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Phosphorus alleviates age-associated osteoporosis in laying hens by reshaping bone metabolism and modulating cecal
Kai Guan1, Yu Xiao2, Changchun Xu2
1Key Laboratory of Feed Biotechnology of Ministry of Agriculture, Feed Research Institute, Chinese Academy of Agricultural Sciences, Beijing, 100081, China; Department of Animal Science, Shandong Agricultural University, Taian, Shandong, 271018, China.
Abstract:
Osteoporosis in aged laying hens poses a major constraint on long-term egg production system. This study investigated the efficacy and underlying mechanisms of dietary phosphorus (P) in alleviating age-associated osteoporosis. A completely randomized design was employed, with 300 Hy-Line Brown laying hens (58 weeks of age) randomly assigned to one of three dietary treatments: a low-phosphorus diet (LP, 0.12% non-phytate phosphorus [NPP]), a regular-phosphorus diet (RP, 0.32% NPP), or the LP diet supplemented with 10,000 FTU/kg phytase (PHY, 0.12% NPP). Each treatment comprised 10 replicates of 10 hens. Following a 2-week adaptation period, the experiment lasted for 12 weeks. The results showed that dietary P reduction or phytase supplementation had no significant effect (P > 0.05) on egg production performance or egg quality throughout the experimental phase. However, at the end of the trial, hens fed the LP diet exhibited significantly lower serum P concentration and alkaline phosphatase (ALP) activity, along with reduced tibial P and magnesium (Mg) contents (P < 0.05), compared with the RP group. Conversely, serum calcium (Ca) level and tartrate-resistant acid phosphatase (TRACP) activity were significantly elevated in the LP group (P < 0.05). In contrast, phytase supplementation in the PHY group significantly increased serum ALP activity and tibial P and Mg contents relative to the LP group (P < 0.05). Notably, the PHY group also showed higher serum Ca concentration than the RP group (P < 0.05). Histomorphological examination revealed progressive cortical bone thinning accompanied by irregular erosion and increased demineralized areas in the tibiae of LP-fed hens, whereas only mild pathological changes were observed in the PHY group. Analysis of cecal microbiota indicated that dietary P modulation significantly altered microbial community structure: principal coordinate analysis (PCoA) showed distinct clustering for the LP and PHY group at week 8 and week 12, respectively (P < 0.05). Linear discriminant analysis effect size (LEfSe) further revealed that the LP group was enriched with pro-inflammatory taxa and microbes associated with nutrient metabolism stress. The RP group harbored a more complex and diverse microbial community, while the PHY group was characterized by an enrichment of beneficial bacteria involved in short-chain fatty acid (SCFA) production. Spearman correlation analysis demonstrated significant associations between specific bacterial genera and tibial health parameters. Genera such as Phascolarctobacterium, Rikenellaceae_RC9_gut_group, and Bacteroides were positively correlated with tibial mineral content and structural integrity, whereas Lactobacillus, Olsenella, and Prevotellaceae_Ga6A1_group showed negative correlations with these bone traits (P < 0.05). Collectively, these findings indicate that chronic P deficiency induces severe skeletal deterioration and gut microbiota dysbiosis in aged laying hens. Phytase supplementation partially counteracts the adverse effects of low-P diet by improving P utilization and reshaping the cecal microbiota toward a more beneficial composition. Nevertheless, long-term feeding of P-deficient diet even with phytase remains insufficient to fully preserve skeletal health. Therefore, ensuring adequate dietary P supply is essential for alleviating age-associated osteoporosis in aged laying hens, likely through integrated regulation of bone metabolic homeostasis and gut microbial ecology.
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