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1 issolution in a mixture of sulfuric acid and sodium bisulfite.
2  96-residue-long C-terminal part of D2) with sodium bisulfite.
3 atment of the palindrome-containing DNA with sodium bisulfite at high temperature results in deaminat
4                                   The use of sodium bisulfite (BS) treatment followed by hybridizatio
5                                              Sodium bisulfite conversion followed by sequencing (BS-S
6 om primary chicken erythroid cells using the sodium bisulfite conversion technique and found all CpGs
7  from the Illumina Genome Analyzer following sodium bisulfite conversion.
8 assay entails initial modification of DNA by sodium bisulfite, converting all unmethylated, but not m
9                 Methylation-specific PCR and sodium bisulfite DNA sequencing analyses indicate that t
10                        Using high-resolution sodium bisulfite genome sequencing, we detected distinct
11                                              Sodium bisulfite genomic sequencing established that a C
12 ns of the 30 CpG sites within this region by sodium bisulfite genomic sequencing.
13 on involve the treatment of genomic DNA with sodium bisulfite; however, this method cannot distinguis
14                Treatment of genomic DNA with sodium bisulfite is used to convert unmethylated Cytosin
15                    This approach is based on sodium bisulfite-mediated conversion of 5hmC to cytosine
16 hylation-sensitive SSCP (Ms-SSCP) technique, sodium bisulfite modification of DNA converts unmethylat
17                                    Menadione sodium bisulfite (MSB) increased the oxygen consumption
18 all cytosines were converted to thymidine by sodium bisulfite mutagenesis, indicating that none of th
19                                              Sodium bisulfite reacts specifically with cytosine in si
20 rom HCT116 cells and analysis of genome-wide sodium bisulfite sequencing data sets from several other
21 ethylation status of proximal GC boxes using sodium bisulfite sequencing reveals differential methyla
22                                              Sodium bisulfite sequencing showed a gradually reduced m
23 active DNMT3L, shown by knockdown assays and sodium bisulfite sequencing.
24  demethylation to nearby CpG sites, shown by sodium bisulfite sequencing.
25  several adjuvants such as edetate disodium, sodium bisulfite, sodium chloride and so on.
26           Genomic DNA was first reacted with sodium bisulfite to convert unmethylated cytosine to ura
27 al reaction of gDNA with concentrated acidic sodium bisulfite to quantitatively convert C to uracil (
28 more, unbiased next-generation sequencing of sodium bisulfite treated total DNA from HCT116 cells and
29 dent sequence differences in PCR products of sodium bisulfite-treated DNA as described previously.
30 ymerase chain reaction and sequencing of the sodium bisulfite-treated DNA from HCC cell lines and HCC
31                                Sequencing of sodium bisulfite-treated DNA showed dense methylation of
32 lation-specific PCR and sequence analysis of sodium bisulfite-treated genomic DNA, we demonstrate a s
33 ion-specific PCR and by sequence analysis of sodium bisulfite-treated genomic DNA.
34                                              Sodium bisulfite treatment (SBT) causes unmethylated cyt
35                                 Here, we use sodium bisulfite treatment and targeted gene enrichment
36             We show that techniques based on sodium bisulfite treatment of DNA are incapable of disti
37 oportions of the C/T polymorphism induced by sodium bisulfite treatment of DNA reflects the DNA methy
38 isoschizomer restriction enzyme pairs and/or sodium bisulfite treatment of genomic DNA.
39           Subsequently, sequencing following sodium bisulfite treatment revealed 18 methylated CpG si
40 ical fo r functional photosystem II (PS II), sodium bisulfite was utilized for in vitro random mutage
41 f methylated and unmethylated cytosines with sodium bisulfite, which exclusively converts unmethylate

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