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Koehler, S. I.

Publications and source records attributed to Koehler, S. I..

2 recordsLinked to original sources

Metabolic trade-offs in response to increased acetate metabolism in Escherichia coli

Adaptive laboratory evolution (ALE) is a powerful tool to improve phenotypes in microbial cell factories for biotechnological processes. For example, ALE can be utilized to improve growth on alternative carbon sources such as acetate. Acetate is becoming a promising alternative feedstock to produce a variety of bio-products, but growth on acetate is slow relative to other preferred carbon sources and can be toxic to cells. However, ALE in a homogenous environment can lead to evolutionary trade-offs for growth on other carbon sources, which might be detrimental for feedstocks that contain multiple sugars. Here, we evolved Escherichia coli for [~]100 generations using continuous culturing in turbidostats in media containing acetate as the sole carbon source to rapidly select for increased growth in acetate. We measured absolute fitness of 119 clones in acetate and glucose separately to characterize trade-offs and found that trade-off patterns were heterogenous amongst measured clones, with 45% of clones showing significantly reduced growth in glucose. Sequencing revealed that the trade-offs were a result of antagonistic pleiotropic effects of early adaptive mutations, but not all high-effect mutations conferred a trade-off, consistent with the model that mutations accumulated in the selected environment can display a range of pleiotropic effects in other environments. Together, these results suggest that ALE in a homogeneous environment needs to be carefully considered for the improvement of metabolic traits in microbial cells as this could limit the use of evolved strains in complex feedstocks that contain multiple sugars.

evolutionary biology↗

The telomere-to-telomere, gapless, phased diploid genome and methylome of the green alga Scenedesmus obliquus UTEX 3031 reveals significant heterozygosity and functional separation of the haplotypes

Recent advances in sequencing technologies have improved contiguity of de novo genome assemblies. Nevertheless, the genomes of all eukaryotic organisms which are polyploid remain unfinished, limiting understanding of genetic and structural variation in diploid or polyploid organisms. Herein, we report the methodology and analysis of a 100% complete, gapless, phased, telomere-to-telomere diploid genome assembly of the eukaryote, Scenedesmus obliquus UTEX 3031 (DOE0152Z). Analysis of the fully assembled and resolved haplotypes revealed significant genomic rearrangements. Inter-haplotype heterogeneity was significant on most chromosomes yet one chromosome pair (Chromosome 15) was found to contain nearly no heterozygosity. Analysis of the 5mC methylation patterns revealed divergence in active gene content across haplotypes. Assembly of fully resolved chromosome pairs enabled complete resolution of genomic rearrangements and heterogeneity of haplotypes, the genomic basis of trait gain/loss, and evolutionary divergence across chromosome pairs. Further, when combined with 5mC methylation patterns, the assembly provides critical annotation information for genetic engineering approaches to achieve full knock-outs in allelic pairs.

genomics↗