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Biology subjects

Mortensen, U. H.

Publications and source records attributed to Mortensen, U. H..

4 recordsLinked to original sources

RoCi - A Single Step Multi-Copy Integration System Based on Rolling-Circle Replication

Fungi are often used as cell factories for homologous and heterologous production of enzymes and metabolites. One strategy to obtain high yielding strains is to enhance the expression level of the gene(s) responsible for production of the product by inserting multiple copies of the gene-expression cassette. Typically, this is achieved by transforming non-homologous end-joining proficient strains with large amounts of a DNA vector, which randomly integrates in multiple copies at different loci, or more often, into a single locus with copies arranged as mixed orientation repeats. The majority of strains produced in this manner are unstable and substantial screening is necessary to identify strains with high and stable production. Moreover, the randomness of the insertion processes makes it difficult to determine how and where the copies are positioned in the genome. To this end, we envisioned that the instability of gene clusters made by the classical method is mostly due to the presence of a mixture of directly and inverted repeats. In such clusters, hairpins formed by inverted repeats may cause frequent recombinogenic lesions during replication to induce gene-expression cassette copy-loss by direct-repeat recombination. It is therefore possible that strains with gene-expression cassette clusters made solely by direct repeats would be more stable. Using Aspergillus nidulans as a model, we tested this idea and developed RoCi, a simple and efficient method to facilitate integration of multiple directly repeated gene-expression cassettes into a defined genomic locus through rolling-circle replication without pre-engineering requirements for strain preparation. In addition, we demonstrate that RoCi can be performed without E. coli based cloning, making it compatible with medium-high throughput experiments. Analyzing strains produced by RoCi, we have constructed strains bearing up to 68 mRFP GECs and we show that an mRFP multi-copy gene-array supports high and stable mRFP production for at least [~]150 generations on solid medium. In liquid culture we observed a minor average copy loss at 1 L scale. This loss could be eliminated by extending the gene-expression cassette with a crippled selection marker. To demonstrate the strength of the method, we used it to produce stable and high yielding cell factories for production of the specialized metabolite cordycepin on solid medium and of the enzyme {beta}-glucuronidase in submerged culture. Finally, we show that RoCi can also be applied in the industrial workhorses A. niger and A. oryzae indicating that RoCi is generally applicable in fungi.

synthetic biology↗

Oligonucleotide-based CRISPR-Cas9 toolbox for efficient engineering of Komagataella phaffii

Komagataella phaffii (Pichia pastoris) is a methylotrophic yeast that is favored by industry and academia mainly for expression of heterologous proteins. However, its full potential as a host for bio-production of valuable compounds is not yet fully exploited. The emergence of CRISPR-Cas9 technology has significantly improved the efficiency of gene manipulations of non-conventional species including K. phaffii. Yet, improvements in gene-editing methods are desirable to further accelerate engineering of industrially and scientifically relevant K. phaffii strains. In this study, we have developed a versatile one vector-based CRISPR-Cas9 method and showed that it works efficiently at different genetic loci using linear DNA fragments with very short targeting sequences. Importantly, we show that by using our setup it is possible to catalyze single-stranded oligonucleotide-mediated mutagenesis and marker-free gene integrations. Notably, we performed site-specific point mutations and full gene deletions using single stranded 90-mers at very high efficiencies. Lastly, we present a strategy for transient inactivation of non-homologous end-joining (NHEJ) pathway, where KU70 gene is disrupted by a visual marker (uidA gene). The latter system enables precise CRISPR-Cas9 based editing (including multiplexing) and accelerates selection of the mutants that have simultaneously undergone a desired genetic modification(s) and restored NHEJ-proficient genotype. In conclusion, the tools presented in this study can be applied for easy and efficient engineering of K. phaffii strains and could potentially be coupled with high-throughput automated workflows.

synthetic biology↗

Microbial cell factory optimisation using genome-wide host-pathway interaction screens

The ubiquity of genetic interactions in living cells challenges the concept of parts orthogonality, which is a cornerstone of synthetic biology. Parts, such as heterologously expressed genes, draw from shared pools of limited cellular resources and interactions between parts themselves and their host are inevitable. Instead of trying to eliminate or disregard these interactions, we propose to leverage them to promote desirable phenotypes. We recently described CRI-SPA, a method for high-throughput genome-wide gene delivery and screening of host:pathway interactions in Saccharomyces cerevisiae. In this study, we combine this method with biosensor-based high-throughput screening and high-density colony image analysis to identify lead engineering targets for optimising cis-cis-muconic acid (CCM) production in yeast cell factories. Using the biosensor screen, we phenotype >9,700 genotypes for their interaction with the heterologously expressed CCM biosynthesis pathway, including both gene knock-out and overexpression, and identify novel metabolic targets belonging to sulphur assimilation and methionine synthesis, as well as cellular redox homeostasis, positively impacting CCM biosynthesis by up to 280%. Our genome-wide exploration of host pathway interaction opens novel strategies for the metabolic engineering of yeast cell factories.

synthetic biology↗

CRI-SPA, a mating based CRISPR-Cas9 assisted method for high-throughput genetic modification of yeast strain libraries

AbstractBiological functions are orchestrated by intricate networks of interacting genetic elements. Predicting the interaction landscape remains a challenge for systems biology and the identification of phenotypic maximas would be of great benefit to synthetic biology. Thus, new research tools allowing simple and rapid mapping of sequence to function are required to forward these research fields. Here, we describe CRI-SPA, a method allowing the transfer of a chromosomal genetic feature from a donor strain to arrayed strains in large libraries of Saccharomyces cerevisiae. CRI-SPA is based on mating, CRISPR-Cas9-induced gene conversion and Selective Ploidy Ablation and is executed within a week. We demonstrate the power of CRI-SPA by transferring four genes responsible for the production of betaxanthin, a yellow biosensor for the morphine precursor L-DOPA, into each strain of the yeast knock-out collection ({approx}4800 strains), providing a genome-wide overview of the genetic requirements for betaxanthin production. CRI-SPA is fast, highly reproducible, can be massively parallelized with automation and does not require selection for the transferred genetic feature.

systems biology↗