Skip to content
Open access

Simplifying multiplex genome engineering in Saccharomyces cerevisiae with intron-mediated Random Assembly and INtegration (RAIN)

Aug 2026 · FEMS Yeast Research · Vol 26 · 0 citations · 54 references
Medicine

TL;DR

A nascent method for multiplex genome engineering in Saccharomyces cerevisiae that negates the requirement for cloning of expression cassettes is presented and the first reported use of intron-mediated assembly of promoters and ORFs for expression of a functional gene product is reported.

Abstract

Abstract Engineering of multistep enzymatic pathways often involves extensive optimization of heterologous gene expression levels and requires cloning of promoter and open reading frames (ORFs) to generate expression cassettes. We present work on a nascent method for multiplex genome engineering in Saccharomyces cerevisiae that negates the requirement for cloning of expression cassettes. Our system, Random Assembly and INtegration (RAIN), uses intron-mediated homologous recombination (HR) for random in vivo assembly of exogenous promoter and ORF libraries, which are combined and cotransformed in a one-pot method. The libraries include consensus homology arms which target long terminal repeat regions of the Ty1 retrotransposon, providing over a hundred possible integration loci. In this way, our developmental system aims to negate the need for in vitro combinatorial cloning of promoters and ORFs to generate expression cassettes, simplifying in vitro DNA preparation before multiplex genome engineering. This paper presents findings from a series of experiments to demonstrate a proof of concept for the RAIN system. These include: the first reported use of intron-mediated assembly of promoters and ORFs for expression of a functional gene product; up to three markerless genomic integrations; and up to five integrations with antibiotic selection. We also present a number of innovations to improve integration efficiency during multiplex engineering in S. cerevisiae including: SGS1 gene knockout; disruption of heteroduplex rejection; modified Cas9 expression architecture; and overexpression of HR genes RAD52, MRE11, and RAD59. To demonstrate how our system can be used for single transformation phenotype engineering of multiple strains, we also transformed a library of methylotrophy associated genes to generate four new strains that were able to grow on a solid minimal medium with methanol as the sole additional carbon source. Our findings contribute to the ongoing efforts to improve multiplex genome engineering tools in S. cerevisiae, and provide the foundations for further development of a novel toolbox for generating useful genetic diversity for metabolic pathway engineering.

Read PDF

Similar papers

Open access Jul 2026

Multiplex genome engineering in yeast using the TIGR-Tas system

This work establishes TIGR-Tas as a valuable addition to the yeast genome engineering toolbox, particularly for applications requiring PAM-independent targeting or compact delivery.

Zhenkun Cai, Yetong Sang, Lingjie Xu et al. · 0 citations
#gene editing Aug 2026

Engineering RNA-guided bridge recombinases for precise large-scale genome editing.

An RNA-guided bridge recombinase system is engineered through rational mutagenesis and AI-assisted directed evolution, enabling programmable chromosomal rearrangements in both plant and mammalian cells and achieving up to a 29.8-fold increase in activity.

Rui Gao, Jingjing Wei, Chao Sun et al. · 0 citations
Open access Sep 2026

Modular synthetic cross-kingdom promoters enable coordinated expression in Escherichia coli and Saccharomyces cerevisiae

A set of modular hybrid promoters that enable tunable and quantitatively consistent gene expression in both Escherichia coli and Saccharomyces cerevisiae are designed and establishes a broadly compatible promoter architecture and provides a foundational toolkit for cross-kingdom, multi-host synthetic biology.

So-Hee Son, Soo-Young Moon, N. An et al. · 0 citations
Open access Sep 2026

An intersectional expression platform for gene complementation using RNA-fragment end joining (REJ)

Gene complementation is a powerful tool for genetic selection and protein functional studies but typically requires extensive screening for complementary components. Here we engineered a platform for gene complementation based on RNA end-joining (REJ) that precisely and efficiently splices separate RNA units into funct...

L. Bachmann, Ryan H. Hsu, K. Hermann et al. · 0 citations
#gene editing Open access Aug 2026

Precise genomic integration of large DNA fragments by donor-directed annealing using prime editing.

A programmable gene replacement tool, named prime assembly (PA), which adapts prime editors to produce one or two pairs of 3'-flaps on both the genome and donor DNA, allowing megabase-scale genomic excision and/or kilobase-scale donor insertion at the gene of interest.

Hojun Jung, Bada Jeong, Yong-Woo Kim et al. · 1 citation · ⚡1
2026

CRISPR-Cpf1-Mediated T4 Phage Genome Editing for One-Step In Vivo Display of Heterologous Protein.

This engineering method allows for endogenous expression of the Soc-mCherry recombinant protein within Escherichia coli cells during phage replication, after which the recombinant protein spontaneously assembles onto the capsid of the engineered phage.

Yi-Yao Wang, Xin-Feng Li, Yu-Sen Huang et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.