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2009 | 56 | 1 |

Tytuł artykułu

Practical highly enantioselective synthesis of [R]- and [S]-[E]-4-hydroxynon-2-enal

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
 Oxidative stress enhances lipid peroxidation (LPO) implicated in cancer promotion and progression. (E)-4-Hydroxynon-2-enal 1 (trans-4-hydroxy-2-nonenal, HNE) is one of the most abundant products of LPO. Reactions of HNE with DNA and proteins are responsible for its mutagenic and toxic effects. On the other hand, HNE is regarded as a key molecule in stress mediated cell cycle signaling. LPO generates racemic HNE (rac-1); however, it is expected that the individual enantiomers will behave differently in their interactions with cell components. The study of HNE stereochemistry in its chemical and biochemical interactions is hindered by the lack of expedient methods for preparation of pure enantiomers. This study presents one step synthesis of HNE in a cross-metathesis reaction between the commercially available oct-1-en-3-ol and acrolein in the presence of 2nd generation Grubbs catalyst. The use in the metathesis reaction of enantiomers of oct-1-en-3-ol obtained via Candida antarctica lipase resolution of the racemate allowed us to prepare of 4-(R)- and 4-(S)-enantiomers of HNE (R-1 and S-1, respectively) with excellent optical purity (97.5 and 98.4% ee, respectively) and good chemical yields (70%).

Wydawca

-

Rocznik

Tom

56

Numer

1

Opis fizyczny

p.189-193,fig.,ref.

Twórcy

  • Polish Academy of Sciences, Pawinskiego 5A, 02-106 Warsaw, Poland

Bibliografia

  • Allevi P, Anastasia M, Cajone F, Ciuffreda P, Sanvito AM (1993) Enzymatic resolution of (R)- and (S)-(E)-4-hydroxyalk-2-enals related to lipid peroxidation. J Org Chem 58: 5000-5002.
  • Brichac J, Ho KK, Honzatko A, Wang R, Lu X, Weiner H, Picklo MJ (2007) Enantioselective oxidation of trans-4-hydroxy-2-nonenal is aldehyde dehydrogenase isozyme and Mg2+ dependent. Chem Res Toxicol 20: 887-895.
  • Bringmann G, Gassen M, Schneider S (1994a) Toxic aldehydes formed by lipid peroxidation. I. Sensitive, gas chromatography-based stereoanalysis of 4-hydroxyalkenal, toxic products of lipid peroxidation. J Chromatogr A 670: 153-160.
  • Bringmann G, Gassen M, Lardy R (1994b) 4-Hydroxynon-2-enal, a cytotoxic lipid peroxidation product, and its C5 analog 4-hydroxypent-2-enal: enantioselective synthesis and stereoanalysis. Tetrahedron 50: 10245-10252.
  • Chandra A, Srivastava SK (1997) A synthesis of 4-hydroxy-2-trans-nonenal and 4-(3H) 4-hydroxy-2-trans-nonenal. Lipids 32: 779-782.
  • Chojnacka A, Obara R, Wawrzenczyk C (2007) Kinetic resolution of racemic secondary aliphatic allylic alcohols in lipase catalyzed transesterification. Tetrahedron: Asymmetry 18: 101-107.
  • Chung FL, Zhang L, Ocando JE, Nath RG (1999) Role of 1,N2-propanodeoxyguanosine adducts as endogenous DNA lesions in rodents and humans. In: Exocyclic DNA adducts in mutagenesis and carcinogenesis. Singer B, Bartsch H, eds, pp 45-54. International Agency for Research on Cancer, (IARC Sci Publ. No. 150) Lyon, France.
  • de Montarby L, Mosset P, Gree R (1988) Sorbic acid iron tricarbonyl complex as resolving agent. Chiral syntheses of 4-hydroxy nonenal and coriolic acid. Tetrahedron Lett 29: 3937-3940.
  • Esterbauer H, Wegner W (1967) Uber der wirkungen yon aldehyden auf gesundeund maligne zellen. 3. Mitt: Synthesis yon homologen 4-hydroxy-2-alkenale. Monats Chem 98: 1994-2000.
  • Fernandes PH, Wang H, Rizzo CJ, Lloyd RS (2003) Site-specific mutagenicity of stereochemically defined 1,N2-deoxyguanosine adducts of trans-4-hydroxynonenal in mammalian cells. Environ Mol Mutagen 42: 68-74.
  • Fujii M, Fukumura M, Hori Y, Hirai Y, Akita H, Nakamura K, Toriizuka K, Ida Y (2006) Chemoenzymatic synthesis of optically active γ-alkyl-γ-butenolides. Tetrahedron: Asymmetry 17: 2292-2298.
  • Gree R, Tourbah H, Carrie R (1986) Fumaraldehyde monodimethyl acetal: an easily accessible and versatile intermediate. Tetrahedron Lett 27: 4983-4986.
  • Hashimoto M, Shibata T, Wasada H, Toyokuni S, Uchida K (2003) Structural basis of protein-bound endogenous aldehydes: chemical and immunochemical characterisations of configurational isomers of a 4-hydroxy-2-nonenal-histidine adduct. J Biol Chem 278: 5044-5051.
  • Kozekov ID, Nechev LV, Moseley MS, Harris CM, Rizzo CJ, Stone MP, Harris TM (2003) DNA interchain cross-links formed by acrolein and crotonaldehyde. J Am Chem Soc 125: 50-61.
  • Kurangi RF, Santosh GT, Blair IA (2006) Convenient and efficient syntheses of 4-hydroxy-2(E)-nonenal and 4-oxo-2(E)-nonenal. Lipids 41: 877-880.
  • Kurtz AJ, Lloyd RS (2003) 1,N2-Deoxyguanosine adducts of acrolein, crotonaldehyde, and trans-4-hydroxynonenal cross-link to peptides via Schiff base linkage. J Biol Chem 278: 5970-5976.
  • Poli G, Schaur RJ, Siems WG, Leonarduzzi G (2008) 4-Hydroxynonenal: a membrane lipid oxidation product of medicinal interest. Med Res Rev 28: 569-631.
  • Soulère L, Queneau Y, Doutheau A (2007) An expeditious synthesis of 4-hydroxy-2(E)-nonenal (4-HNE), its dimethylacetal and of related compounds. Chem Phys Lipids 150: 239-243.
  • Uchida K, Kanematsu M, Sakai K, Matsuda T, Hattori N, Mizuno Y, Suzuki D, Miyata T, Noguchi N, Niki E, Osawa T (1998) Protein-bound acrolein: potential markers for oxidative stress. Proc Natl Acad Sci USA 95: 4882-4887.
  • Wu YH, Lin JK (1995) Determination of aldehydic lipid peroxidation products with dabsylhydrazine by high-performance liquid chromatography. Anal Chem 67: 1603-1612.
  • Yang Y, Sharma R, Sharma A, Awasthi S, Awasthi CA (2003) Lipid peroxidation and cell cycle signaling: 4-hydroxynonenal, a key molecule in stress mediated signaling. Acta Biochim Polon 50: 319-336.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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