Particle-Mediated Histotripsy for the Targeted Treatment of Intraluminal Biofilms in Catheter-Based Medical Devices.

IF 5 Q1 ENGINEERING, BIOMEDICAL BME frontiers Pub Date : 2022-07-05 eCollection Date: 2022-01-01 DOI:10.34133/2022/9826279
Christopher Childers, Connor Edsall, Isabelle Mehochko, Waleed Mustafa, Yasemin Yuksel Durmaz, Alexander L Klibanov, Jayasimha Rao, Eli Vlaisavljevich
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引用次数: 2

Abstract

Objective. This paper is an initial work towards developing particle-mediated histotripsy (PMH) as a novel method of treating catheter-based medical device (CBMD) intraluminal biofilms. Impact Statement. CBMDs commonly become infected with bacterial biofilms leading to medical device failure, infection, and adverse patient outcomes. Introduction. Histotripsy is a noninvasive focused ultrasound ablation method that was recently proposed as a novel method to remove intraluminal biofilms. Here, we explore the potential of combining histotripsy with acoustically active particles to develop a PMH approach that can noninvasively remove biofilms without the need for high acoustic pressures or real-time image guidance for targeting. Methods. Histotripsy cavitation thresholds in catheters containing either gas-filled microbubbles (MBs) or fluid-filled nanocones (NCs) were determined. The ability of these particles to sustain cavitation over multiple ultrasound pulses was tested after a series of histotripsy exposures. Next, the ability of PMH to generate selective intraluminal cavitation without generating extraluminal cavitation was tested. Finally, the biofilm ablation and bactericidal capabilities of PMH were tested using both MBs and NCs. Results. PMH significantly reduced the histotripsy cavitation threshold, allowing for selective luminal cavitation for both MBs and NCs. Results further showed PMH successfully removed intraluminal biofilms in Tygon catheters. Finally, results from bactericidal experiments showed minimal reduction in bacteria viability. Conclusion. The results of this study demonstrate the potential for PMH to provide a new modality for removing bacterial biofilms from CBMDs and suggest that additional work is warranted to develop histotripsy and PMH for treatment of CBMD intraluminal biofilms.

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基于导管的医疗器械中靶向治疗管腔内生物膜的粒子介导的组织切片术。
客观的本文是开发颗粒介导的组织Tripsy(PMH)作为一种治疗基于导管的医疗器械(CBMD)管腔内生物膜的新方法的初步工作。影响声明。CBMD通常会感染细菌生物膜,导致医疗设备故障、感染和不良患者后果。介绍组织切片术是一种非侵入性聚焦超声消融方法,最近被提出作为一种去除管腔内生物膜的新方法。在这里,我们探索了将组织学与声学活性颗粒相结合的潜力,以开发一种PMH方法,该方法可以无创地去除生物膜,而无需高声压或实时图像引导进行靶向。方法。测定了含有气体填充微泡(MB)或流体填充纳米锥(NC)的导管中的组织学空化阈值。在一系列组织学暴露后,测试了这些颗粒在多个超声脉冲上维持空化的能力。接下来,测试PMH在不产生腔外空化的情况下产生选择性腔内空化的能力。最后,使用MBs和NCs测试了PMH的生物膜消融和杀菌能力。后果PMH显著降低了组织学空化阈值,允许对MB和NC进行选择性管腔空化。结果进一步表明PMH成功地去除了Tygon导管中的管腔内生物膜。最后,杀菌实验的结果显示,细菌活力的降低幅度很小。结论这项研究的结果表明,PMH有可能为去除CBMD中的细菌生物膜提供一种新的模式,并表明需要进行更多的工作来开发组织学和PMH来治疗CBMD管腔内生物膜。
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CiteScore
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0.00%
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审稿时长
16 weeks
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