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A Bioadhesive Nanoparticle-Hydrogel Hybrid System for Localized Antimicrobial Drug Delivery

机译:用于局部抗菌药物递送的生物粘附性纳米颗粒-水凝胶混合系统

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Effective antibacterial treatment at the infection site associated with high shear forces remains challenging, owing largely to the lack of durably adhesive and safe delivery platforms that can enable localized antibiotic accumulation against bacterial colonization. Inspired by delivery systems mimicking marine mussels for adhesion, herein, we developed a bioadhesive nanoparticle-hydrogel hybrid (NP-gel) to enhance localized antimicrobial drug delivery. Antibiotics were loaded into polymeric nanoparticles and then embedded into a 3D hydrogel network that confers adhesion to biological surfaces. The combination of two distinct delivery platforms, namely, nanoparticles and hydrogel, allows the hydrogel network properties to be independently tailored for adhesion while maintaining controlled and prolonged antibiotic release profile from the nanoparticles. The bioadhesive NP-gel developed here showed superior adhesion and antibiotic retention under high shear stress on a bacterial film, a mammalian cell monolayer, and mouse skin tissue. Under a flow environment, the NP-gel inhibited the formation of an Escherichia coli bacterial film. When applied on mouse skin tissue for 7 consecutive days, the NP-gel did not generate any observable skin reaction or toxicity, implying its potential as a safe and effective local delivery platform against microbial infections.
机译:在感染部位与高剪切力相关的有效抗菌治疗仍然具有挑战性,这主要是由于缺乏持久的粘合剂和安全的输送平台,该平台可以使局部的抗生素积累对抗细菌定植。受模仿海洋贻贝的黏附递送系统的启发,在此,我们开发了生物黏附性纳米颗粒-水凝胶混合体(NP-gel)以增强局部抗菌药物的递送。将抗生素加载到聚合物纳米颗粒中,然后嵌入到3D水凝胶网络中,该网络赋予生物表面附着力。两种不同的递送平台,即纳米颗粒和水凝胶的结合,使水凝胶网络的性能可以独立调整以适应粘连,同时保持从纳米颗粒控制和延长抗生素释放的特性。此处开发的生物粘附性NP-凝胶在高剪切应力下在细菌膜,哺乳动物细胞单层和小鼠皮肤组织上显示出优异的粘附性和抗生素保留能力。在流动环境下,NP-凝胶会抑制大肠杆菌细菌膜的形成。当连续7天在小鼠皮肤组织上施用时,NP-凝胶不会产生任何可观察到的皮肤反应或毒性,这表明其作为安全有效的局部递送平台抵抗微生物感染的潜力。

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