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1 tobacco plants expressing the cyanobacterial delta 6-desaturase.
2 and which shares 61% identity with the human Delta-6 desaturase.
3 NA was much lower than that observed for the Delta-6 desaturase.
4 rfectly with the same domains located in the Delta-6 desaturase.
5 racterization, and expression of a mammalian Delta-6 desaturase.
6 e desaturation of 18:2(n-6) and 18:3(n-3) by Delta-6 desaturase.
7 nd nutritional regulation of the Delta-5 and Delta-6 desaturases.
8 omain that is characteristic of nonmammalian Delta-6 desaturases.
9 to 18:2n-6 (P = 9.4 x 10(-7)) as a marker of Delta(6)-desaturase activity significantly predicted the
11 id peptide which is identical in size to the Delta-6 desaturase and which shares 61% identity with th
13 The open reading frames for mouse and human Delta-6 desaturase each encode a 444-amino acid peptide,
15 prior conclusions regarding the low level of Delta-6 desaturase expression in nonhepatic tissues may
20 nalysis using CHO cells overexpressing human Delta-6 desaturase/FADS2 indicates catalysis of a "polyu
24 to EPA and DHA, and genetic variation in the Delta(6)-desaturase gene (FADS2) may affect this convers
25 e human genome revealed that the Delta-5 and Delta-6 desaturase genes reside in reverse orientation o
27 atic activity and mRNA abundance for hepatic Delta-6 desaturase in mice fed corn oil were 70 and 50%
28 vealed that the brain contained an amount of Delta-6 desaturase mRNA that was several times greater t
29 l, the level of hepatic mRNA for Delta-5 and Delta-6 desaturase was only 25% of that found in the liv
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