article · Microbial Cell Factories
Abstract Background and aim L-ASNase has attracted attention in many biomedical and food safety applications. Therefore, this study was designed to identify a novel and promising candidate for the sustainable biosynthesis of extracellular L-ASNase from P. ostreatus AUMC 16015 grown on various agricultural substrates under solid-state fermentation (SSF). Also, the enzyme’s wide-ranging bioactivities were examined, involving its antioxidant, anti-inflammatory, and antitumor properties, while evaluating its potential applications in food processing. Results Optimal P. ostreatus AUMC 16015 L-ASNase production was 56.47 U/mL, which was attained under SSF conditions where the enzyme yield increased by 2.46-fold compared to pre-optimization conditions. Enzyme high purity was validated by a single distinct band at approximately 48 kDa on both SDS-PAGE and native PAGE analyses. The enzyme demonstrated high substrate specificity ( K m = 7.7 mM; V max = 167.78 U/mL). Functionally, it exhibited strong antioxidant activity (2,2-diphenyl-1-picrylhydrazyl) (DPPH) IC 50 = 48.28 µg/mL) and a robust anti-hemolytic effect (95.9% at 1000 µg/mL). L-ASNase exhibited its most potent inhibitory effect against Caco-2 cells at an IC 50 of 5.49 ± 0.03 µg/mL, followed by MCF-7, which showed a slightly higher IC 50 of 5.86 ± 0.08 µg/mL. Furthermore, L-ASNase significantly mitigated potato chips acrylamide formation, achieving a 9.6-fold decrease after 120 min of treatment. Additionally, Gas chromatography-mass spectrometry ( GC-MS) showed that the potato’s chemical profile was significantly changed by L-ASNase treatment, with the introduction of numerous bioactive substances and the elimination of some potentially dangerous components. Conclusion The biochemical activity of the purified L-ASNase suggested potential biomedical and food applications. This study is a trial for cost-effective enzyme production and supports a circular bioeconomy by converting waste into useful bioproducts. Future work should focus on scaling up production and testing its effects in living organisms to unlock this enzyme’s full commercial and medical potential. Graphical abstract
This page summarises published work. The authoritative version sits with the publisher.
DOI: 10.1186/s12934-026-03007-9
Is something wrong with this record? Report it or request removal.
Discussion
Have you built on this work, tried to replicate it, or seen it applied in practice? Share what you know. Verified researchers and MARATTO™ domain experts can open a discussion, and any member can reply. Contributions are reviewed before they appear.
No discussion yet. Open the first thread.
New to MARATTO™? Create a free account.