Optimizing Solid-State Mixed-Strain Fermentation of Forage Mulberry for Improved Nutritional Quality via Anti-Nutritional Factor Degradation
Yanzhen Duan, Na Wen, Daodian Wang, Xingying Yang, Sha Li, Yemei Yang, Wei Yang, Junrong Huang, Wen Yang, Pingping LiTo improve the feeding value of forage mulberry as a non-grain feed, solid-state mixed fermentation with Lactobacillus plantarum and Pichia membranifaciens (1:1) was optimized via single-factor tests and an L9 (34) orthogonal design. The optimal conditions (7 days, 28 °C, 30% inoculum, 1:1.2 solid-to-water ratio) reduced crude fiber (CF) content by 44.60%, and increased crude protein (CP), crude fat (EE), and total amino acids (TAA) by 35.77%, 68.85%, and 40.85%, respectively (p < 0.01). Mechanistically, the organic acids produced by L. plantarum lowered the fermentation pH to 4.0–4.5. This pH change was likely associated with the observed 50.84% increase in yeast cellulase activity. Yeast metabolites appeared to promote the proliferation of lactic acid bacteria (LAB). This implies a potential synergistic interaction between the two strains under acidic conditions. The in vitro ruminal dry matter digestibility (DMD) and CP digestibility reached 72.30% and 78.60%, respectively. These values were significantly higher than those of the unfermented control (p < 0.01). Therefore, this pH-enzyme synergistic fermentation strategy can effectively degrade anti-nutritional components. It also improves the feeding nutritional quality of mulberry forage for animal production.