Liu Shu, Yuan Jiabin, Nie Maodan, Lin Xumiao, Li Xiongfei, Luo Kai, Huo Shicheng, Bai Yushu, Mao Ningfang
Department of Spine Surgery, Changhai Hospital, Navy Military Medical University, 168 Changhai Road, Shanghai, 200433, China.
School of Biomedical Engineering, Shanghai Jiao Tong University, No. 1954 Huashan Road, Xuhui District, Shanghai, 200030, China.
J Nanobiotechnology. 2025 May 6;23(1):333. doi: 10.1186/s12951-025-03393-z.
The microenvironment and healing process of diabetic wounds are highly complex, necessitating the development of wound dressings that combine excellent biocompatibility, superior antibacterial properties, and immune-regulating capabilities. However, achieving this goal remains a significant challenge. In this study, a multifunctional electrospun dressing (polylactic acid@Ga, PLLA@Ga) was designed and fabricated by integrating sonodynamic therapy with gallium-doped mesoporous bioactive glass (Ga-MBG). Compared to pure PLLA materials, PLLA@Ga exhibited remarkable antibacterial effects in vitro and demonstrated effective anti-infection properties in vivo. These effects are primarily attributed to the release of Ga ions, which competitively replace iron, thereby disrupting iron-dependent bacterial enzymes and ultimately leading to bacterial death. Additionally, in vitro experiments showed that PLLA@Ga could promote macrophage polarization from the M1 to M2 phenotype, effectively modulating the immune microenvironment of diabetic infected wounds. In vivo wound healing experiments further revealed that PLLA@Ga significantly enhanced collagen deposition and angiogenesis, accelerating the healing process of infected diabetic wounds. Thus, the multifunctional electrospun dressing developed in this study holds great potential as a promising candidate for the treatment of diabetic wounds.
糖尿病伤口的微环境和愈合过程极其复杂,因此需要开发兼具优异生物相容性、卓越抗菌性能和免疫调节能力的伤口敷料。然而,实现这一目标仍然是一项重大挑战。在本研究中,通过将声动力疗法与镓掺杂介孔生物活性玻璃(Ga-MBG)相结合,设计并制备了一种多功能电纺敷料(聚乳酸@镓,PLLA@Ga)。与纯PLLA材料相比,PLLA@Ga在体外表现出显著的抗菌效果,在体内也显示出有效的抗感染特性。这些效果主要归因于Ga离子的释放,Ga离子竞争性取代铁,从而破坏铁依赖性细菌酶,最终导致细菌死亡。此外,体外实验表明,PLLA@Ga可以促进巨噬细胞从M1表型向M2表型极化,有效调节糖尿病感染伤口的免疫微环境。体内伤口愈合实验进一步表明,PLLA@Ga显著增强了胶原蛋白沉积和血管生成,加速了感染性糖尿病伤口的愈合过程。因此,本研究开发的多功能电纺敷料作为治疗糖尿病伤口的有前景的候选材料具有巨大潜力。