RSS-Feed abonnieren
DOI: 10.1055/s-0029-1219559
Synthesis of Cyclic Guanidine Intermediates of Anatoxin-a(s) in Both Racemic and Enantiomerically Pure Forms
Publikationsverlauf
Publikationsdatum:
02. März 2010 (online)
Abstract
The alkyl chain of anatoxin-a(s) (cyclic guanidines), which can be used as an intermediate in the total synthesis of anatoxin-a(s), was synthesized in both racemic and enantiomerically pure forms. These enantiomerically pure cyclic compounds can be used as chiral inductors in some reactions. The two racemic routes disclosed herein have the advantages of high overall yield and mild reaction conditions. Both routes proceed through an intermediate 2,3-diaminoacid - an important synthetic scaffold - with good yields. Furthermore, the N,N-dimethyl-2(tosylimino)imidazolidine-4-carboxamide might be obtained from 2-(tosylimino)imidazolidine-4-carboxylic acid followed by selective reduction of the carbonyl functionality. All synthesized compounds were analyzed by mass spectrometry and [¹] H NMR and ¹³C NMR spectroscopy.
Key words
cyclic guanidines - anatoxin-a(s) - neurotoxin - racemic synthesis - chiral synthesis
- 1
Carmichael WW.Mahmood NA.Hyde EG. In Marine Toxins: Origin, Structure and Molecular PharmacologyHall S.Strichart G. American Chemical Society; Washington DC: 1990. - 2
Cook WO.Beasley VR.Dahlem AM.Dellinger JA.Harlin KS.Carmichael WW. Toxicon 1988, 26: 750 - 3
Onodera H.Oshima Y.Henriksen P.Yasumoto T. Toxicon 1997, 35: 1645 - 4
Mahmood NA.Carmichael WW. Toxicon 1986, 24: 425 - 5
Matsunaga S.Moore RE.Niemczura WP.Carmichael WW. J. Am. Chem. Soc. 1989, 111: 8021 - 6
Villatte F.Schulze H.Schmid RD.Bachmann TT. Anal. Bioanal. Chem. 2002, 372: 322 - 7
Sharma G.Magdoff-Fairchild B. J. Org. Chem. 1977, 42: 4118 - 8
Pavlik JW.Kwong J. J. Am. Chem. Soc. 1973, 95: 7914 -
9a
Pinto DJ,Qiao JX,Gungor T,Lam PYS, andLi Y.-L. inventors; US 2004209863. -
9b
Devadas B,Ruminski P,Rogers T,Nagarajan S, andMalecha J. inventors; WO 2004060376. - 10
Isobe T.Fukuda K.Ishikawa T. Tetrahedron: Asymmetry 1998, 9: 1729 -
11a
Iyer MS.Gigstad KM.Namdev ND.Lipton M. J. Am. Chem. Soc. 1996, 118: 4910 -
11b
Corey EJ.Grogan MJ. Org. Lett. 1999, 1: 157 - 12
Moura S.Pinto E. Tetrahedron Lett. 2007, 48: 2325 - 13
Strazzolini P.Dall’Arche MG.Zossi M.Pavsler A. Eur. J. Org. Chem. 2004, 4710 - 14
Morán-Ramallal R.Liz R.Gotor V. Org. Lett. 2007, 9: 521 - 15
Nadir UK.Krishna RV.Singh A. Tetrahedron Lett. 2005, 46: 479 - 16
Schreiber J.Witkop B. J. Am. Chem. Soc. 1964, 86: 2441 - 17
Isobe T.Fukuda K.Tokunaga T.Seki H.Yamaguchi K.Ishikawa T. J. Org. Chem. 2000, 65: 7774 - 18
Acharya AN.Ostresh JM.Houghten RA. J. Comb. Chem. 2001, 3: 578 - 19
Vvedensky VY.Rogovoy BV.Kiselyov AS.Ivachtchenko AV. Tetrahedron Lett. 2005, 46: 8699 - 20
Schon I.Kisfaludy L. Synthesis 1986, 303 - 21
Zhang L.-H.Kauffman GS.Pesti JA.Yin J. J. Org. Chem. 1997, 62: 6918 - 22
Zvilichovsky G.Gurvich V. Tetrahedron 1997, 53: 4457
References and Notes
Synthesis of Compound
5 or 8: 2-(Tosylimino)-imidazolidine-4-carboxylic Acid
The
2,3-diamine acid (312 mg, 3 mmol) was dissolved in H2O
(5 mL) and 1 N NaOH (10 mL) was added. S,S-Dimethyl-N-tosyliminoditiohcarbonimidate
(0.813 mg, 3 mmol) in EtOH was added. The mixture was refluxed for
15
h. With reduction of original volume in one-third, the product precipitated. ¹H
NMR (300 MHz, CDCl3): δ = 2.33 (3 H,
s), 3.68 (2 H, dd, J
1 = 7.2
Hz), 4.04 (1 H, dd, J
1 = 7.8 Hz),
7.21 (2 H, d, J = 8.0
Hz), 7.83 (2 H, d, J = 7.3
Hz) ppm. ¹³C NMR (300 MHz, CDCl3): δ = 20.4,
57.3, 61.8, 125.1 (2 C), 127.0 (2 C), 134.2, 143.7, 143.9, 165.9
ppm. ESI-MS:
m/z = 284 [M + H]+,
238 [M - COOH]+,
155 [SO2PhCH3]+, 91.2 [PhCH3]+.
Synthesis of Compound 7: 2-Acetamido-3-amino-propanoic Acid α-Acetamidoacrylic acid (1.5 g) was dissolved in a solution of NH4OH (37%, 50 mL). This mixture was allowed to stand at 40 ˚C for 72 h. The amine excess was removed for evaporation in vacuum. This compound was used without purification in the next step.
25
Synthesis of Compound
8: (
R
,
S
)-2,3-Diaminopropanoic Acid
The
compound 6 was hydrolyzed by boiling for
2 h with a solution of 2 N HCl (30 mL). ¹H NMR
(300 MHz, D2O): δ = 3.04
(1 H, dd, J
1 = 7.2
Hz), 3.15 (1 H, dd, J
1 = 7.2
Hz), 3.74 (1 H, dd, J
1 = 7.2
Hz). Mp 225-227 ˚C.