Enhancing the Secretion Efficiency of EGFP in Pichia pastoris Through N ‐Glycosylation and SOD1‐Mediated Redox Regulation

Pichia pastoris has emerged as a highly efficient heterologous protein expression system with significant potential for secretory production. However, its secretion efficiency is influenced by multiple factors, among which intracellular redox homeostasis plays a critical role. In this study, differential EGFP-secreting strains (GS115-High/Low) were constructed via genomic integration of site-directed mutations at N-glycosylation sites in the α-mating factor signal peptide of P. pastoris. Notably, the expression of the superoxide dismutase (SOD1) gene was significantly upregulated in the high-secretion strain GS115-High. To further investigate the regulatory role of SOD1 in protein secretion, the SOD1 gene was overexpressed in both high- and low-secretion strains. Experimental results demonstrated that SOD1 overexpression markedly enhanced EGFP secretion in the high-secretion strain (p ≤ 0.05), but had no significant effect on the low-secretion strain. Transcriptomic analysis revealed that amino acid metabolism pathways and oxidoreductase activity were significantly enhanced in the high-secretion strain, suggesting a synergistic optimization of secretion efficiency through metabolic resource reallocation and antioxidant capacity. This study demonstrates that glycosylation modification and SOD1-mediated redox regulation both contribute to enhanced EGFP secretion, providing a basis for a "glycosylation-antioxidant" dual-track optimization strategy for the rational design of industrial P. pastoris strains and high-efficiency protein production.

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Publication Details

Journal
Biotechnology and Applied Biochemistry
Published
2026-10-09
DOI
https://doi.org/10.1002/bab.70217
Primary Topic
Fungal and yeast genetics research
Type
article
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article

Enhancing the Secretion Efficiency of EGFP in Pichia pastoris Through N ‐Glycosylation and SOD1‐Mediated Redox Regulation

Yide Huang, Yujing Yu, Yaying Xie, Wenhui Wang et al.
Biotechnology and Applied Biochemistry
Fungal and yeast genetics research
article

Enhancing the Secretion Efficiency of EGFP in Pichia pastoris Through N ‐Glycosylation and SOD1‐Mediated Redox Regulation

Yide Huang, Yujing Yu, Yaying Xie, Wenhui Wang, Yuxuan Lin, Yao Lin
article en

Abstract

Pichia pastoris has emerged as a highly efficient heterologous protein expression system with significant potential for secretory production. However, its secretion efficiency is influenced by multiple factors, among which intracellular redox homeostasis plays a critical role. In this study, differential EGFP-secreting strains (GS115-High/Low) were constructed via genomic integration of site-directed mutations at N-glycosylation sites in the α-mating factor signal peptide of P. pastoris. Notably, the expression of the superoxide dismutase (SOD1) gene was significantly upregulated in the high-secretion strain GS115-High. To further investigate the regulatory role of SOD1 in protein secretion, the SOD1 gene was overexpressed in both high- and low-secretion strains. Experimental results demonstrated that SOD1 overexpression markedly enhanced EGFP secretion in the high-secretion strain (p ≤ 0.05), but had no significant effect on the low-secretion strain. Transcriptomic analysis revealed that amino acid metabolism pathways and oxidoreductase activity were significantly enhanced in the high-secretion strain, suggesting a synergistic optimization of secretion efficiency through metabolic resource reallocation and antioxidant capacity. This study demonstrates that glycosylation modification and SOD1-mediated redox regulation both contribute to enhanced EGFP secretion, providing a basis for a "glycosylation-antioxidant" dual-track optimization strategy for the rational design of industrial P. pastoris strains and high-efficiency protein production.

Biotechnology and Applied Biochemistry
Fujian Normal University (CN), Fujian University of Traditional Chinese Medicine (CN)
Openalex Percentile: Top 23%
Fungal and yeast genetics research
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