It is demonstrated that maximizing recombinant protein production requires optimization of both yield and structural quality and establish complementary strategies for improving secreted protein expression in Pichia.
Abstract
Pichia pastoris is a widely used host for recombinant protein production because it combines the advantages of microbial cultivation with eukaryotic protein folding and secretion. However, secretion efficiency is often limited by the folding capacity of the endoplasmic reticulum (ER), where recombinant proteins must be translocated, folded, and processed prior to export. When ER folding capacity is exceeded, proteins may be retained, degraded, or secreted in non-native conformations, reducing both yield and product quality. Chaperone engineering and codon optimization represent two promising strategies to address these limitations. Here, we generated stable Pichia strains expressing four model secreted proteins (human serum albumin, interleukin-2, thaumatin-I, and thaumatin-II) using either conventional codon optimization or Epi-MAX codon engineering, which adapts transgene codon usage to stress-responsive translational programs. We also engineered strains containing an additional chromosomal copy of either the ER Hsp70 chaperone Kar2 or protein disulfide isomerase (Pdi1). To assess protein quality, we applied limited proteolysis mass spectrometry (LiP-MS), a structural proteomics approach that can detect subtle conformational differences to secreted proteins. Increased Pdi1 levels improved secretion of all four proteins tested, whereas Kar2 overexpression generally reduced yield. For thaumatin-II, Pdi1 enhanced secretion but promoted release of a non-native conformation, which we could correct through codon engineering. Together, these results demonstrate that maximizing recombinant protein production requires optimization of both yield and structural quality and establish complementary strategies for improving secreted protein expression in Pichia.
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