Literature DB >> 10360670

Reproducibility of detection of tyrosinase and MART-1 transcripts in the peripheral blood of melanoma patients: a quality control study using real-time quantitative RT-PCR.

T J de Vries1, A Fourkour, C J Punt, L T van de Locht, T Wobbes, S van den Bosch, M J de Rooij, E J Mensink, D J Ruiter, G N van Muijen.   

Abstract

In recent years, large discrepancies were described in the success rate of the tyrosinase reverse transcription polymerase chain reaction (RT-PCR) for detecting melanoma cells in the peripheral blood of melanoma patients. We present a quality control study in which we analysed the reproducibility of detection of tyrosinase and MART-1 transcripts in 106 blood samples from 68 melanoma patients (mainly stages III and IV). With this study, we aimed to improve insight in the reproducibility of a RT-PCR for the detection of (minimal) amounts of circulating melanoma cells. We performed two reverse transcriptions on each mRNA sample and performed tyrosinase and MART-1 nested PCRs in duplicate per cDNA sample. Thus, four tyrosinase and four MART-1 measurements were performed per blood sample. In our study, the majority of blood samples was negative for tyrosinase (80%) or MART-1 (66%). Only four samples were positive in all four determinations for tyrosinase and seven for MART-1. Variable results (1-3 times positive results) were obtained for tyrosinase and MART-1 in 16% and 27% respectively. MART-1 PCR had a better performance than tyrosinase PCR. Sensitivity increased when both markers were used. We reasoned that the low number of melanoma marker PCR-positive blood samples can be explained by differences in mRNA quality. By using real-time quantitative PCR, we found that this was not the case: amplification of porphobilinogen deaminase (PBGD), a low copy household gene, was not different in blood samples in which a melanoma marker was not detected from groups in which this marker was detected more or less consistently (1-4 times). When applying real-time quantitative PCR for tyrosinase and MART-1, we found that a low amount of SK-MEL-28 cell equivalents was present in the blood of melanoma patients, with a higher number of equivalents in the group with a consistently positive result. We conclude that low reproducibility of a repeated assay for the detection of circulating melanoma cells is not caused by differences in mRNA quality between the samples, but due to low numbers of amplifiable target mRNA molecules in the mRNA sample. Use of more than one marker and repetition of the assay will increase the probability of finding positive PCR results.

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Year:  1999        PMID: 10360670      PMCID: PMC2362284          DOI: 10.1038/sj.bjc.6690436

Source DB:  PubMed          Journal:  Br J Cancer        ISSN: 0007-0920            Impact factor:   7.640


  33 in total

1.  Detection of tyrosinase mRNA from the blood of melanoma patients.

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Journal:  Cancer Epidemiol Biomarkers Prev       Date:  1996-04       Impact factor: 4.254

2.  Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction.

Authors:  P Chomczynski; N Sacchi
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3.  Molecular test for the detection of tumor cells in blood and sentinel nodes of melanoma patients.

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4.  Reverse transcriptase-polymerase chain reaction for expression of tyrosinase to identify malignant melanoma cells in peripheral blood.

Authors:  K Pittman; S Burchill; B Smith; J Southgate; J Joffe; M Gore; P Selby
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5.  Detection of melanoma cells in peripheral blood by means of reverse transcriptase and polymerase chain reaction.

Authors:  B Smith; P Selby; J Southgate; K Pittman; C Bradley; G E Blair
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6.  Detection of breast cancer micrometastases in axillary lymph nodes by using polymerase chain reaction.

Authors:  A Schoenfeld; Y Luqmani; D Smith; S O'Reilly; S Shousha; H D Sinnett; R C Coombes
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7.  Kinetic PCR analysis: real-time monitoring of DNA amplification reactions.

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8.  Detection of circulating neoplastic cells by reverse-transcriptase polymerase chain reaction in malignant melanoma: association with clinical stage and prognosis.

Authors:  B Mellado; D Colomer; T Castel; M Muñoz; E Carballo; M Galán; J M Mascaró; J L Vives-Corrons; J J Grau; J Estapé
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  12 in total

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Authors:  F A Vlems; J H S Diepstra; I M H A Cornelissen; T J M Ruers; M J L Ligtenberg; C J A Punt; J H J M van Krieken; Th Wobbes; G N P van Muijen
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5.  Detection of circulating melanoma cells in the blood of melanoma patients: a preliminary study.

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Journal:  Mol Pathol       Date:  2003-02

7.  Development of TaqMan MGB fluorescent real-time PCR assay for the detection of anatid herpesvirus 1.

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8.  Limitations of the nested reverse transcriptase polymerase chain reaction on tyrosinase for the detection of malignant melanoma micrometastases in lymph nodes.

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Journal:  Br J Cancer       Date:  2000-07       Impact factor: 7.640

9.  Melanoma-inhibiting activity (MIA) mRNA is not exclusively transcribed in melanoma cells: low levels of MIA mRNA are present in various cell types and in peripheral blood.

Authors:  T J de Vries; A Fourkour; C J Punt; H Diepstra; D J Ruiter; G N van Muijen
Journal:  Br J Cancer       Date:  1999-11       Impact factor: 7.640

10.  Effect of thrombin peptide 508 (TP508) on bone healing during distraction osteogenesis in rabbit tibia.

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