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1.
Several 2′‐deoxy‐2′‐[18F]fluoro‐1‐β‐D‐arabinofuranosyluracil derivatives have been synthesized. Coupling of 1‐bromo‐2‐deoxy‐2‐[18F]fluoro‐3,5‐di‐O‐benzoyl‐α‐D‐arabinofuranose 2 with protected uracil derivatives 3a–e followed by hydrolysis and high‐performance liquid chromatography purification produced the radiolabeled nucleosides 4a–e in 15–30% yield (d. c.), >99% radiochemical purity and 55.5–103.6 GBq/µmol specific activities. Copyright © 2003 John Wiley & Sons, Ltd.  相似文献   

2.
The synthesis of a pyrimidine analog, 3′‐deoxy‐3′‐[18F]‐fluoro‐1‐β‐D ‐xylofuranosyluracil ([18F]‐FMXU) is reported. 5‐Methyluridine 1 was converted to its di‐methoxytrityl derivatives 2 and 3 as a mixture. After separation the 2′,5′‐di‐methoxytrityluridine 2 was converted to its 3′‐triflate 4 followed by derivatization to the respective N3t‐Boc product 5 . The triflate 5 was reacted with tetrabutylammonium[18F]fluoride to produce 6 , which by acid hydrolysis yielded compound 7 . The crude preparation was purified by HPLC to obtain the desired product [18F]‐FMXU. The radiochemical yields were 25–40% decay corrected (d. c.) with an average of 33% in four runs. Radiochemical purity was >99% and specific activity was >74 GBq/µmol at the end of synthesis (EOS). The synthesis time was 67–75 min from the end of bombardment (EOB). Copyright © 2005 John Wiley & Sons, Ltd.  相似文献   

3.
With the goal of developing a PET radioligand for the in vivo assessment of glucose transport, 6-deoxy-6-[18F]fluoro-D -glucose ([18F]6FDG) was prepared in two steps from 18F. Starting with D -glucose, the tosyl- and mesyl-derivatives of 3,5-O-benzylidene-1,2-O-isopropylidene-α-D -glucofuranose were prepared by known methods. Reaction of either of these precursors with 18F resulted in the formation of 3,5-O-benzylidene-6-deoxy-6-[18F]-fluoro-1,2-O-isopropylidene-α-D -glucofuranose in high yield. Subsequent hydrolysis resulted in the production of [18F]6FDG. Under optimal conditions, [18F]6FDG is produced 60–70 min after end of bombardment (EOB) in 71 ± 12% yield (decay corrected, based upon fluoride) with a radiochemical purity of ⩾96%. Preliminary experiments have indicated that [18F]6FDG may be a more representative in vivo tracer for the glucose transporter than 2FDG. Copyright © 2005 John Wiley & Sons, Ltd.  相似文献   

4.
Syntheses of N‐3(substituted) analogues of thymidine, N‐3([18F]fluorobutyl)thymidine ([18F]‐FBT) and N‐3([18F]fluoropentyl)thymidine ([18F]‐FPT) are reported. 1,4‐Butane diol and 1,5 pentane diol were converted to their tosyl derivatives 2 and 3 followed by conversion to benzoate esters 4 and 5, respectively. Protected thymidine 1 was coupled separately with 4 and 5 to produce 6 and 7 , which were hydrolyzed to 8 and 9 , then converted to their mesylates 10 and 11 , respectively. Compounds 10 and 11 were fluorinated with n‐Bu4N[18F] to produce 12 and 13 , which by acid hydrolysis yielded 14 and 15 , respectively. The crude products were purified by HPLC to obtain [18F]‐FBT and [18F]‐FPT. The radiochemical yields were 58–65% decay corrected (d.c.) for 14 and 46–57% (d.c.) for 15 with an average of 56% in three runs per compound. Radiochemical purity was >99% and specific activity was >74 GBq/µmol at the end of synthesis (EOS). The synthesis time was 65–75 min from the end of bombardment (EOB). Copyright © 2006 John Wiley & Sons, Ltd.  相似文献   

5.
2′‐Deoxy‐2′‐[18F]fluoro‐5‐substituted‐1‐β‐D ‐arabinofuranosyluracils, including 2′‐deoxy‐2′‐[18F]fluoro‐5‐methyl‐1‐β‐D ‐arabinofuranosyluracil [18F]FMAU and [18F]FEAU are established radiolabeled probes to monitor cellular proliferation and herpes simplex virus type 1 thymidine kinase (HSV1‐tk) reporter gene expression with positron emission tomography. For clinical applications, a fully automated CGMP‐compliant radiosynthesis is necessary for production of these probes. However, due to multiple steps in the synthesis, no such automated synthetic protocols have been developed. We report here a fully automated synthesis of [18F]‐FEAU and [18F]‐FMAU on a prototype dual reactor module TRACERlab FX FN. The synthesis was performed by using a computer‐programmed standard operating procedure, and the product was purified on a semipreparative high‐performance liquid chromatography (HPLC) integrated with the synthesis module using 12% EtOH in 50 mM Na2HPO4. Finally, the percentage of alcohol was adjusted to 7% by adding Na2HPO4 and filtered through a Millipore filter to make dose for human. The radiochemical yield on the fluorination was 40±10% (n=10), and the overall yields were 4±1% (d. c.), from the end of the bombardment; [18F]FEAU (n=7) and [18F]FMAU (n=3). The radiochemical purity was >99%, specific activity was 1200–1300 mCi/µmol. The synthesis time was 2.5 h. This automated synthesis should be suitable for production of [18F]FIAU, [18F]FFAU, [18F]FCAU, [18F]FBAU and other 5‐substitued thymidine analogues. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

6.
The syntheses of adenosine analogues, 2′‐deoxy‐2′‐[18F]fluoro‐9‐β‐D ‐arabinofuranosyladenine ([18F]‐FAA) and 3′‐deoxy‐3′‐[18F]fluoro‐9‐β‐D ‐xylofuranosyladenine ([18F]‐FXA) are reported. Adenosine ( 1 ) was converted to its methoxytrityl derivatives 2 and 3 as a mixture. After separation, these derivatives were converted to their respective triflates 4 and 5 . Each triflate was reacted with tetrabutylammonium[18F]fluoride to produce 6b or 7b , which by acidic hydrolysis yielded compounds 8b and 9b . Crude preparations were purified by HPLC to obtain the desired pure products. The radiochemical yields were 10‐18% decay corrected (d. c.) for 8b and 30‐40% (d. c.) for 9b in 4 and 3 runs, respectively. Radiochemical purity was >99% and specific activity was >74 GBq/μmol at the end of synthesis (EOS). The synthesis time was 90‐95 min from the end of bombardment (EOB). Copyright © 2003 John Wiley & Sons, Ltd.  相似文献   

7.
Introduction: The hepatocellular carcinoma–intestine–pancreas and pancreatitis‐associated proteins, also known as lactose‐binding protein, is upregulated in peritumoral pancreatic tissue. Previously, we reported ethyl‐ β ‐D ‐galactopyranosyl‐(1,4′)‐2′‐deoxy‐2′‐[18F]fluoro‐ β ‐D ‐glucopyranoside (Et‐[18F]‐FDL), a radiofluorinated lactose analog for positron emission tomography (PET) of small pancreatic carcinomas in mice. However, synthesis of the precursor for Et‐[18F]‐FDL involves 11 steps, which is quite lengthy, and produces overall low yields. Here, we report on synthesis and radiolabeling of another analog of lactose, the 1′‐[18F]fluoroethyl‐ β ‐D ‐lactose for PET imaging of pancreatic carcinomas. Methods: Two precursor compounds, 1′‐bromoethyl‐2′,3′,6′,2,3,4,6‐hepta‐O‐acetyl‐ β ‐D ‐lactose 4, and 1′‐p‐toluenesulfonylethyl‐2′,3′,6′,2,3,4,6‐hepta‐O‐acetyl‐ β ‐D ‐lactose 5, were synthesized in two and three steps, respectively; then, cold fluorination and radiofluorination of these precursors were performed. The reaction mixture was passed through a silica gel Sep‐pack cartridge, eluted with EtOAc, and the 1′‐[18F]fluoroethyl‐2′,3′,6′,2,3,4,6‐hepta‐O‐acetyl‐ β ‐D ‐lactose ([18F]‐6) purified by HPLC. After hydrolysis of the protecting groups, the 1′‐[18F]fluoroethyl‐ β ‐D ‐lactose [18F]‐7 was neutralized, diluted with saline, filtered through a sterile Millipore filter, and analyzed by radio‐TLC. Results: The average decay‐corrected radiochemical yield was 9% (n = 7) with>99% radiochemical purity and specific activity of 55.5 GBq/ µ mol. Conclusion : A new analog of lactose, 1′‐[18F]fluoroethyl‐ β ‐D ‐lactose, has been synthesized in good yields, with high purity and high specific activity suitable for PET imaging of early pancreatic carcinomas. Copyright © 2011 John Wiley & Sons, Ltd.  相似文献   

8.
1‐(2′‐deoxy‐2′‐fluoro‐β‐D‐arabinofuranosyl)‐[methyl11C]thymine ([11C]FMAU) [11C]‐ 1 was synthesised via a palladium‐mediated Stille coupling reaction of 1‐(2′‐deoxy‐2′‐fluoro‐β‐D‐arabinofuranosyl)‐5‐(trimethylstannyl)uracil 2 with [11C]methyl iodide in a one‐pot procedure. The reaction conditions were optimized by screening various catalysts and solvents, and by altering concentrations and reaction temperatures. The highest yield was obtained using Pd2(dba)3 and P(o‐tolyl)3 in DMF at 130°C for 5 min. Under these conditions the title compound [11C]‐ 1 was obtained in 28±5% decay‐corrected radiochemical yield calculated from [11C]methyl iodide (number of experiments=7). The radiochemical purity was >99% and the specific radioactivity was 0.1 GBq/μmol at 25 min after end of bombardment. In a typical experiment 700–800 MBq of [11C]FMAU [11C]‐ 1 was obtained starting from 6–7 GBq of [11C]methyl iodide. A mixed 11C/13C synthesis to yield [11C]‐ 1 /(13C)‐ 1 followed by 13C‐NMR analysis was used to confirm the labelling position. The labelling procedure was found to be suitable for automation. Copyright © 2002 John Wiley & Sons, Ltd.  相似文献   

9.
Although 3′‐deoxy‐3′‐[18F]fluorothymidine ([18F]FLT) is a prospective radiopharmaceutical for the imaging of proliferating tumor cell, it is difficult to prepare large amount of [18F]FLT. We herein describe the preparation of [18F]FLT in an ionic liquid, [bmim][OTf] (1‐butyl‐3‐methyl‐imidazolium trifluoromethanesulfonate). At optimized condition, [18F]fluorinationin ionic liquid with 5 µl of 1 M KHCO3 and 5 mg of the precursor yielded 61.5 ± 4.3% (n=10). Total elapsed time was about 70 min including HPLC purification. The rapid synthesis of [18F]FLT can be achieved by removing all evaporation steps. Overall radiochemical yield and radiochemical purity were 30 ± 5% and >95%, respectively. This method can use a small amount of a nitrobenzenesulfonate precursor and can be adapted for automated production. Copyright © 2006 John Wiley & Sons, Ltd.  相似文献   

10.
Several [18F]‐labeled α‐trifluoromethyl ketones have been synthesized. Reactions of 2,2‐difluoro‐1‐aryl‐1‐trimethylsiloxyethenes ( 1a–d ) with [18F]‐F2 at low temperature produced [18F]‐labeled α‐trifluoromethyl ketones ( 2a–d ). Radio‐labeled products were isolated by purification with column chromatography in 22–28% yields, decay corrected (d.c.) in three runs per compound. Radiochemical purity was >99% with specific activities 15–20 GBq/mmol at the end of synthesis (EOS). The synthesis time was 35–40 min from the end of bombardment (EOB). This one‐step simple method is highly useful for the radiochemical synthesis of potential biologically active [18F]‐labeled α‐trifluoromethyl ketones for PET imaging. Copyright © 2003 John Wiley & Sons, Ltd.  相似文献   

11.
A synthesis method has been developed for the labelling of N‐(3‐[18F]fluoropropyl)‐2β‐carbomethoxy‐3β‐(4‐fluorophenyl)nortropane ([18F]β‐CFT‐FP), a potential radioligand for visualization of the dopamine transporters by positron emission tomography. The two‐step synthesis includes preparation of [18F]fluoropropyl tosylate and its use without purification in the fluoroalkylation of 2β‐carbomethoxy‐3β‐(4‐fluorophenyl)nortropane (nor‐β‐CFT). The final product is purified by HPLC. Optimization of the two synthesis steps resulted in a greater than 30% radiochemical yield of [18F]β‐CFT‐FP (decay corrected to end of bombardment). The synthesis time including HPLC‐purification was approximately 90 min. The radiochemical purity of the final product was higher than 99% and the specific radioactivity at the end of synthesis was typically 20 GBq/µmol. In comparison to alkylation by [18F]fluoropropyl bromide, the procedure described here results in an improved overall radiochemical yield of [18F]β‐CFT‐FP in a shorter time. Copyright © 2005 John Wiley & Sons, Ltd.  相似文献   

12.
Fluorinated and deoxysucrose analogues have been proven useful in probing the substrate specificity and roles of sucrose processing enzymes and transporters in plants. To synthesize an 18F‐labeled fluorodeoxysucrose analogue suitable for in vivo studies, an acyl‐protected, disaccharide‐based radiofluorination precursor (sucrose 1′‐O‐trifluoromethanesulfonyl‐2,3,4,6,3′,4′,6′‐hepta‐O‐acetate; 2) was prepared by regioselective mono‐deacetylation of sucrose octaacetate using a commercial esterase enzyme followed by conversion of the resultant sucrose heptaacetate to the corresponding triflate. Reaction of this triflate precursor with [18F]fluoride followed by base hydrolysis to remove the acetate groups and HPLC purification gave 1′‐[18F]fluoro‐1′‐deoxysucrose (4) in an overall synthesis time of 80 min and with a median decay corrected yield of 26% (n = 4). This study demonstrates the use of an enzymatic approach to aid the synthesis of a regiospecific radiofluorination precursor starting from the readily available fully acetylated sugar, thus avoiding the need for a complex classical carbohydrate protection strategy to individually protect each hydroxyl group in the molecule. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

13.
2‐exo‐(2′‐Fluoro‐3′‐(4‐fluorophenyl)‐pyridin‐5′‐yl)‐7‐azabicyclo[2.2.1]heptane (F2PhEP), a novel, epibatidine‐based, α4β2‐selective nicotinic acetylcholine receptor antagonist of low toxicity, as well as the corresponding N‐Boc‐protected chloro‐ and bromo derivatives as precursors for labelling with fluorine‐18 were synthesized from 7‐tert‐butoxycarbonyl‐7‐azabicyclo[2.2.1]hept‐2‐ene in 13, 19 and 8% overall yield, respectively. [18F]F2PhEP was prepared in 8–9% overall yield (non‐decay‐corrected) using 1 mg of the bromo derivative in the following two‐step radiochemical process: (1) no‐carrier‐added nucleophilic heteroaromatic ortho‐radiofluorination with the activated K[18F]F‐Kryptofix®222 complex in DMSO using microwave activation at 250 W for 90 s, followed by (2) quantitative TFA‐induced removal of the N‐Boc protective group. Radiochemically pure (>95%) [18F]F2PhEP (1.48–1.66 GBq, 74–148 GBq/µmol) was obtained after semi‐preparative HPLC (Symmetry® C18, eluent aqueous 0.05 M NaH2PO4 CH3CN: 78/22 (v:v)) in 75–80 min starting from an 18.5 GBq aliquot of a cyclotron‐produced [18F]fluoride production batch. Copyright © 2006 John Wiley & Sons, Ltd.  相似文献   

14.
15.
Direct fluorination of a pyrimidine nucleoside at the 2′‐arabino‐position has been deemed to be extremely difficult, if not impossible. The conventional synthesis of 2′‐deoxy‐2′‐fluoro‐5‐methy‐1‐β‐D ‐arabinofuranosyluracil (FMAU) and its 5‐substituted analogs involves stereospecific fluorination of the 1,3,5‐tri‐O‐benzoyl‐α‐D ‐ribofuranose‐2‐sulfonate ester followed by bromination at the C1‐postion, and then coupling with pyrimidine‐bis‐trimethylsilyl ether. Several radiolabeled nucleoside analogs, including [18F]FMAU, and other 5‐substituted analogs, were developed according to this methodology. However, routine production of these compounds using this multi‐step process is inconvenient and limits their clinical application. We developed a novel precursor and method for direct fluorination of preformed nucleoside analogs at the 2′‐arabino position, exemplified via radiosynthesis of [18F]FMAU. The 2′‐methylsulfonyl‐3′,5′‐O‐tetrahydropyranyl‐N3‐Boc‐5‐methyl‐1‐β‐D ‐ribofuranosiluracil was synthesized in multiple steps. Radiofluorination of this precursor with K18F/kryptofix produced 2′‐deoxy‐2′‐[18F]fluoro‐3′,5′‐O‐tetrahydropyranyl‐N3‐Boc‐5‐methyl‐1‐β‐D ‐arabinofuranosiluracil. Acid hydrolysis followed by high‐performance liquid chromatography purification produced the desired [18F]FMAU. The average radiochemical yield was 2.0% (decay corrected, n=6), from the end of bombardment. Radiochemical purity was >99%, and specific activity was >1800 mCi/µmol. Synthesis time was 95–100 min from the end of bombardment. This direct fluorination is a novel method for synthesis of [18F]FMAU, and the method should be suitable for production of other 5‐substituted pyrimidine analogs, including [18F]FEAU, [18F]FIAU, [18F]FFAU, [18F]FCAU, and [18F]FBAU. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

16.
The use of the key enzyme involved in carbon–fluorine bond formation in Streptomyces cattleya catalysing the formation of 5′‐fluoro‐5′‐deoxyadenosine (5′‐FDA) from fluoride ion and S‐adenosyl‐l‐methionine (SAM) was explored for its potential application in fluorine‐18 labelling of the adenosine derivative. Enzymatic radiolabelling of [18F]‐5′‐FDA was successfully carried out starting from SAM and [18F]HF when the concentration of the enzyme preparation was increased from sub‐mg/ml values to mg/ml values. The purity of the enzyme had no measurable effect on the radiochemical yield of the reaction and the radiochemical purity of [18F]‐5′‐FDA. Copyright © 2003 John Wiley & Sons, Ltd.  相似文献   

17.
The cocaine‐derived dopamine reuptake inhibitors FE‐β‐CIT (8‐(2‐fluoroethyl)‐3‐(4‐iodophenyl)‐8‐azabicyclo[3.2.1]octane‐2‐carboxylic acid methyl ester) (1) and PR04.MZ(8‐(4‐fluorobut‐2‐ynyl)‐3‐p‐tolyl‐8‐azabicyclo[3.2.1]octane‐2‐carboxylic acid methyl ester) (2) were labelled with 18F‐fluorine using a two‐step route. 2‐[18F]Fluoroethyltosylate and 4‐[18F]fluorobut‐2‐yne‐1‐yl tosylate were used as labelling reagents, respectively. Radiochemically pure (>98%) [18F]FE‐β‐CIT and [18F]PRD04.MZ (32–86 GBq/µmol) were obtained after a synthesis time of 100 min in about 25% non‐decay‐corrected overall yield.  相似文献   

18.
The development of 18F‐labelling methods adopted to proteins and bioactive peptides is of great interest in radiopharmaceutical sciences. In order to provide 18F‐labelled sugars as a polar prosthetic group for an enzymatic 18F‐labelling procedure, an appropriate nucleotide activated sugar is needed. Here, we present the radiosynthesis of n.c.a. UDP‐2‐deoxy‐2‐[18F]fluoro‐α‐D‐glucopyranose (UDP‐[18F]FDG) as a substrate for glycosyltransferases. The MacDonald synthesis of [18F]FDG‐1‐phosphate was successfully combined with an enzymatic activation to obtain UDP‐[18F]FDG directly in an aqueous medium located in the void volume of a solid phase cartridge. The radiochemical yield of UDP‐[18F]FDG was 20% (based on [18F]fluoride) after a total synthesis time of 110 min. Thus, an intermediate was provided for the enzymatic transfer of [18F]FDG using UDP‐[18F]FDG as glycosyl donor making use of a suitable glycosyltransferase. This would represent a highly selective and mild 18F‐labelling method for glycosylated biomolecules. Copyright © 2007 John Wiley & Sons, Ltd.  相似文献   

19.
The acylation reagent [18F]N‐succinimidyl‐4‐fluorobenzoate (18F‐SFB) has been prepared using a new two‐step approach. The starting material p‐[18F]fluorobenzaldehyde (18F‐FBA) was obtained by an improved radiosynthesis with a decay‐corrected radiochemical yield of 66±6 % (n=3). Reaction of 18F‐FBA with (diacetoxyiodine)benzene and N‐hydroxysuccinimide and preparative HPLC purification furnished 18F‐SFB in an r.c.y. of 49±6 % (n=3), based on the starting radioactivity of 18F‐FBA. The radiochemical purity of 18F‐SFB was >99%. Alternatively, purification by solid phase extraction gave 18F‐SFB with an r.c.y. of 77±9% (n=4) and a radiochemical purity of 89±5% (n=4). This radiochemical synthesis only used non‐aqueous solvents, which simplifies the method and facilitates subsequent applications of 18F‐SFB. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

20.
Radiosyntheses of two N3‐substituted thymidine analogues, N3‐[(4[18F]fluoromethyl‐phenyl)butyl]thymidine ([18F]‐FMPBT) and N3‐[(4[18F]fluoromethyl‐phenyl)pentyl]thymidine ([18F]‐FMPPT), are reported. The precursor compounds 9 and 10 were synthesized in six steps and the standard compounds 13 and 14 were synthesized from these precursors. For radiosynthesis, compounds 9 and 10 were fluorinated with n‐Bu4N[18F] to produce [18F]‐ 11 and [18F]‐ 12 , which by acid hydrolysis yielded [18F]‐ 13 and [18F]‐ 14 , respectively. The crude products were purified by high‐performance liquid chromatography to obtain [18F]‐FMPBT and [18F]‐FMPPT. The average decay‐corrected radiochemical yield for [18F]‐ 13 was 15% in five runs, and that for [18F]‐ 14 was 10% in four runs. The radiochemical purity was >99% and the specific activity was >74 GBq/µmol at the end of synthesis. The synthesis time was 80–90 min from the end of bombardment. Copyright © 2007 John Wiley & Sons, Ltd.  相似文献   

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