Unraveling single-molecule reactions via multiplexed in-situ DNA sequencing
Раскрытие механизмов одномолекулярных реакций с помощью мультиплексного секвенирования ДНК in situ
2026-08-29
SCID: 54.1/gnsdyntm
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RNA polymerase pausingSPIN-Seqin-situ DNA sequencingsingle-molecule reactionstranscription factor interactions
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Abstract (AI)
Abstract DNA sequence regulates complex reactions and protein-DNA interactions, yet sequence effects remain poorly understood due to the lack of direct, high-throughput approaches to study sequence-dependence at the single-molecule level. Here, we introduce Single-molecule Phenotyping and In-Situ Sequencing (SPIN-Seq), a DNA-based, protein-free method that links functional and structural properties of a single DNA molecule with the sequence of that same molecule. After performing functional assays on immobilized DNA molecules, SPIN-Seq uses sequencing-by-transient-hybridization on the same surface and instrument to read sequences in each immobilized DNA molecule, directly linking phenotype and genotype. Applying SPIN-Seq, we dissected the interaction of a transcription factor with its target sequence, and revealed the sequence-dependence of RNA polymerase pausing and reaction-path branching during initial transcription. Our method provides powerful, systematic ways to understand complex molecular mechanisms and their sequence dependence.
Key Findings
1
SPIN-Seq enabled dissection of transcription-factor interactions with target DNA sequences at the single-molecule level.
2
SPIN-Seq links functional and structural properties of individual DNA molecules to the sequence of those same molecules.
3
SPIN-Seq provides a systematic strategy for studying complex molecular mechanisms and their dependence on DNA sequence.
4
The approach revealed sequence dependence in RNA polymerase pausing and reaction-path branching during initial transcription.
5
The protein-free method performs functional assays and sequencing-by-transient-hybridization on the same immobilized DNA surface and instrument.
Research Object
Immobilized single DNA molecules and their interactions with transcription factors and RNA polymerase during initial transcription
Research Subject
Sequence-dependent molecular phenotypes, including transcription-factor binding, RNA polymerase pausing, and reaction-path branching during initial transcription
Publication Details
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2026-08-29
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