伤口愈合
生物膜
慢性伤口
医学
生物
外科
细菌
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 V. Jones,Peter G. Parsons,Paul Reddell,David W. Thomas
出处
期刊:Science Translational Medicine
[American Association for the Advancement of Science (AAAS)]
日期:2022-09-14
卷期号:14 (662)
被引量:17
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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