Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

CRISPR-engineered inducible flocculation in Komagataella phaffii enables enhanced biomass separation for biopharmaceutical production

View through CrossRef
Abstract Biomass separation represents a critical bottleneck in Komagataella phaffii -based biopharmaceutical processes, as typically high cell densities of 40 – 50 % create significant operational, technical and economic challenges for harvest operations. Yeast cell aggregation (flocculation) provides a solution to accelerate cell sedimentation by increasing particle size, thus allowing to improve biomass-supernatant separation efficiency during both natural gravity settling and (continuous) centrifugation operations. This study demonstrates successful engineering of K. phaffii strains with an inducible flocculation phenotype using CRISPR/Cas9-based genome editing to integrate the Saccharomyces cerevisiae FLO1 ( ScFLO1 ) gene under control of various regulatory elements, including methanol-inducible and derepressible promoters. Flocculation strength could be enhanced by implementing transcriptional positive feedback circuits based on the methanol-inducible AOX1 promoter. To address methanol-free production requirements, we developed alternative systems to retrofit P AOX1 -based ScFLO1 expression and exploited the derepressible PDF promoter, offering broader compatibility with biopharmaceutical manufacturing facilities. Flocculating cells cultivated in a bioreactor demonstrated significantly improved sedimentation behavior, with considerably lower supernatant turbidity after short low-speed centrifugation compared to non-flocculating controls. Crucially, cell flocculation had no negative impact on product amount and quality when expressing a multivalent NANOBODY ® VHH molecule with pharmaceutical relevance. Thus, this work establishes the first genetically engineered flocculation system in K. phaffii compatible with recombinant protein production, providing the basis for an innovative approach to streamline harvest operations in biopharmaceutical processes.
Title: CRISPR-engineered inducible flocculation in Komagataella phaffii enables enhanced biomass separation for biopharmaceutical production
Description:
Abstract Biomass separation represents a critical bottleneck in Komagataella phaffii -based biopharmaceutical processes, as typically high cell densities of 40 – 50 % create significant operational, technical and economic challenges for harvest operations.
Yeast cell aggregation (flocculation) provides a solution to accelerate cell sedimentation by increasing particle size, thus allowing to improve biomass-supernatant separation efficiency during both natural gravity settling and (continuous) centrifugation operations.
This study demonstrates successful engineering of K.
phaffii strains with an inducible flocculation phenotype using CRISPR/Cas9-based genome editing to integrate the Saccharomyces cerevisiae FLO1 ( ScFLO1 ) gene under control of various regulatory elements, including methanol-inducible and derepressible promoters.
Flocculation strength could be enhanced by implementing transcriptional positive feedback circuits based on the methanol-inducible AOX1 promoter.
To address methanol-free production requirements, we developed alternative systems to retrofit P AOX1 -based ScFLO1 expression and exploited the derepressible PDF promoter, offering broader compatibility with biopharmaceutical manufacturing facilities.
Flocculating cells cultivated in a bioreactor demonstrated significantly improved sedimentation behavior, with considerably lower supernatant turbidity after short low-speed centrifugation compared to non-flocculating controls.
Crucially, cell flocculation had no negative impact on product amount and quality when expressing a multivalent NANOBODY ® VHH molecule with pharmaceutical relevance.
Thus, this work establishes the first genetically engineered flocculation system in K.
phaffii compatible with recombinant protein production, providing the basis for an innovative approach to streamline harvest operations in biopharmaceutical processes.

Related Results

Diverse evolutionary roots and mechanistic variations of the CRISPR-Cas systems
Diverse evolutionary roots and mechanistic variations of the CRISPR-Cas systems
BACKGROUND Prokaryotes have evolved multiple systems to combat invaders such as viruses and plasmids. Examples of such defense systems include receptor masking,...
Introduction to CRISPR/Cas9
Introduction to CRISPR/Cas9
Clustered Regularly Interspersed Short Palindromic Repeats (often referred to as CRISPR) is a revolutionary new genome engineering technology that is capable of modifying virtually...
Genome engineering using CRISPR
Genome engineering using CRISPR
Clustered Regularly Interspersed Short Palindromic Repeats (often referred to as CRISPR) is a revolutionary new genome engineering technology that is capable of modifying virtually...
Multi-modular engineering of Komagataella phaffii for efficient synthesis of human lactoferrin
Multi-modular engineering of Komagataella phaffii for efficient synthesis of human lactoferrin
Human lactoferrin is widely used in medical and nutritional fields. However, current production methods, which rely heavily on extraction from bovine or ovine milk, suffer from lon...
Experimental study on the effect of ultrasonic waves on flocculation and sedimentation of cohesive sand
Experimental study on the effect of ultrasonic waves on flocculation and sedimentation of cohesive sand
Abstract Sediment flocculation and sedimentation is a common phenomenon in estuarine coastal areas, and its sedimentation characteristics are one of the key contents of sed...
Flocculation morphology: effect of particulate shape and coagulant species on flocculation
Flocculation morphology: effect of particulate shape and coagulant species on flocculation
Flocculation morphology is a new concept that investigates the morphological characteristics of colloidal particles and coagulants in water during the flocculation process, and the...
Surface Display of Human GM-CSF in Methylotrophic Yeasts
Surface Display of Human GM-CSF in Methylotrophic Yeasts
Human granulocyte-macrophage colony-stimulating factor (GM-CSF) is an important therapeutic cytokine. Methylotrophic yeasts such as Komagataella phaffii and Ogataea parapolymorpha ...

Back to Top