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Published on: May 1, 2018
Yeast Stress Response to Synthetic Constructs
Musa Tartik1,2
1Department of Molecular Biology and Genetics, Faculty of Arts and Sciences, Bingol University, Bingol 12000, Turkey.
Abstract:
Saccharomyces cerevisiae is widely adopted as a chassis in synthetic biology. However, heterologous constructs often disrupt proteostasis, metabolism, redox balance, and secretory processes. These disruptions activate a complex network of stress pathways. These include the heat shock response, unfolded protein response, oxidative stress defenses, cell wall integrity signaling, the high-osmolarity glycerol pathway, and Snf1/AMPK-mediated energy regulation. Collectively, these pathways form a stressome that maintains cellular homeostasis but constrains productive capacity. A comprehensive understanding of how synthetic designs interact with these pathways is essential for developing robust yeast systems. Strategies such as promoter tuning, chaperone augmentation, redox and cofactor balancing, lipid and membrane optimization, dynamic regulation, and pathway compartmentalization can reduce cellular burden. Emerging methods also improve stress mitigation. These include CRISPR-based circuit rewiring, adaptive laboratory evolution, synthetic organelle construction, and data-driven strain engineering. This review summarizes construct-induced stress in engineered yeast and presents stress-aware design principles to advance more resilient, higher-yielding S. cerevisiae strains for biotechnology.
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