Engineered <i>bacillus subtilis</i> enhances bone regeneration via immunoregulation and anti-Infection.

Fu, Fang-Sheng; Chen, Huan-Huan; Chen, Yu; Yuan, Ying; Zhao, Yong; Yu, Aixi; Zhang, Xian-Zheng · Bioact Mater · 2025

basic_science · Level V

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Abstract

Chronic osteomyelitis caused by implant infections is a common complication following orthopedic surgery. Preventing bacterial infection and simultaneously improving bone regeneration are the key for osteomyelitis. Current treatments include systemic antibiotics and multiple surgical interventions, but the strategies available for treatment are limited. In this study, a multifunctional engineered <i>Bacillus subtilis</i> (<i>B.</i> <i>sub</i>) hydrogel with sulfasalazine (SSZ) is developed to treat methicillin-resistant <i>Staphylococcus aureus</i> (MRSA) infection and anti-inflammatory and promote bone regeneration. <i>B. sub</i> in alginate hydrogels protects <i>B. sub</i> from being cleared by the host immune system while allowing the release of its bioactive substances, including antibacterial peptides and anti-inflammatory agents such as SSZ. The results show that the engineered probiotic hydrogels exhibit excellent antibacterial efficacy against MRSA (97 %) and prevent the development of bacterial resistance. The antibacterial effect is primarily mediated through the secretion of bioactive peptides by <i>B. sub</i>, which not only inhibit MRSA growth but also reduce the likelihood of resistance development. Meanwhile, the probiotic hydrogel has a greater ability to induce M2 polarization of macrophages and promote angiogenesis, resulting in enhanced osteogenic differentiation in bone marrow mesenchymal stem cells (BMSCs) and thus enhancing bone regeneration. This engineered probiotic hydrogel offers a promising strategy by simultaneously combating bacterial infection and enhancing osteogenic differentiation for chronic osteomyelitis.