Cargando…

Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe

The major problem of using somatic mutations as markers of malignancy is that the clinical samples are frequently containing a trace amounts of mutant allele in a large excess of wild-type DNA. Most methods developed thus far for the purpose of tickling this difficult problem require multiple proced...

Descripción completa

Detalles Bibliográficos
Autores principales: Luo, Ji-Dung, Chan, Err-Cheng, Shih, Chun-Liang, Chen, Tai-Long, Liang, Ying, Hwang, Tsann-Long, Chiou, Chiuan-Chian
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1345699/
https://www.ncbi.nlm.nih.gov/pubmed/16432256
http://dx.doi.org/10.1093/nar/gnj008
_version_ 1782126594200961024
author Luo, Ji-Dung
Chan, Err-Cheng
Shih, Chun-Liang
Chen, Tai-Long
Liang, Ying
Hwang, Tsann-Long
Chiou, Chiuan-Chian
author_facet Luo, Ji-Dung
Chan, Err-Cheng
Shih, Chun-Liang
Chen, Tai-Long
Liang, Ying
Hwang, Tsann-Long
Chiou, Chiuan-Chian
author_sort Luo, Ji-Dung
collection PubMed
description The major problem of using somatic mutations as markers of malignancy is that the clinical samples are frequently containing a trace amounts of mutant allele in a large excess of wild-type DNA. Most methods developed thus far for the purpose of tickling this difficult problem require multiple procedural steps that are laborious. We report herein the development of a rapid and simple protocol for detecting a trace amounts of mutant K-ras in a single tube, one-step format. In a capillary PCR, a 17mer peptide nucleic acid (PNA) complementary to the wild-type sequence and spanning codons 12 and 13 of the K-ras oncogene was used to clamp-PCR for wild-type, but not mutant alleles. The designated PNA was labeled with a fluorescent dye for use as a sensor probe, which differentiated all 12 possible mutations from the wild-type by a melting temperature (T(m)) shift in a range of 9 to 16°C. An extension temperature of 60°C and an opposite primer 97 nt away from the PNA were required to obtain full suppression of wild-type PCR. After optimization, the reaction detected mutant templates in a ratio of 1:10 000 wild-type alleles. Using this newly devised protocol, we have been able to detect 19 mutants in a group of 24 serum samples obtained from patients with pancreatic cancer. Taken together, our data suggest that this newly devised protocol can serve as an useful tool for cancer screening as well as in the detection of rare mutation in many diseases.
format Text
id pubmed-1345699
institution National Center for Biotechnology Information
language English
publishDate 2006
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-13456992006-01-25 Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe Luo, Ji-Dung Chan, Err-Cheng Shih, Chun-Liang Chen, Tai-Long Liang, Ying Hwang, Tsann-Long Chiou, Chiuan-Chian Nucleic Acids Res Methods Online The major problem of using somatic mutations as markers of malignancy is that the clinical samples are frequently containing a trace amounts of mutant allele in a large excess of wild-type DNA. Most methods developed thus far for the purpose of tickling this difficult problem require multiple procedural steps that are laborious. We report herein the development of a rapid and simple protocol for detecting a trace amounts of mutant K-ras in a single tube, one-step format. In a capillary PCR, a 17mer peptide nucleic acid (PNA) complementary to the wild-type sequence and spanning codons 12 and 13 of the K-ras oncogene was used to clamp-PCR for wild-type, but not mutant alleles. The designated PNA was labeled with a fluorescent dye for use as a sensor probe, which differentiated all 12 possible mutations from the wild-type by a melting temperature (T(m)) shift in a range of 9 to 16°C. An extension temperature of 60°C and an opposite primer 97 nt away from the PNA were required to obtain full suppression of wild-type PCR. After optimization, the reaction detected mutant templates in a ratio of 1:10 000 wild-type alleles. Using this newly devised protocol, we have been able to detect 19 mutants in a group of 24 serum samples obtained from patients with pancreatic cancer. Taken together, our data suggest that this newly devised protocol can serve as an useful tool for cancer screening as well as in the detection of rare mutation in many diseases. Oxford University Press 2006 2006-01-23 /pmc/articles/PMC1345699/ /pubmed/16432256 http://dx.doi.org/10.1093/nar/gnj008 Text en © The Author 2006. Published by Oxford University Press. All rights reserved
spellingShingle Methods Online
Luo, Ji-Dung
Chan, Err-Cheng
Shih, Chun-Liang
Chen, Tai-Long
Liang, Ying
Hwang, Tsann-Long
Chiou, Chiuan-Chian
Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title_full Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title_fullStr Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title_full_unstemmed Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title_short Detection of rare mutant K-ras DNA in a single-tube reaction using peptide nucleic acid as both PCR clamp and sensor probe
title_sort detection of rare mutant k-ras dna in a single-tube reaction using peptide nucleic acid as both pcr clamp and sensor probe
topic Methods Online
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1345699/
https://www.ncbi.nlm.nih.gov/pubmed/16432256
http://dx.doi.org/10.1093/nar/gnj008
work_keys_str_mv AT luojidung detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT chanerrcheng detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT shihchunliang detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT chentailong detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT liangying detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT hwangtsannlong detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe
AT chiouchiuanchian detectionofraremutantkrasdnainasingletubereactionusingpeptidenucleicacidasbothpcrclampandsensorprobe