For the determination of methylation levels in genomic regulatory DNA sequences a high-sensitive assay for detecting 5'methyl-cytosines (5'mC) in non-bisulfite-treated DNA has been established. The system is designed for the application of immunofluorescence using a monoclonal antibody that specifically recognizes 5'mC in single-stranded DNA hybridized to oligonucleotide microarrays. For assay readout an ultra-sensitive fluorescence scanner with submicrometer resolution was used. To minimize autofluorescence 150-microm thin glass slides with an aldehyde-functionalized surface were developed. These methodological improvements allowed the detection of 5'mC in synthetic oligonucleotides hybridized to microarrays with atto molar analytical sensitivity. Using enzymatic fragmented genomic DNA from myeloid leukemia tumor cell lines differences in the methylation status of gene regulatory sequences for E-cadherin, p15/CDKN2b and p16/CDKN2a were demonstrated. Thus, this novel technique can potentially be used for DNA methylation analysis in various scientific fields.
Members of the methyl binding domain (MBD) protein family are known for binding to methylated DNA by recognizing methylated cytosines. Their original function is to regulate protein biosynthesis by recruitment of transcriptional repression complexes to silence gene expression. The aim of the presented work was to detect methylated DNA spotted onto nitrocellulose membranes with recombinant proteins MBD2b, MBD2b-GFP and directly labeled protein MBD2b. Proteins were affinity purified and tested for functionality before application. We were able to show that these functional recombinant proteins bind to unilaterally and symmetrically methylated oligonucleotides and genomic DNA in vitro and thus can be used in various detection assays.
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