LowTempGAL: a highly responsive low temperature-inducible GAL system in Saccharomyces cerevisiae

Author:

Lu Zeyu123,Shen Qianyi123,Bandari Naga Chandra2,Evans Samuel13,McDonnell Liam13,Liu Lian24,Jin Wanli5,Luna-Flores Carlos Horacio3,Collier Thomas16,Talbo Gert24,McCubbin Tim12,Esquirol Lygie27,Myers Chris8,Trau Matt29,Dumsday Geoff10,Speight Robert1311,Howard Christopher B2,Vickers Claudia E13,Peng Bingyin123ORCID

Affiliation:

1. ARC Centre of Excellence in Synthetic Biology , Australia

2. Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland , Brisbane, QLD 4072,  Australia

3. Centre of Agriculture and the Bioeconomy, School of Biology and Environmental Science, Faculty of Science, Queensland University of Technology , Brisbane , QLD  4000 , Australia

4. The Queensland Node of Metabolomics Australia and Proteomics Australia (Q-MAP), Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane , QLD  4072 , Australia

5. Institute for Molecular Bioscience (IMB), The University of Queensland , Brisbane , QLD  4072 , Australia

6. School of Natural Sciences, Macquarie University , Sydney , NSW  2109 , Australia

7. Environment, Commonwealth Scientific and Industrial Research Organisation, Canberra , ACT 2601, Australia

8. Department of Electrical, Computer, and Energy Engineering University of Colorado , Boulder , CO  80309 , USA

9. School of Chemistry and Molecular Biosciences (SCMB), the University of Queensland , Brisbane , QLD  4072 , Australia

10. Manufacturing, Commonwealth Scientific and Industrial Research Organisation ,  Clayton , VIC, 3169 , Australia

11. Advanced Engineering Biology Future Science Platform, Commonwealth Scientific and Industrial Research Organisation (CSIRO) , Black Mountain, ACT, 2601 , Australia

Abstract

Abstract Temperature is an important control factor for biologics biomanufacturing in precision fermentation. Here, we explored a highly responsive low temperature-inducible genetic system (LowTempGAL) in the model yeast Saccharomyces cerevisiae. Two temperature biosensors, a heat-inducible degron and a heat-inducible protein aggregation domain, were used to regulate the GAL activator Gal4p, rendering the leaky LowTempGAL systems. Boolean-type induction was achieved by implementing a second-layer control through low-temperature-mediated repression on GAL repressor gene GAL80, but suffered delayed response to low-temperature triggers and a weak response at 30°C. Application potentials were validated for protein and small molecule production. Proteomics analysis suggested that residual Gal80p and Gal4p insufficiency caused suboptimal induction. ‘Turbo’ mechanisms were engineered through incorporating a basal Gal4p expression and a galactose-independent Gal80p-supressing Gal3p mutant (Gal3Cp). Varying Gal3Cp configurations, we deployed the LowTempGAL systems capable for a rapid stringent high-level induction upon the shift from a high temperature (37–33°C) to a low temperature (≤30°C). Overall, we present a synthetic biology procedure that leverages ‘leaky’ biosensors to deploy highly responsive Boolean-type genetic circuits. The key lies in optimisation of the intricate layout of the multi-factor system. The LowTempGAL systems may be applicable in non-conventional yeast platforms for precision biomanufacturing.

Funder

ARC Centre of Excellence in Synthetic Biology

Commonwealth Scientific and Industrial Research Organisation

Publisher

Oxford University Press (OUP)

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