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Sequence-specific Labeling of Nucleic Acids and Proteins with Methyltransferases and Cofactor Analogues
Published on: November 22, 2014
Examination of the DNA substrate selectivity of DNA cytosine methyltransferases using mass tagging
V Rusmintratip1, A D Riggs, L C Sowers
1Division of Molecular Medicine, City of Hope National Medical Center, 1500 East Duarte Road, Duarte, CA 91010, USA.
Abstract:
The biological significance of cytosine methylation is as yet incompletely understood, but substantial and growing evidence strongly suggests that perturbation of methylation patterns, resulting from the infidelity of DNA cytosine methyltransferase, is an important component of the development of human cancer. We have developed a novel in vitro assay that allows us to quantitatively determine the DNA substrate preferences of cytosine methylases. This approach, which we call mass tagging, involves the labeling of target cytosine residues in synthetic DNA duplexes with stable isotopes, such as (15)N. Methylation is then measured by the formation of 5-methylcytosine (5mC) by gas chromatography/mass spectrometry. The DNA substrate selectivity is determined from the mass spectrum of the product 5mC. With the non-symmetrical duplex DNA substrate examined in this study we find that the bacterial methyltransferase HPA:II (duplex DNA recognition sequence CCGG) methylates the one methylatable cytosine of each strand similarly. Introduction of an A-C mispair at the methylation site shifts methylation exclusively to the mispaired cytosine residue. In direct competition assays with HPA:II methylase we observe that the mispaired substrate is methylated more extensively than the fully complementary, normal substrate, although both have one HPA:II methylation site. Through the use of this approach we will be able to learn more about the mechanisms by which methylation patterns can become altered.
Insights
Researchers developed a novel assay to study DNA methylation patterns. This method reveals how DNA cytosine methyltransferase activity can be altered, potentially impacting cancer development.
Area of Science:
- Epigenetics
- Molecular Biology
- Biochemistry
Background:
- Cytosine methylation's role in human cancer is increasingly recognized, linked to errors in DNA cytosine methyltransferase activity.
- Understanding DNA methylation patterns is crucial for cancer research.
Purpose of the Study:
- To develop a quantitative in vitro assay for determining DNA substrate preferences of cytosine methylases.
- To investigate how DNA mismatches affect methylation site selectivity.
Main Methods:
- Developed a novel 'mass tagging' assay using stable isotopes (e.g., nitrogen-15) to label cytosine residues in synthetic DNA.
- Quantified methylation by measuring 5-methylcytosine (5mC) formation using gas chromatography/mass spectrometry.
- Analyzed DNA substrate selectivity from the mass spectrum of the 5mC product.
Main Results:
- The bacterial methyltransferase HPA:II methylated both strands of a non-symmetrical duplex DNA substrate similarly.
- Introducing an A-C mismatch at the methylation site redirected methylation exclusively to the mismatched cytosine.
- Competition assays showed that HPA:II preferentially methylated the mismatched DNA substrate over the normal substrate.
Conclusions:
- The mass tagging assay provides a quantitative method to assess DNA methyltransferase substrate selectivity.
- DNA mismatches can significantly alter cytosine methylation patterns, highlighting a potential mechanism for epigenetic changes in cancer development.
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