High-precision isotope ratio mass spectrometry and stable isotope precursors for tracer studies in cell culture.
暂无分享,去创建一个
J. Brenna | J. Infante | E. Horowitz | C. McCORMICK | M. Huang | S. Muddana | M. Huang
[1] Xiao Hong Ma,et al. Bioequivalence of Dietary α-Linolenic and Docosahexaenoic Acids as Sources of Docosahexaenoate Accretion in Brain and Associated Organs of Neonatal Baboons , 1999, Pediatric Research.
[2] J. Brenna,et al. Simultaneous measurement of desaturase activities using stable isotope tracers or a nontracer method. , 1998, Analytical biochemistry.
[3] J. Infante,et al. Analysis of the putative role of 24‐carbon polyunsaturated fatty acids in the biosynthesis of docosapentaenoic (22:5n‐6) and docosahexaenoic (22:6n‐3) acids , 1998, FEBS letters.
[4] C. L. Jensen,et al. Intermediates in Endogenous Synthesis of C22:6ω3 and C20:4ω6 by Term and Preterm Infants , 1997, Pediatric Research.
[5] H. Tobias,et al. High-precision continuous-flow isotope ratio mass spectrometry. , 1997, Mass spectrometry reviews.
[6] P. Nathanielsz,et al. Linoleate, alpha-linolenate, and docosahexaenoate recycling into saturated and monounsaturated fatty acids is a major pathway in pregnant or lactating adults and fetal or infant rhesus monkeys. , 1996, Journal of lipid research.
[7] P. Sauer,et al. The Very Low Birth Weight Premature Infant Is Capable of Synthesizing Arachidonic and Docosahexaenoic Acids from Linoleic and Linolenic Acids , 1996, Pediatric Research.
[8] A. Piñeiro,et al. Biosynthesis of docosahexaenoic acid in human cells: evidence that two different delta 6-desaturase activities may exist. , 1996, Biochimica et biophysica acta.
[9] R. Uauy,et al. Arachidonic and docosahexaenoic acids are biosynthesized from their 18-carbon precursors in human infants. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[10] H. Su,et al. Conversion of alpha-linolenate to docosahexaenoate is not depressed by high dietary levels of linoleate in young rats: tracer evidence using high precision mass spectrometry. , 1995, Journal of lipid research.
[11] J. Brenna,et al. High sensitivity tracer detection using high-precision gas chromatography-combustion isotope ratio mass spectrometry and highly enriched [U-13C]-labeled precursors. , 1992, Analytical chemistry.
[12] H. Sprecher,et al. The metabolism of 7,10,13,16,19-docosapentaenoic acid to 4,7,10,13,16,19-docosahexaenoic acid in rat liver is independent of a 4-desaturase. , 1991, The Journal of biological chemistry.
[13] A. A. Spector,et al. Synthesis and High Affinity Uptake of Serotonin and Dopamine by Human Y79 Retinoblastoma Cells , 1987, Journal of neurochemistry.
[14] A. A. Spector,et al. Effect of ethanolamine on choline uptake and incorporation into phosphatidylcholine in human Y79 retinoblastoma cells. , 1986, Journal of lipid research.
[15] D. S. Lin,et al. Biochemical and functional effects of prenatal and postnatal omega 3 fatty acid deficiency on retina and brain in rhesus monkeys. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[16] A. A. Spector,et al. A comparison of lipid metabolism in two human retinoblastoma cell lines. , 1985, Investigative ophthalmology & visual science.
[17] D. T. Dudley,et al. The utilization of ethanolamine and serine for ethanolamine phosphoglyceride synthesis by human Y79 retinoblastoma cells. , 1985, The Journal of biological chemistry.
[18] P. Sastry,et al. Lipids of nervous tissue: composition and metabolism. , 1985, Progress in lipid research.
[19] L. Barstad,et al. DIETARY OMEGA‐3 FATTY ACID DEFICIENCY AND VISUAL LOSS IN INFANT RHESUS MONKEYS , 1985, The Journal of clinical investigation.
[20] A. A. Spector,et al. Comparative utilization of n-3 polyunsaturated fatty acids by cultured human Y-79 retinoblastoma cells. , 1984, Biochimica et biophysica acta.
[21] A. A. Spector,et al. Glycine Release from Y79 Retinoblastoma Cells , 1983, Journal of neurochemistry.
[22] S. Fliesler,et al. Chemistry and metabolism of lipids in the vertebrate retina. , 1983, Progress in lipid research.
[23] B. Hyman,et al. Choline Uptake in Cultured Human Y79 Retinoblastoma Cells: Effect of Polyunsaturated Fatty Acid Compositional Modifications , 1982, Journal of neurochemistry.
[24] B. Hyman,et al. Accumulation of N‐3 Polyunsaturated Fatty Acids by Cultured Human Y79 Retinoblastoma Cells , 1981, Journal of neurochemistry.
[25] W. J. Dyer,et al. A rapid method of total lipid extraction and purification. , 1959, Canadian journal of biochemistry and physiology.