Triblock copolymer micelles enhance solubility, permeability and activity of a quorum sensing inhibitor against Pseudomonas aeruginosa biofilms†

Karolina Kasza, Fadi Soukarieh, Manuel Romero, Kim R. Hardie, Pratik Gurnani, Miguel Cámara and Cameron Alexander
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Abstract

Antimicrobial resistance is a threat to public health for which new treatments are urgently required. The capability of bacteria to form biofilms is of particular concern as it enables high bacterial tolerance to conventional therapies by reducing drug diffusion through the dense, exopolymeric biofilm matrix and the upregulation of antimicrobial resistance machinery. Quorum sensing (QS), a process where bacteria use diffusible chemical signals to coordinate group behaviour, has been shown to be closely interconnected with biofilm formation and bacterial virulence in many top priority pathogens including Pseudomonas aeruginosa. Inhibition of QS pathways therefore pose an attractive target for new therapeutics. We have recently reported a new series of pqs quorum sensing inhibitors (QSIs) that serve as potentiators for antibiotics in P. aeruginosa infections. The impact on biofilms of some reported QSIs was however hindered by their poor penetration through the bacterial biofilm, limiting the potential for clinical translation. In this study we developed a series of poly(β-amino ester) (PBAE) triblock copolymers and evaluated their ability to form micelles, encapsulate a QSI and enhance subsequent delivery to P. aeruginosa biofilms. We observed that the QSI could be released from polymer micelles, perturbing the pqs pathway in planktonic P. aeruginosa. In addition, one of the prepared polymer variants increased the QSIs efficacy, leading to an enhanced potentiation of ciprofloxacin (CIP) action and therefore improved reduction in biofilm viability, compared to the non-encapsulated QSI. Thus, we demonstrate QSI encapsulation in polymeric particles can enhance its efficacy through improved biofilm penetration.

Abstract Image

三嵌段共聚物胶束提高了一种法定量感应抑制剂的可溶性、渗透性和对铜绿假单胞菌生物膜的活性†。
抗菌药耐药性是对公共卫生的威胁,迫切需要新的治疗方法。细菌形成生物膜的能力尤其令人担忧,因为它通过减少药物在致密的外聚合生物膜基质中的扩散和抗菌药耐药性机制的上调,使细菌对传统疗法具有高度耐受性。法定量感应(QS)是细菌利用可扩散的化学信号来协调群体行为的过程,已被证明与包括铜绿假单胞菌在内的许多首要病原体的生物膜形成和细菌毒力密切相关。因此,抑制 QS 通路是一种有吸引力的新疗法靶点。我们最近报道了一系列新的 pqs 法定量感应抑制剂(QSIs),它们在铜绿假单胞菌感染中可作为抗生素的增效剂。然而,一些已报道的 QSIs 对生物膜的影响因其穿透细菌生物膜的能力差而受到阻碍,限制了临床转化的潜力。在这项研究中,我们开发了一系列聚(β-氨基酯)(PBAE)三嵌段共聚物,并评估了它们形成胶束、包裹 QSI 并增强随后向铜绿假单胞菌生物膜输送的能力。我们观察到,QSI 可以从聚合物胶束中释放出来,扰乱浮游铜绿微囊藻的 pqs 通路。此外,与未封装的 QSI 相比,所制备的聚合物变体之一提高了 QSI 的药效,从而增强了环丙沙星(CIP)的作用,并因此改善了生物膜活力的降低。因此,我们证明将 QSI 包封在聚合物颗粒中可通过改善生物膜穿透性来提高其药效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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