G. New J. Chem. 2018; 42: 10414
    • 15b Pastre JC, Correia CR. D. Adv. Synth. Catal. 2009; 351: 1217
    • 15c Kalkhambkar RG, Laali KK. Tetrahedron Lett. 2011; 52: 1733
    • 15d Prediger P, da Silva AR, Correia CR. D. Tetrahedron 2014; 70: 3333
    • 15e Pastre JC, Correia CR. D. Org. Lett. 2006; 8: 1657
  • 16 Kikukawa K, Nagira K, Wada F, Matsuda T. Tetrahedron 1981; 37: 34
  • 17 Bräse S, de Meijere A. Cross-Coupling of Organyl Halides with Alkenes – The Heck Reaction. In Metal-Catalyzed Cross-Coupling Reactions and More. de Meijere A, Bräse S, Oestreich M. Wiley-VCH; Weinheim: 2014: 533-664
  • 18 Filimonov VD, Trusova M, Postnikov P, Krasnokutskaya EA, Lee YM, Hawng HY, Kim H, Chi K.-W. Org. Lett. 2008; 10: 3961
  • 19 Kutonova KV, Trusova ME, Stankevich AV, Postnikov PS, Filimonov VD. Beilstein J. Org. Chem. 2015; 11. 358
  • 20 Khatri AI, Samant SD. RSC Adv. 2015; 5. 2009
  • 21 Butera J, Bagli J, Doubleday W, Humber L, Treasurywala A, Loughney D, Sestanj K, Millen J, Sredy J. J. Med. Chem. 1989; 32: 757
    • 22a Joshi GW, Samant SD, Deodhar KD, Kulkarni RA. Indian J. Chem., Sect. B: Org. Chem. Incl. Med. Chem. 1981; 20: 1050
    • 22b Hattori K, Kurihara N, Iwaki T, Inoue T, Akiyama T, Hasegawa Y. PCT Int. Appl. WO2013002357, 2013 ; Chem. Abstr. 2013, 158, 158456.