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Updated: Sep 19, 2026

In vivo Application of the REMOTE-control System for the Manipulation of Endogenous Gene Expression
Published on: March 29, 2019
Transcriptional reprogramming with endogenous cis- and trans-elements for efficient food protein expression from safe
Yunhao Li1, Jiayi Yang1, Liufei Tao1
1State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China.
Abstract:
Sustainable economy and social development require a paradigm shift in the modes of production of edible proteins. Komagataella phaffii is a preferred host for food protein expression. However, its methanol-dependent production mode and host improvement with exogenous bioelements pose challenges for the manufacturing and approval of bulk food proteins. In this study, we report an endogenous streamlined promoter-regulator integrated transcriptional (ESPRIT) system for efficient expression on non-methanol substrates in K. phaffii. A strong and simplified PAOX1 variant, PAA13-t13, was obtained through core promoter mining and streamlining of upstream regulatory sequences, with a 57% reduction in promoter length and expression increased to 3.4-fold that of PAOX1 under methanol conditions. Overexpression of the transactivator Mit1 enabled PAA13-t13 to drive high-level expression on glucose, glycerol, and ethanol. Endogenous zinc-finger transactivators were screened from genome, and their activation regions were fused with the DNA-binding domain of Mit1, resulting in 25 synthetic transactivators. Combinatory function of the engineered endogenous promoter and transactivator established the ESPRIT system, which achieved 6.8-fold and 10.1-fold expression levels on glucose that of methanol-inducible PAOX1 on methanol and constitutive PGAP on glucose, respectively. It also allowed efficient production of three food proteins under methanol-free conditions. In the bioreactor, the ESPRIT system produced 5.14 g/L β-lactoglobulin and 1.95 g/L brazzein on glucose, achieving 3.0-fold and 1.9-fold as compared to the commercial methanol-dependent PAOX1 system, respectively. These results established the ESPRIT system as an alternative expression platform for efficient food protein production from non-methanol substrates in K. phaffii.
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