Protein production dynamics and physiological adaptation of recombinant Komagataella phaffii at near-zero growth rates

Author:

Corinna Rebnegger1,Coltman Benjamin L.1,Kowarz Viktoria1,Peña David A.2,Mentler Axel2,Troyer Christina2,Hann Stephan2,Schöny Harald3,Koellensperger Gunda3,Mattanovich Diethard1,Gasser Brigitte1

Affiliation:

1. University of Natural Resources and Life Sciences (BOKU)

2. University of Natural Resources and Life Sciences

3. University of Vienna

Abstract

Abstract Background Specific productivity (qP) in yeast correlates with growth, typically peaking at intermediate or maximum specific growth rates (µ). Understanding the factors limiting productivity at extremely low µ might reveal decoupling strategies, but knowledge of production dynamics and physiology in such conditions is scarce. Retentostats, a type of continuous cultivation, enable the well-controlled transition to near-zero µ through the combined retention of biomass and limited substrate supply. Recombinant Komagataella phaffii (syn Pichia pastoris) secreting a bivalent single domain antibody (VHH) was cultivated in aerobic, glucose-limited retentostats to investigate recombinant protein production dynamics and broaden our understanding of relevant physiological adaptations at near-zero growth conditions. Results By the end of retentostat cultivation, doubling times of approx. two months were reached, corresponding to µ = 0.00046 h− 1. Despite these extremely slow growth rates, the proportion of viable cells remained high, and de novo synthesis and secretion of the VHH were observed. The average qP at the end of the retentostat was estimated at 0.019 mg g− 1 h− 1. Transcriptomics indicated that genes involved in protein biosynthesis were only moderately downregulated towards zero growth, while secretory pathway genes were mostly regulated in a manner seemingly detrimental to protein secretion. Adaptation to near-zero growth conditions of recombinant K. phaffii resulted in significant changes in the total protein, RNA, DNA and lipid content, and lipidomics revealed a complex adaptation pattern regarding the lipid class composition. The higher abundance of storage lipids as well as storage carbohydrates indicates that the cells are preparing for long-term survival. Conclusions In conclusion, retentostat cultivation proved to be a valuable tool to identify potential engineering targets to decouple growth and protein production and gain important insights into the physiological adaptation of K. phaffii to near-zero growth conditions.

Publisher

Research Square Platform LLC

Reference88 articles.

1. Biopharmaceutical benchmarks 2022;Walsh G;Nat Biotechnol,2022

2. Recent Developments in Bioprocessing of Recombinant Proteins: Expression Hosts and Process Development;Tripathi NK;Front Bioeng Biotechnol,2019

3. Comparison of Yeasts as Hosts for Recombinant Protein Production;Vieira Gomes AM;Microorganisms,2018

4. Microbial protein cell factories fight back? Trends in biotechnology 2021;Rettenbacher SECRETERS

5. Application of Continuous Culture Methods to Recombinant Protein Production in Microorganisms;Peebo K;Microorganisms,2018

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