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1 monstrated through its ability to facilitate heteroduplex analysis.
2 raphy (DHPLC) to detect base pair changes by heteroduplex analysis.
3 s among 23 SMA compound heterozygotes, using heteroduplex analysis.
4 ntional screening strategies such as SSCA or heteroduplex analysis.
5 f heterozygous animals was established using heteroduplex analysis.
6 ingle-strand conformational polymorphism and heteroduplex analysis.
7 a previously described method that combines heteroduplex analysis and analysis of single-stranded co
8 ion amplification of genomic DA, followed by heteroduplex analysis and direct automated nucleotide se
9 on amplification of genomic DNA, followed by heteroduplex analysis and direct automated nucleotide se
10 chain reaction amplification of genomic DNA, heteroduplex analysis and direct nucleotide sequencing d
11 CR amplification of genomic DNA, followed by heteroduplex analysis and direct nucleotide sequencing,
12 ification of each exon of ITGB4, followed by heteroduplex analysis and direct nucleotide sequencing.
13 tion of COL7A1 from genomic DNA, followed by heteroduplex analysis and direct nucleotide sequencing.
15 gh-performance liquid chromatography (DHPLC) heteroduplex analysis and direct sequencing to screen a
20 CR amplification of genomic DNA, followed by heteroduplex analysis and nucleotide sequencing of the P
23 o begin screening for sequence variants with heteroduplex analysis, and several affected individuals
25 mers were subjected to temperature modulated heteroduplex analysis by denaturing high-performance liq
26 ded to each unknown before PCR, quantitative heteroduplex analysis can differentiate heterozygous, ho
29 ysis in this family by using electrophoretic heteroduplex analysis followed by direct nucleotide sequ
30 ngle-strand conformation polymorphism (SSCP)/heteroduplex analysis (HA) method, implemented in capill
32 imen were assessed by a method that combined heteroduplex analysis (HDA) and a single-stranded confor
33 ctrophoresis for detecting DNA mutations via heteroduplex analysis (HDA) is dependent upon both the e
35 capillary and microchip electrophoresis for heteroduplex analysis- (HDA) based mutation detection.
36 These results show that temperature-mediated heteroduplex analysis is a potentially useful genotypic
38 he single-strand conformational analysis and heteroduplex analysis methods of mutation detection, wit
39 PCR amplification of genomic DNA followed by heteroduplex analysis, nucleotide sequencing, and restri
42 single strand conformation polymorphism and heteroduplex analysis of all 21 coding exons, and by ass
47 cycloheximide-treated cultured fibroblasts, heteroduplex analysis of overlapping reverse transcripta
48 mperature-gradient capillary electrophoresis heteroduplex analysis of PCR amplicons of genes and ESTs
50 LAP1 and Sarcobium lyticum) were examined by heteroduplex analysis of PCR products of the 5S rRNA gen
54 chain reaction amplification of genomic DNA, heteroduplex analysis of the polymerase chain reaction p
55 givalis strain diversity, we previously used heteroduplex analysis of the ribosomal operon intergenic
57 ng patterns were identified, indicating that heteroduplex analysis of this gene can be used to classi
59 ng (denaturing gradient gel electrophoresis, heteroduplex analysis, or denaturing high-performance li
61 by single-strand conformational polymorphism-heteroduplex analysis (SSCP-HA) and by direct sequencing
63 he technique relies on temperature-modulated heteroduplex analysis (TMHA) by chromatographic separati
66 phy arrays for the detection of mutations by heteroduplex analysis under partially denaturing conditi
67 roducts are scanned for sequence variants by heteroduplex analysis using conformation-sensitive gel e
68 formed on 7 by PCR of each exon, followed by heteroduplex analysis using denaturing high-performance
69 this study was to apply temperature-mediated heteroduplex analysis using denaturing high-performance
71 PCR products were then directly compared by heteroduplex analysis with known strains of P. gingivali
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