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Items: 1 to 20 of 113

1.

Biological and biomedical (14)C-accelerator mass spectrometry and graphitization of carbonaceous samples.

Chung IM, Kim SH.

Analyst. 2013 Jun 21;138(12):3347-55. doi: 10.1039/c3an00077j. Epub 2013 Apr 29. Review. Erratum in: Analyst. 2014 Sep 7;139(17):4381.

PMID:
23626987
2.

Quality of graphite target for biological/biomedical/environmental applications of 14C-accelerator mass spectrometry.

Kim SH, Kelly PB, Ortalan V, Browning ND, Clifford AJ.

Anal Chem. 2010 Mar 15;82(6):2243-52. doi: 10.1021/ac9020769.

3.

Biological/biomedical accelerator mass spectrometry targets. 1. optimizing the CO2 reduction step using zinc dust.

Kim SH, Kelly PB, Clifford AJ.

Anal Chem. 2008 Oct 15;80(20):7651-60. doi: 10.1021/ac801226g. Epub 2008 Sep 12.

4.
5.

Recent advances in biomedical applications of accelerator mass spectrometry.

Hah SS, Henderson PT, Turteltaub KW.

J Biomed Sci. 2009 Jun 17;16:54. doi: 10.1186/1423-0127-16-54. Review. Erratum in: J Biomed Sci. 2009;16:111. Henderson, Paul T [added]; Turteltaub, Kenneth W [added].

6.

Accelerator mass spectrometry of small biological samples.

Salehpour M, Forsgard N, Possnert G.

Rapid Commun Mass Spectrom. 2008 Dec;22(23):3928-34. doi: 10.1002/rcm.3808.

PMID:
18980253
7.

Accelerator mass spectrometry targets of submilligram carbonaceous samples using the high-throughput Zn reduction method.

Kim SH, Kelly PB, Clifford AJ.

Anal Chem. 2009 Jul 15;81(14):5949-54. doi: 10.1021/ac900406r.

9.

Accelerator mass spectrometry.

Hellborg R, Skog G.

Mass Spectrom Rev. 2008 Sep-Oct;27(5):398-427. doi: 10.1002/mas.20172. Review.

PMID:
18470926
10.

Subattomole sensitivity in biological accelerator mass spectrometry.

Salehpour M, Possnert G, Bryhni H.

Anal Chem. 2008 May 15;80(10):3515-21. doi: 10.1021/ac800174j. Epub 2008 Apr 19.

PMID:
18422337
11.

Biological/biomedical accelerator mass spectrometry targets. 2. Physical, morphological, and structural characteristics.

Kim SH, Kelly PB, Clifford AJ.

Anal Chem. 2008 Oct 15;80(20):7661-9. doi: 10.1021/ac801228t. Epub 2008 Sep 12.

12.

Comparison of a 250 kV single-stage accelerator mass spectrometer with a 5 MV tandem accelerator mass spectrometer--fitness for purpose in bioanalysis.

Young GC, Corless S, Felgate CC, Colthup PV.

Rapid Commun Mass Spectrom. 2008 Dec;22(24):4035-42. doi: 10.1002/rcm.3829.

PMID:
19009519
13.

Accelerator mass spectrometry for biomedical research.

Brown K, Dingley KH, Turteltaub KW.

Methods Enzymol. 2005;402:423-43. Review.

PMID:
16401518
14.

Directly coupled high-performance liquid chromatography-accelerator mass spectrometry measurement of chemically modified protein and peptides.

Thomas AT, Stewart BJ, Ognibene TJ, Turteltaub KW, Bench G.

Anal Chem. 2013 Apr 2;85(7):3644-50. doi: 10.1021/ac303609n. Epub 2013 Mar 20.

16.

DNA isolation and sample preparation for quantification of adduct levels by accelerator mass spectrometry.

Dingley KH, Ubick EA, Vogel JS, Haack KW.

Methods Mol Biol. 2005;291:21-7.

PMID:
15502208
17.

Accelerator mass spectrometry (AMS): recent experience of its use in a clinical study and the potential future of the technique.

Young G, Ellis W, Ayrton J, Hussey E, Adamkiewicz B.

Xenobiotica. 2001 Aug-Sep;31(8-9):619-32.

PMID:
11569529
18.

Accelerator MS: its role as a frontline bioanalytical technique.

Seymour MA.

Bioanalysis. 2011 Dec;3(24):2817-23. doi: 10.4155/bio.11.285. Review.

PMID:
22185281
19.

Accelerator mass spectrometry best practices for accuracy and precision in bioanalytical (14)C measurements.

Vogel JS, Giacomo JA, Schulze-K├Ânig T, Keck BD, Lohstroh P, Dueker S.

Bioanalysis. 2010 Mar;2(3):455-68. doi: 10.4155/bio.10.13. Review.

PMID:
21083255
20.

Accelerator mass spectrometry in biomedical dosimetry: relationship between low-level exposure and covalent binding of heterocyclic amine carcinogens to DNA.

Turteltaub KW, Felton JS, Gledhill BL, Vogel JS, Southon JR, Caffee MW, Finkel RC, Nelson DE, Proctor ID, Davis JC.

Proc Natl Acad Sci U S A. 1990 Jul;87(14):5288-92.

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