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Tritium synthesis

The introduction of tritium into molecules is most commonly achieved by reductive methods, including catalytic reduction by tritium gas, PH2], of olefins, catalytic reductive replacement of halogen (Cl, Br, or I) by H2, and metal pH] hydride reduction of carbonyl compounds, eg, ketones (qv) and some esters, to tritium-labeled alcohols (5). The use of tritium-labeled building blocks, eg, pH] methyl iodide and pH]-acetic anhydride, is an alternative route to the preparation of high specific activity, tritium-labeled compounds. The use of these techniques for the synthesis of radiolabeled receptor ligands, ie, dmgs and dmg analogues, has been described ia detail ia the Hterature (6,7). [Pg.438]

It is hoped that these volumes will be useful not only to the chemist who wishes to carry out synthesis in the steroid field, but also to the broader group of organic chemists who are interested in carrying out selective and stereo-chemically defined reactions, as well as protective chemistry on extraneous functional groups, during a broad range of synthetic applications. The chapter on the introduction of deuterium and by inference tritium into steroids was included because of the importance of this technique in mechanistic and metabolic studies both in the steroid and nonsteroid field. [Pg.516]

When specifically labelled compounds are required, direct chemical synthesis may be necessary. The standard techniques of preparative chemistry are used, suitably modified for small-scale work with radioactive materials. The starting material is tritium gas which can be obtained at greater than 98% isotopic abundance. Tritiated water can be made either by catalytic oxidation over palladium or by reduction of a metal oxide ... [Pg.42]

Synthesis of tritium-labeled biologically important diazines 99UK254. [Pg.226]

Epoxyfarnesol was first prepared by van Tamelen, Stomi, Hessler, and Schwartz 4 using essentially this procedure. It is based on the findings of van Tamelen and Curphey5 that N-bromosuccinimide in a polar solvent was a considerably more selective oxidant than others they tried. This method has been applied to produce terminally epoxidized mono-, sesqui-, di-, and triterpene systems for biosynthetic studies and bioorganic synthesis.6 It has also been applied successfully in a simple synthesis of tritium-labeled squalene [2,6,10,14,18,22-Tetracosahexaene, 2,6,10,15,19,23-hexamethyl-, (all-E)-] and squalene-2,3-oxide [Oxirane, 2,2-dimethyl-3-(3,7,12,16,20-pentamethyl-3,7,ll,-15,19-heneicosapentaenyl)-, (all-E)-],7 and in the synthesis of Cecropia juvenile hormone.8... [Pg.116]

Aromatic dehalogenation suffers from the disadvantage that only 50% of the tritium is incorporated, the rest appearing as waste. This situation is even more marked for borotritide reductions but the problem can be overcome by using some of the new tritide reagents that have recently become available as a result of the synthesis of carrier-free lithium tritide (Scheme 13.1) [22], Their reactivity can be fine-tuned through the elements (e. g. B, Al, Sn) to which the tritium is attached and by the electronic and steric nature of the substituents at the central atom. [Pg.438]

A. Synthesis of Tritium-labelled Retinol and Retinoic Acid... [Pg.775]

B. Synthesis of Tritium-labelled Analogues of Juvenile Insect... [Pg.775]

Synthesis of tritium-labelled photoaffinity analogues of natural hormones... [Pg.809]

Enzymatic synthesis of tritium-labelled prostaglandin D2 and other prostaglandins... [Pg.813]

Synthesis of tritium-labelled fluorescent derivatives of prostaglandins... [Pg.818]

Synthesis of tritium-labelled brefeldin-A by catalytic isotope exchange with tritium gas... [Pg.819]

Synthesis of simple seven-membered ring compounds labelled with tritium... [Pg.821]


See other pages where Tritium synthesis is mentioned: [Pg.323]    [Pg.149]    [Pg.749]    [Pg.181]    [Pg.22]    [Pg.436]    [Pg.439]    [Pg.775]    [Pg.775]    [Pg.809]    [Pg.809]    [Pg.812]    [Pg.812]    [Pg.813]    [Pg.817]    [Pg.818]    [Pg.822]    [Pg.832]   
See also in sourсe #XX -- [ Pg.41 ]

See also in sourсe #XX -- [ Pg.41 ]




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Tritium

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