Ramírez-Rodríguez Gloria B, Sabio Laura, Cerezo-Collado Laura, Garcés Víctor, Domínguez-Vera Jose M, Delgado-López José M
Departamento de Química Inorgánica, Facultad de Ciencias, Universidad de Granada, Av. de Fuente Nueva, s/n, Granada, 18071, Spain.
Centre for the Cellular Microenvironment, James Watt School of Engineering, University of Glasgow, Glasgow, G12 8QQ, UK.
Adv Healthc Mater. 2025 May;14(12):e2402793. doi: 10.1002/adhm.202402793. Epub 2024 Dec 8.
Mineralization of living cells represents an evolutionary adaptation that enhances cellular resilience to physicochemical stress. Inspired by this strategy, we have here developed hybrid living materials (HLMs), incorporating probiotics into mineralized collagen 3D matrices, with the aim of protecting and promoting the successful oral delivery of the bacteria. Collagen fibrils are simultaneously self-assembled and mineralized in the presence of the probiotics (Lactobacillus acidophilus, La, was used as model), resulting in the integration of the probiotics into the hybrid matrix (i.e., bulk encapsulation). During this process, probiotics are also coated with a nanofilm of apatite mineral (single-cell encapsulation), which provides them with extra protection and reinforces their viability and activity. In fact, the resulting HLM is metabolically active, and maintain the capacity to ferment milk into yogurt with antibacterial activity against the two major foodborne pathogens Pseudomonas aeruginosa (Pa) and Staphylococcus aureus (Sa). Interestingly, the HLM provides probiotics an additional protection in the gastrointestinal environment (i.e., simulated gastric fluid), which is of special interest for healthcare materials for oral administration. The results pave the way for the creation of innovative healthcare materials with enhanced functionalities and the potential to produce probiotic foods with notable antimicrobial properties.
活细胞矿化是一种进化适应,可增强细胞对物理化学应激的恢复力。受此策略启发,我们在此开发了混合活性材料(HLM),即将益生菌融入矿化胶原蛋白3D基质中,旨在保护并促进细菌成功实现口服递送。在益生菌(以嗜酸乳杆菌,即La作为模型)存在的情况下,胶原纤维同时进行自组装和矿化,从而使益生菌整合到混合基质中(即整体包封)。在此过程中,益生菌还被一层磷灰石矿物纳米膜包裹(单细胞包封),这为它们提供了额外保护,并增强了它们的活力和活性。事实上,所得的HLM具有代谢活性,并且保持了将牛奶发酵成酸奶的能力,同时对两种主要食源性病原体铜绿假单胞菌(Pa)和金黄色葡萄球菌(Sa)具有抗菌活性。有趣的是,HLM在胃肠道环境(即模拟胃液)中为益生菌提供了额外保护,这对于口服给药的医疗材料来说具有特殊意义。这些结果为创造具有增强功能的创新医疗材料以及生产具有显著抗菌特性的益生菌食品铺平了道路。