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Food Lipids: Chemistry, Nutrition, and Biotechnology

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133. G. A. Veldink <strong>and</strong> J. F. G. Vliegenthart. Substrates <strong>and</strong> products of lipoxygenase<br />

catalysis. In: Studies in Natural Products <strong>Chemistry</strong>, Vol. 9, Structure <strong>and</strong> <strong>Chemistry</strong><br />

(Rahman Attaur, ed.). Elsevier Science Publishers, Amsterdam, 1991, p. 559.<br />

134. W. L. Smith <strong>and</strong> W. E. M. L<strong>and</strong>s. The self-catalyzed destruction of lipoxygenase.<br />

Biochem. Biophys. Res. Commun. 41:846 (1970).<br />

135. W. L. Smith <strong>and</strong> W. E. M. L<strong>and</strong>s. Oxygenation of unsaturated fatty acids by soybean<br />

lipoxygenase. J. Biol. Chem. 247:1038 (1972).<br />

136. D.-E. Sok <strong>and</strong> M. R. Kim. Relationship between lipoxygenase-catalyzed formation of<br />

dihydroxylated unsaturated fatty acids <strong>and</strong> its auto-inactivation. J. Agric. <strong>Food</strong> Chem.<br />

42:2903 (1994).<br />

137. M. R. Kim <strong>and</strong> D.-E. Sok. Relationship between lipoxygenase-catalyzed formation of<br />

dihydroxylated unsaturated fatty acids <strong>and</strong> its auto-inactivation. In: Physiology, Biochemistry<br />

<strong>and</strong> Molecular Biology of Plant <strong>Lipids</strong> (J. P. Williams, M. U. Khan, <strong>and</strong><br />

N. W. Lem, eds.). Kluwer Academic publisher, Dordrecht, 1997, p. 271.<br />

138. H. W. Gardner. Effects of lipid hydroperoxides on food components. In: Xenobiotics<br />

in <strong>Food</strong>s <strong>and</strong> Feeds (J. W. Finley <strong>and</strong> D. E. Schwass, eds.). American Chemical<br />

Society, Washington, DC, 1983, p. 63.<br />

139. H. W. Gardner. Lipid hydroperoxide reactivity with proteins <strong>and</strong> animo acids: A review.<br />

J. Agric. <strong>Food</strong> Chem. 27:220 (1979).<br />

140. S. Inouye. Site-specific cleavage of double-str<strong>and</strong> DNA by hydroperoxide of linoleic<br />

acid. FEBS Lett. 172:231 (1984).<br />

141. P. Mazliak. Membrane changes <strong>and</strong> consequences for the postharvest period. In: Postharvest<br />

Physiology of Vegetables (J. Weichmann, ed.). Dekker, New York, 1987, p. 95.<br />

142. P. Mazliak. Lipid metabolism during apple maturation. Qual. Plant Mater. Veg. 19:19<br />

(1969).<br />

143. R. Zamora, J. I. Maynar, <strong>and</strong> J. L. Mesias. Lipoxygenase activity in grapes (cv. Maealeo):<br />

I. Evidence <strong>and</strong> partial purification. Am. J. Enol. Viticult. 36:316 (1985).<br />

144. C. Frenkel <strong>and</strong> M. Eskin. Ethylene evolution as related to changes in hydroperoxides<br />

in ripening tomato fruit. HortScience 12:552 (1977).<br />

145. K. P. Pauls <strong>and</strong> J. E. Thompson. Evidence for the accumulation of peroxidized lipids<br />

in membranes of senescing cotyledons. Plant Physiol. 75:1152 (1984).<br />

146. J. E. Thompson, G. Paliyath, J. H. Brown, <strong>and</strong> C. L. Duxbury. The involvement of<br />

activated oxygen in membrane deterioration during senescence. In: Plant Senescence<br />

(W. W. Thompson, E. A. Nothnagel, <strong>and</strong> R. C. Huffaker, eds.). American Society of<br />

Plant Physiology, Rockville, MD, 1987, p. 146.<br />

147. S. Grossman <strong>and</strong> Y. Y. Leshem. Lowering of endogenous lipoxygenase activity in<br />

Pisum sativum foliage by cytokinin as related to senescence. Physiol. Plant. 43:359<br />

(1978).<br />

148. Y. Y. Lesham, S. Grossman, A. Frimer, <strong>and</strong> Y. Zin. Endogenous lipoxygenase control<br />

<strong>and</strong> lipid associated radical scavenging as mode of cytokinin action in plant senescence.<br />

In: Advances in the Biochemistry <strong>and</strong> Physiology of Plant <strong>Lipids</strong>, Vol. 3 (L.A.<br />

Appelquist <strong>and</strong> C. Liljenberg, eds.). Elsevier North Holl<strong>and</strong>, Amsterdam 1979, p. 193.<br />

149. M. Fobel, D. V. Lynch, <strong>and</strong> J. E. Thompson. Membrane deterioration in senescing<br />

carnation flowers; coordinated effects of phospholipid degradation of the action of<br />

membranous lipoxygenase. Plant Physiol. 85:201 (1987).<br />

150. I. Sylvester, M. J. Drillard, J. M. Bureau, <strong>and</strong> A. Paulin. Effects of the ethylene rise<br />

on the peroxidation of membrane lipids during the senescence of cut carnations. Plant<br />

Physiol. Biochem. 27:407 (1989).<br />

151. J. E. Baker, C. Y. Wang, <strong>and</strong> D. E. Terlizzi. Delay of senescence in carnations by<br />

pyrazon, phenidone analogues, <strong>and</strong> tiron. HortScience 20:121 (1985).<br />

152. M. Kar <strong>and</strong> J. Feierabend. Metabolism of activated oxygen in detached wheat <strong>and</strong><br />

rye leaves <strong>and</strong> its relevance to the initiation of senescence. Planta 160:385 (1984).<br />

Copyright 2002 by Marcel Dekker, Inc. All Rights Reserved.

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