Pairwise Engineering of Tandemly Aligned Self-Splicing Group I Introns for Analysis and Control of Their Alternative Splicing

Tomoki Ueda, Kei Ichiro Nishimura, Yuka Nishiyama, Yuto Tominaga, Katsushi Miyazaki, Hiroyuki Furuta, Shigeyoshi Matsumura, Yoshiya Ikawa*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Alternative splicing is an important mechanism in the process of eukaryotic nuclear mRNA precursors producing multiple protein products from a single gene. Although group I self-splicing introns usually perform regular splicing, limited examples of alternative splicing have also been reported. The exon-skipping type of splicing has been observed in genes containing two group I introns. To characterize splicing patterns (exon-skipping/exon-inclusion) of tandemly aligned group I introns, we constructed a reporter gene containing two Tetrahymena introns flanking a short exon. To control splicing patterns, we engineered the two introns in a pairwise manner to design pairs of introns that selectively perform either exon-skipping or exon-inclusion splicing. Through pairwise engineering and biochemical characterization, the structural elements important for the induction of exon-skipping splicing were elucidated.

Original languageEnglish
Article number654
JournalBiomolecules
Volume13
Issue number4
DOIs
StatePublished - 2023/04

Keywords

  • Tetrahymena
  • alternative splicing
  • exon-inclusion
  • exon-skipping
  • group I intron
  • ribozyme
  • self-splicing

ASJC Scopus subject areas

  • Biochemistry
  • Molecular Biology

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