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Hochrein, L.

Publications and source records attributed to Hochrein, L..

2 recordsLinked to original sources

In Vivo Pathway Optimization in Yeast via LoxPsym-Mediated Shuffling of Upstream Activating Sequences

The budding yeast Saccharomyces cerevisiae plays an integral role in the bioeconomy as a powerful host for industrial bio-manufacturing, driving the production of diverse bio-based products. Achieving optimal product yields requires precise fine-tuning of the expression levels of multiple pathway genes, which often relies on cloning-intensive methods. Here, we present PULSE, an in vivo promoter engineering tool based on a streamlined workflow combining FACS-based screening of a randomized DNA library to identify active promoter elements, and their subsequent assembly into synthetic hybrid promoters where each element is flanked by loxPsym sites. Multiple promoter cassettes can be genome-integrated to generate "ready-to-use" platform strains, allowing users to easily place their genes of interest under the control of PULSE promoters. By activating Cre-mediated recombination, loxPsym-flanked promoter elements can be recombined, effectively bringing the target genes under control of a vast set of promoters spanning a wide range of expression levels in one simple step. Applying PULSE on two heterologous pathways, an eightfold increase in {beta}-carotene production and improved growth on high xylose concentrations by S. cerevisiae was achieved. These results demonstrate the power and efficiency of PULSE as a versatile platform for metabolic engineering, enabling rapid, cloning-free optimization of biosynthetic pathways in vivo.

synthetic biology↗

L-SCRaMbLE creates large-scale genome rearrangements in synthetic Sc2.0 chromosomes

Optimization of the metabolic flux through heterologous pathways to improve bioproduction or utilization of alternative substrates requires both fine-tuning of non-native gene expression levels and improvement of the host genome. The SCRaMbLE system incorporated into synthetic Sc2.0 yeast strains enables a rapid approach to rearrange the genome of Saccharomyces cerevisiae in order to create optimized chassis. Here, we show that the light-inducible Cre recombinase L-SCRaMbLE can efficiently generate diverse recombination events when applied to Sc2.0 strains containing a linear or circular synthetic chromosome III. We present an efficient and straightforward workflow for the identification of complex rearranged synthetic chromosomes from SCRaMbLEd isolates without selection pressure. The screening method is based on novel genotyping primers, the loxPsym tags, which indicate not only deletions but also inversions and translocations. Long-read Nanopore sequencing is used to decode the selected genotypes and shows in conjunction with flow cytometry that large-scale karyotype alterations can be a consequence of SCRaMbLE.

synthetic biology↗