Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Pharmaceutical Engineering and Life Science , Changzhou University , Changzhou 213164 , China.
Key Laboratory of Tumor Molecular Diagnosis and Individualized Medicine of Zhejiang Province , Zhejiang Provincial People's Hospital (People's Hospital of Hangzhou Medical College) , Hangzhou 310014 , China.
ACS Nano. 2019 Oct 22;13(10):11686-11697. doi: 10.1021/acsnano.9b05608. Epub 2019 Sep 10.
Biofilm infections can induce chronic inflammation and stall the normal orchestrated course of wound-healing cascades. Herein, pH-switchable antimicrobial hydrogel with nanofiber networks for biofilm eradication and rescuing stalled healing in chronic wounds is reported on the basis of the self-assembly of a designed octapeptide (IKFQFHFD) at neutral pH. This hydrogel is biocompatible and exhibits an acidic pH (pathological environment of infected chronic wounds)-switchable broad-spectrum antimicrobial effect via a mechanism involving cell wall and membrane disruption. The antimicrobial activity of hydrogel is derived from its acidic pH-dependent nanofiber network destabilization and activated release of IKFQFHFD, which is antimicrobial only at acidic pH due to the antimicrobial peptide-like molecular structure. In addition, supramolecular nanofiber networks loaded with drugs of cypate (photothermal agent) and proline (procollagen component) are further developed. experiments show that loaded drugs exhibit acidic pH (pH ∼ 5.5)-responsive release profiles, and synergistic biofilm eradication and subsequent healing cascade activation of cells proliferation are achieved on the basis of the supramolecular nanofiber networks. Remarkably, the nanofiber networks of hydrogel enable complete healing of MRSA biofilm infected wound in diabetic mice within 20 days, showing great potential as promising chronic wound dressings. The proposed synergistic strategy for eradicating biofilm and activating subsequent healing cascades may offer a powerful modality for the management of clinical chronic wounds.
生物膜感染会引发慢性炎症,并阻碍伤口愈合级联反应的正常进行。在此基础上,基于设计的八肽(IKFQFHFD)在中性 pH 值下的自组装,报道了一种具有纳米纤维网络的 pH 可切换抗菌水凝胶,用于消除生物膜并拯救慢性伤口中停滞的愈合。该水凝胶具有生物相容性,并表现出酸性 pH(感染性慢性伤口的病理环境)切换的广谱抗菌作用,其机制涉及细胞壁和膜的破坏。水凝胶的抗菌活性源自其酸性 pH 依赖性纳米纤维网络的不稳定性和 IKFQFHFD 的激活释放,由于具有类似抗菌肽的分子结构,IKFQFHFD 仅在酸性 pH 值下才具有抗菌活性。此外,还进一步开发了载有药物色氨酸(光热剂)和脯氨酸(原胶原蛋白成分)的超分子纳米纤维网络。实验表明,负载药物表现出酸性 pH(pH ∼ 5.5)响应的释放曲线,并且基于超分子纳米纤维网络实现了协同的生物膜清除和随后的细胞增殖级联激活。值得注意的是,水凝胶的纳米纤维网络能够在 20 天内完全治愈糖尿病小鼠的耐甲氧西林金黄色葡萄球菌生物膜感染伤口,显示出作为有前途的慢性伤口敷料的巨大潜力。这种协同策略用于消除生物膜并激活随后的愈合级联反应,可能为临床慢性伤口的管理提供一种强大的方法。