Aug 2026· Applied Microbiology and Biotechnology· 0 citations
TL;DR
Results show that efficient PGG production in B. subtilis requires coordinated control of secretion, extracellular stability and proenzyme activation, and a standardized modular Golden Gate-based secretion platform in Bacillus subtilis is developed to screen promoter-signal peptide combinations for extracellular production.
Abstract
Protein-glutamine glutaminase (PGG) is a promising enzyme for improving the functionality of plant proteins, but its industrial production is limited by low native yields and the need for proteolytic activation. Here, we developed a standardized modular Golden Gate-based secretion platform in
Bacillus subtilis
to screen promoter-signal peptide combinations for extracellular production of
Chryseobacterium proteolyticum
PGG (
Cp
PGG) within a common construct architecture. Reporter and enzyme-based screening identified Pgrac100-amyQ* as the configuration that consistently supported robust secretion and functional
Cp
PGG production in
B. subtilis
168, where the secreted proenzyme underwent host-mediated maturation. In 3-L batch bioreactor cultivation in rich medium, this construct reached 2.9 U/mL of supernatant (SN), whereas fed-batch cultivation in defined medium revealed extracellular proteolysis as a major limitation under high-cell-density conditions. To decouple secretion from activation, the construct was transferred to the protease-deficient strain KO7-S which enabled stable accumulation of non-processed
Cp
PGG. Subsequent controlled in vitro activation with a food-grade neutral protease yielded 12.8 ± 0.8 U/mL SN. Together, these results show that efficient PGG production in
B. subtilis
requires coordinated control of secretion, extracellular stability and proenzyme activation.
•
Modular screening identified Pgrac100-amyQ* for CpPGG secretion in B. subtilis.
•
Proteolysis limited high-cell-density fed-batch production in B. subtilis 168.
•
In Bs KO7-S, secretion and activation were decoupled yielding 12.8 ± 0.8 U/mL SN.
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