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Clinical Chemistry 50: 1528-1534, 2004. First published July 9, 2004; 10.1373/clinchem.2004.034751
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(Clinical Chemistry. 2004;50:1528-1534.)
© 2004 American Association for Clinical Chemistry, Inc.


Molecular Diagnostics and Genetics

Rapid, Long-Range Molecular Haplotyping of Thiopurine S-Methyltransferase (TPMT*) *3A, *3B, and *3C

Nicolas von Ahsena, Victor W. Armstrong and Michael Oellerich

1 Department of Clinical Chemistry, George-August University, Göttingen, Germany.

aAddress correspondence to this author at: George-August University, Department of Clinical Chemistry, Robert-Koch-Strasse 40, 37075 Göttingen, Germany. Fax 49-551-39-12504; e-mail nahsen{at}gwdg.de.

Background: Haplotyping is an important technique in molecular diagnostics because haplotypes are often more predictive for individual phenotypes than are the underlying single-nucleotide polymorphisms (SNPs). Until recently, methods for haplotyping SNPs separated by kilobase distances were laborious and not applicable to high-throughput screening. In the case of thiopurine S-methyltransferase (TPMT*), differentiating among TPMT*3A, *3B, and *3C alleles is sometimes necessary for predictive genotyping.

Methods: The genomic region including the two SNPs that define TPMT*3A, *3B, and *3C alleles was amplified by long-range PCR. The resulting PCR product was circularized by ligation and haplotyped by allele-specific amplification PCR followed by product identification with hybridization probes.

Results: Critical points were the long-range PCR conditions, including choice of buffer and primers, optimization of the ligation reaction, and selection of primers that allowed for strict allele-specific amplification in the second-round PCR. Different underlying TPMT haplotypes could then be differentiated. Results from the haplotyping method were in full agreement with those from our standard real-time PCR method: TPMT*1/*3A (n = 20); TPMT*1/*3C (n = 4); TPMT*1/*1 (n = 6); and TPMT*3A/*3A (n = 6). One TPMT*1/*3A sample failed to amplify, and no whole blood was available for repeat DNA isolation.

Conclusions: This method for rapid-cycle real-time, allele-specific amplification PCR-assisted long-range haplotyping has general application for the haplotyping of distant SNPs. The procedure is simpler and more rapid than previous methods. With respect to TPMT, haplotyping has the potential to discriminate the genotypes TPMT*1/*3A (intermediate metabolizer) and TPMT*3B/*3C (poor metabolizer).




The following articles in journals at HighWire Press have cited this article:


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Clin. Chem.Home page
T. Dervieux, G. Meyer, R. Barham, M. Matsutani, M. Barry, R. Boulieu, B. Neri, and E. Seidman
Liquid Chromatography-Tandem Mass Spectrometry Analysis of Erythrocyte Thiopurine Nucleotides and Effect of Thiopurine Methyltransferase Gene Variants on These Metabolites in Patients Receiving Azathioprine/6-Mercaptopurine Therapy
Clin. Chem., November 1, 2005; 51(11): 2074 - 2084.
[Abstract] [Full Text] [PDF]


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Nucleic Acids ResHome page
G. Pont-Kingdon and E. Lyon
Direct molecular haplotyping by melting curve analysis of hybridization probes: beta 2-adrenergic receptor haplotypes as an example
Nucleic Acids Res., June 3, 2005; 33(10): e89 - e89.
[Abstract] [Full Text] [PDF]




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