An integrated perspective on the evolution of biological parts across DNA-, RNA-, and protein-level regulation is provided, connecting these advances with assembly frameworks, biofoundries, and machine learning to trace the trajectory from part-centric engineering toward predictive, system-level design in yeast synthetic biology.
Abstract
Abstract Yeasts, particularly Saccharomyces cerevisiae, are important eukaryotic chassis for synthetic biology because of their tractable genetics, versatile toolkits, and broad utility in metabolic engineering and functional genomics. Progress in this field has been driven by biological parts that enable programmable control of gene expression and cellular behavior. Early efforts focused mainly on promoters, terminators, and other regulatory elements for tuning individual genes. However, as engineering expanded to multigene pathways, genetic circuits, and dynamic regulatory systems, the limits of part-centric design became clear. Part performance is often shaped by genomic context, chromatin state, host physiology, and interactions with other components, which restricts modularity and predictability. In response, yeast synthetic biology is shifting toward integrated design frameworks combining multilayer regulation, standardized assembly, automated experimentation, and computational modeling. This review provides an integrated perspective on the evolution of biological parts across DNA-, RNA-, and protein-level regulation, connecting these advances with assembly frameworks, biofoundries, and machine learning to trace the trajectory from part-centric engineering toward predictive, system-level design in yeast synthetic biology.
Yeasts serve as premier eukaryotic hosts for microbial cell factories, enabling the production of recombinant proteins, biofuels, and high-value natural products. Precise transcriptional control is paramount for balancing complex metabolic pathways and maximizing target product yields. Promoters, as the key regulator...
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This review concluded with current challenges and future directions, focusing on integrating synthetic biology and systems biology to create robust, controllable transcriptional frameworks for next-generation yeast cell factories.
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