Related Experiment Video
Updated: Jan 19, 2026

Protein Engineering by Yeast Surface Display
Published on: November 29, 2024
Characterizing an engineered carotenoid-producing yeast as an anti-stress chassis for building cell factories
Hsien-Lin Liu1,2,3, Jui-Jen Chang4,2, Caroline Thia3
1Ph.D. Program in Microbial Genomics, National Chung Hsing University and Academia Sinica, Taipei, Taiwan.
Background:
A microorganism engineered for non-native tasks may suffer stresses it never met before. Therefore, we examined whether a Kluyveromyces marxianus strain engineered with a carotenoid biosynthesis pathway can serve as an anti-stress chassis for building cell factories.
Results:
Carotenoids, a family of antioxidants, are valuable natural products with high commercial potential. We showed that the free radical removal ability of carotenoids can confer the engineered host with a higher tolerance to ethanol, so that it can produce more bio-ethanol than the wild type. Moreover, we found that this engineered strain has improved tolerance to other toxic effects including furfurals, heavy metals such as arsenate (biomass contaminant) and isobutanol (end product). Furthermore, the enhanced ethanol tolerance of the host can be applied to bioconversion of a natural medicine that needs to use ethanol as the delivery solvent of hydrophobic precursors. The result suggested that the engineered yeast showed enhanced tolerance to ethanol-dissolved hydrophobic 10-deacetylbaccatin III, which is considered a sustainable precursor for paclitaxel (taxol) bioconversion.
Conclusions:
The stress tolerances of the engineered yeast strain showed tolerance to several toxins, so it may serve as a chassis for cell factories to produce target products, and the co-production of carotenoids may make the biorefinary more cost-effective.
Related Concept Videos
05:49Protein Engineering by Yeast Surface Display
Factorial Design
The Factorial Experiment
14:57Yeast As a Chassis for Developing Functional Assays to Study Human P53
10:10Genetic Engineering of an Unconventional Yeast for Renewable Biofuel and Biochemical Production
10:18CRISPR/Cas12a Multiplex Genome Editing of Saccharomyces cerevisiae and the Creation of Yeast Pixel Art
