Reactivity reports local nucleotide accessibility rather than simply nucleotide identity. In an exposed, flexible region, dimethyl sulfate can reach adenine or cytosine and methylate it. Base pairing or protein contact can restrict that access, producing lower reactivity. Comparing these patterns across an RNA helps infer which positions are constrained and contributes to structural models.
Reverse transcription converts chemical marks into a sequence-readable signal. When the enzyme encounters an RNA modification, it may stop before copying the site or introduce a mutation in the resulting cDNA. The distribution of stops or mutations identifies reactive positions, allowing the chemical treatment to be connected to a nucleotide-level readout of RNA structure.
Reduced reactivity indicates that a nucleotide is less accessible to dimethyl sulfate, but it does not by itself identify a single cause. Base pairing can constrain the position, and protein contacts can also limit access. Structural interpretation therefore uses the overall reactivity pattern to recognize constrained regions and relate them to RNA folding or molecular interactions.
The workflow links chemical modification to cDNA analysis in two conceptual stages. First, RNA is exposed to dimethyl sulfate so accessible adenine and cytosine positions can be marked. Next, reverse transcription reads the treated RNA, with modification sites appearing as cDNA stops or mutations. This connects molecular accessibility measurements to an interpretable structural map.
It can reveal structural changes associated with ligand binding and help characterize how an RNA rearranges when its interaction state changes. The same accessibility patterns can also contribute to analyses of ribonucleoprotein assembly, where RNA contacts proteins. These applications make the method useful for relating nucleotide-level constraints to functional molecular interactions.
Cellular compatibility permits RNA structure to be examined in native biological environments rather than only in an isolated setting. That context is relevant when folding, ligand association, or protein contacts may influence accessibility. Consequently, DMS probing can extend biochemical structure analysis toward the structural organization of RNA as it exists in cells.