多功能超小AgNP水凝胶加速金黄色葡萄球菌感染伤口愈合

H. Haidari, R. Bright, X. Strudwick, S. Garg, K. Vasilev, A. Cowin, Z. Kopecki
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引用次数: 49

摘要

抗生素耐药性的日益出现,加上目前治疗方法的有效性有限,突出表明需要开发新的治疗方式。银纳米颗粒(AgNPs)是一种具有广谱抗菌活性的有前途的替代品。然而,AgNPs的临床翻译一直受到阻碍,主要是由于银离子(Ag+)的不安全水平的递送导致细胞毒性和它们的易感性聚集导致疗效丧失。在这里,我们描述了一个安全有效的,热响应AgNP水凝胶,提供抗菌作用,并结合伤口促进特性。使用小鼠伤口感染模型,我们证明与工业标准磺胺嘧啶银(302µg银)相比,将AgNP水凝胶应用于伤口(12µg银)不仅具有优越的杀菌活性,而且还减少炎症导致伤口加速愈合。与空白水凝胶或Ag SD(分别为74%和91%)相比,AgNP水凝胶处理显著加速了感染后第4天的伤口愈合(56%的愈合),与空白水凝胶相比,pcna阳性增殖细胞同时增加,伤口再上皮化显著提高32%。AgNP水凝胶治疗感染创面可减少中性粒细胞浸润,增加抗炎的m-1阳性M2巨噬细胞,减少caspase-1阳性凋亡细胞的数量。因此,这种新型多功能AgNP热反应水凝胶在低浓度下治疗伤口感染是一种安全有效的治疗方法。意义声明:在这项研究中,我们描述了一种多功能热响应水凝胶的发展,这种水凝胶由超小银纳米颗粒(AgNPs)组成,用于控制和优化银向感染伤口的输送。与商业抗菌制剂相比,开发的水凝胶的体内生物学效应显示,感染小鼠伤口中的金黄色葡萄球菌被显著消除。开发的AgNP水凝胶通过增加细胞增殖和伤口再上皮化来调节炎症反应,促进伤口愈合。此外,AgNP水凝胶在调节中性粒细胞浸润、增加抗炎M2巨噬细胞水平和减少凋亡细胞数量方面显示出显著的潜力。因此,开发的AgNP热反应水凝胶的多功能特性在控制细菌感染和促进伤口愈合方面具有很大的临床潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multifunctional Ultrasmall AgNP Hydrogel Accelerates Healing of S. Aureus Infected Wounds
The increasing emergence of antibiotic resistance coupled with the limited effectiveness of current treatments highlights the need for the development of new treatment modalities. Silver nanoparticles (AgNPs) are a promising alternative with broad-spectrum antibacterial activity. However, the clinical translation of AgNPs have been hampered primarily due to the delivery of unsafe levels of silver ions (Ag+) resulting in cellular toxicity and their susceptibility to aggregation resulting in loss of efficacy. Here, we describe a safe and effective, thermo-responsive AgNP hydrogel that provides antibacterial effects in conjunction with wound promoting properties. Using a murine model of wound infection, we demonstrate that the applied AgNP hydrogel to the wound (12 µg silver) not only provides superior bactericidal activity but also reduces inflammation leading to accelerated wound closure when compared to industry-standard silver sulfadiazine (302 µg silver). The AgNP hydrogel-treatment significantly accelerated wound closure at day 4 post-infection (56 closure) compared to both blank hydrogel or Ag SD (74% and 91% closure respectively) with a concurrent increase in PCNA-positive proliferating cells corresponding with a significant 32% improvement in wound re-epithelization compared to the blank hydrogel. Treatment of infected wounds with AgNP hydrogel also decreased neutrophil infiltration, increased anti-inflammatory Ym-1 positive M2 macrophages, and reduced the number of caspase-1 positive apoptotic cells. Therefore, this novel multifunctional AgNP thermo-responsive hydrogel is potentially a safe and effective treatment at much lower concentration for the treatment of wound infections. Statement of Significance: In this study, we describe the development of a multifunctional thermo-responsive hydrogel of ultrasmall silver nanoparticles (AgNPs) for controlled and optimized delivery of silver to infected wounds. The in vivo biological effects of the developed hydrogel showed significant S. aureus elimination from infected mouse wounds compared to a commercial antibacterial formulation. The developed AgNP hydrogel optimally regulates inflammatory responses to promote wound healing as indicated by increased cell proliferation and wound re-epithelization. Additionally, AgNP hydrogel shows significant potential in regulating neutrophil infiltration while increasing levels of anti-inflammatory M2 macrophages and reduces the number of apoptotic cells. Therefore, the multifunctional properties of the developed AgNP thermo-responsive hydrogel offers great clinical potential to control bacterial infections and promote wound healing.
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