PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
December 11, 2025Frontiers in Microbiology3 citationsOpen Access

Cellulase over lactic acid bacteria in enhancing antioxidant capacity of mulberry silage via phenolic release

View Full Paper
YGYaya GuoHPHongmei PengHWHailiang Wang

Key Points

  • The central aim was to evaluate the effects of cellulase and lactic acid bacteria on the fermentation quality and antioxidant capacity of mulberry silage.
  • Conducted experiments with four treatments: untreated control, LAB addition, cellulase addition, and their combination.
  • Used metabolomics and 16S rRNA sequencing to analyze changes in bacterial diversity and antioxidant profiles.
  • Measured fermentation quality through pH, ammonia nitrogen, and metabolites like lactic acid and WSC.
  • Cellulase significantly reduced pH and ammonia nitrogen content, improving lactic acid and WSC levels.
  • Antioxidant assays showed increased DPPH and ABTS scavenging activities in treated groups.
  • Metabolomics analysis revealed changes in phenolic profiles, enhancing compounds like Camelliaside B and Quercetin 3-O-xylosyl-rutinoside.

Abstract

Mulberry (Morus alba L. ) is an economically valuable tree rich in phenolics, but its silage quality is limited by low epiphytic lactic acid bacteria (LAB) and water-soluble carbohydrate (WSC) content. This study evaluated the effects of adding epiphytic LAB and cellulase on the fermentation quality, bacterial community, metabolite composition, and antioxidant capacity of mulberry silage. A strain of Lactiplantibacillus plantarum LP26, with rapid acid production and high acid tolerance, was isolated and used as an inoculant. Four treatments were applied: untreated control (CK), LAB addition (LAB), cellulase addition (C), and their combination (CLAB). The results showed that, compared with the CK group, the C and CLAB groups significantly reduced pH and ammonia nitrogen content, increased lactic acid and WSC, and inhibited yeast and coliforms. They also decreased neutral detergent fiber (NDF), hemicellulose, and cellulose contents. Antioxidant assays showed notably higher DPPH and ABTS radical scavenging activities in the C and CLAB groups. 16S rRNA sequencing revealed reduced bacterial diversity and increased Lactobacillus abundance (96. 51%) and decrease Enterobacter abundance (5. 12%) in CLAB. Metabolomics analysis indicated that both C and CLAB markedly altered phenylpropanoid and polyketide profiles, upregulating antioxidants like Camelliaside B and Quercetin 3-O-xylosyl-rutinoside, and enriching pathways such as flavonoid biosynthesis. In conclusion, cellulase enhanced antioxidant capacity by degrading fiber to release phenolics and improve fermentable substrates, while LAB alone had minimal effects. Although combining LAB and cellulase synergistically improved the microbial community, it did not provide additive benefits in phenolic conversion or antioxidant enhancement.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Guo et al. (2025) studied this question.

synapsesocial.com/papers/6940192a2d562116f28f6c52https://doi.org/10.3389/fmicb.2025.1725406
Ask AI
Helpful
Bookmark
Share
View Full Paper