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June 2, 2026Genome biology1 citationsOpen Access

FIRST-seq: a nanopore-based cDNA sequencing platform for RNA modification and structure profiling

OBOguzhan BegikGDGregor DiensthuberIBIvana Borovská

Key Points

  • This research aims to develop FIRST-seq, a nanopore-based cDNA sequencing method to profile RNA modifications and structures.
  • Used a nanopore cDNA method avoiding second-strand synthesis and PCR for RNA analysis.
  • Benchmarking of multiple reverse transcription (RT) enzymes and buffers to optimize conditions.
  • Coupled DMS probing for detecting RNA modifications at single-nucleotide resolution.
  • FIRST-seq accurately detects m1A and m3C modifications at unpaired sites.
  • The method recapitulates known RNA structures in both in vitro and in vivo settings.
  • Improved conditions reduced premature termination enhancing error detection.

Abstract

RNA modifications induce reverse transcription (RT) errors in an enzyme- and context-dependent manner, enabling transcriptome-wide mapping and RNA structure probing. We present FIRST-seq, a flexible, cost-effective nanopore cDNA method that avoids second-strand synthesis and PCR, making it compatible with any RT enzyme and enabling single-nucleotide resolution RT signature analysis. Benchmarking multiple RT enzymes and buffers identified conditions that reduce premature termination and enhance error detection. Coupled with DMS probing, FIRST-seq accurately detects m1A and m3C at unpaired sites, recapitulating known RNA structures in vitro and in vivo. FIRST-seq offers a versatile platform for profiling chemical-induced and natural RNA modifications using long-read sequencing.

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Cite This Study

Begik et al. (2026) studied this question.

synapsesocial.com/papers/6a1e726230b38c64201b5a7bhttps://doi.org/10.1186/s13059-026-04115-w
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