趋化因子
伤口愈合
生物膜
先天免疫系统
体内
免疫学
促炎细胞因子
角质形成细胞
细胞因子
免疫系统
医学
抗菌肽
微生物学
抗菌剂
抗生素
炎症
生物
体外
细菌
生物技术
生物化学
遗传学
作者
Lydia C. Powell,Jason K. Cullen,Glen M. Boyle,Thomas De Ridder,Pei-Yi Yap,Wenya Xue,Carly J. Pierce,M. Pritchard,Georgina Menzies,Muthanna Abdulkarim,Jennifer Y. M. Adams,Joana Stokniene,Lewis W. Francis,Mark Gumbleton,Jenny Johns,Katja E. Hill,Adam Jones,Peter G. Parsons,Paul Reddell,David W. Thomas
标识
DOI:10.1126/scitranslmed.abn3758
摘要
The management of antibiotic-resistant, bacterial biofilm infections in chronic skin wounds is an increasing clinical challenge. Despite advances in diagnosis, many patients do not derive benefit from current anti-infective/antibiotic therapies. Here, we report a novel class of naturally occurring and semisynthetic epoxy-tiglianes, derived from the Queensland blushwood tree ( Fontainea picrosperma) , and demonstrate their antimicrobial activity (modifying bacterial growth and inducing biofilm disruption), with structure/activity relationships established against important human pathogens. In vitro, the lead candidate EBC-1013 stimulated protein kinase C (PKC)–dependent neutrophil reactive oxygen species (ROS) induction and NETosis and increased expression of wound healing–associated cytokines, chemokines, and antimicrobial peptides in keratinocytes and fibroblasts. In vivo, topical EBC-1013 induced rapid resolution of infection with increased matrix remodeling in acute thermal injuries in calves. In chronically infected diabetic mouse wounds, treatment induced cytokine/chemokine production, inflammatory cell recruitment, and complete healing (in six of seven wounds) with ordered keratinocyte differentiation. These results highlight a nonantibiotic approach involving contrasting, orthogonal mechanisms of action combining targeted biofilm disruption and innate immune induction in the treatment of chronic wounds.
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