Conjugation of polyunsaturated acids

Lipids - 1970
T. L. Mounts1, H. J. Dutton1, D. Glover2
1Northern Regional Research Laboratory, Peoria
2Department of Chemistry, Bradley University, Peoria

Tóm tắt

The isomerization reaction of methyl linoleate and methyl linolenate with potassiumt-butoxide has been investigated. The compositions of the reaction products formed at three temperatures have been determined and the relationships between these analyses and observed differences in absorptivities by UV spectrometry are discussed. Conclusions concerning the reaction mechanisms are based on compositional analysis and results of experiments using radioactive or stable isotope labeled reagent. Double bonds in molecules which are not conjugated during the reaction retain the originalcis configuration. The double bond in the Δ12 position is the most susceptible to positional isomerization to form the conjugated system. With the diene, this selectivity is small, while with the triene, the shifting of the Δ12 bond is the preponderant initial reaction. Isotopic experiments yielded direct evidence for the postulated carbanion mechanism of reaction. An activated methylene group is generally required for the formation of the carbanion. While the UV spectra of the reaction products formed from methyl linolenate at 140 C showed no peak in the diene region, 34% conjugated diene-triene was present. The intact conjugated systems can migrate when the reaction is sufficiently energentic to produce conjugated trienes with double bonds other than the 10, 12, 14 system. The conjugation of triene is a stepwise reaction through the conjugated dienetriene.

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Tài liệu tham khảo

AOCS Official Method Cd 7-58 (revised 1959); JAOCS 30∶352 (1953).

Davenport, J.B., A.J. Birch and A.J. Ryan, Chem. Ind. 1956:136–137.

Sreenivasan, B.S., and J.B. Brown, JOACS 33: 521–526 (1956).

White, H.B., Jr., and F.W. Quackenbush, Ibid., 36: 653–656 (1959).

Sreenivasan, B.S., and J.B. Brown, Ibid. 35: 89–93 (1958).

Nichols, P.L., Jr., S.F. Herb and R.W. Riemenschneider, J. Amer. Chem. Soc. 73: 247–252 (1951).

Scholfield, C.R., E.P. Jones, R.O. Butterfield and H.J. Dutton, Anal. Chem. 35: 1588–1591 (1963).

Cartoni, G., A. Liberti and G. Ruggeri, Riv. Ital. Sostanze Grasse 40: 482–486 (1963).

Jamieson, G.R., and E.H. Reid, J. Chromatogr. 20: 232–239 (1965).

Capella, P., and A. Strocchi, Riv. Ital. Sostanze Grasse 45: 767–772 (1968).

Takagi, T., K. Fukuzumi and S. Nanya, Yukagaku 18: 193–199 (1969) Chem. Abstr. 71, 4749q (1969).

Butterfield, R.O., H.J. Dutton and C.R. Scholfield, Anal. Chem. 38: 86–88 (1966).

Nelson, D.C., P.C. Ressler, Jr., and R.C. Hawes, Ibid. 35: 1575–1579 (1963).

Emken, E.A., C.R. Scholfield, V.L. Davison and E.N. Frankel, JAOCS 44: 373–375 (1967).

Chipault, J.R., and J.M. Hawkins, Ibid. 36: 535–539 (1959).

Wolff, I.A., and T.K. Miwa, Ibid. 42: 208–215 (1965).

Bitner, E.D., V.L. Davison and H.J. Dutton, Ibid. 46: 113–117 (1969).

Johnston, A.E., C.A. Glass and H.J. Dutton, Ibid. 41: 788–790 (1964).

Dougherty, R.C., G.D. Norman and J.J. Katz, J. Amer. Chem. Soc., 87: 5801–5801 (1965).

Cram, D.J., “Fundamentals of Carbanion Chemistry”, Academic Press, New York, 1965, P. 193–196.

Strocchi, A., and P. Capella, Rev. Fr. Corps Gras 16: 3–13 (1969).

Scholfield, C.R., R.O. Butterfield, H. Peters, C.A. Glass and H.J. Dutton, JAOCS 44: 50–54 (1967).

Mikolajczak, K.L., M.O. Bagby, R.B. Bates and I.A. Wolff J. Org. Chem. 30: 2983–2988 (1965).

Litchfield, C., J.E. Lord, A.F. Isbell and R. Reiser, JAOCS 40: 553–557 (1963).

Mikolajzcak, K.L., and M.O. Bagby Ibid. 41: 391 (1964).