Microtopographic influence on bacterial biofilm development in habitat-like environments

IF 4.5 3区 医学 Q1 PHARMACOLOGY & PHARMACY Journal of Drug Delivery Science and Technology Pub Date : 2024-10-19 DOI:10.1016/j.jddst.2024.106311
Krishna Yadav , Kantrol Kumar Sahu , Sucheta , Sunita Minz , Wasim Raza , Madhulika Pradhan
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Abstract

The interaction between bacteria and implanted medical device surfaces presents a significant challenge in healthcare. This interaction often leads to biofilm formation, resulting in prolonged bacterial exposure and operational complications. Consequently, the risk of developing multidrug-resistant infections increases, posing a serious threat to patient health and treatment efficacy. Effective prevention of biofilm development requires a comprehensive understanding of the physicochemical properties of biomaterials. Recent advancements in the study of natural antifouling mechanisms have provided valuable insights for developing materials resistant to bacterial colonization. These discoveries offer promising directions for creating more effective antifouling surfaces. However, the existing surface topographies of medical devices, originally designed for optimal tissue integration, may unintentionally facilitate microbial adhesion. This review highlights the crucial need to evaluate the biocompatibility of medical device surfaces, emphasizing the impact of their specific topographical features on bacterial adhesion and biofilm development. We emphasize that surface topography can either promote or inhibit bacterial colonization, depending on specific features such as roughness, pattern, and scale. Understanding these topography-dependent effects is crucial for designing surfaces that minimize bacterial adhesion while maintaining optimal functionality and biocompatibility for the intended medical application. Our analysis reveals significant findings regarding the complex relationship between bacteria and three-dimensional surface properties. This knowledge provides a foundation for further advancements in the development of efficient antifouling materials. By understanding the nuances of bacterial-surface interactions, researchers can design more effective strategies to prevent biofilm formation. Through an extensive examination of preclinical studies, this research not only elucidates the mechanisms of bacterial adhesion but also paves the way for innovative solutions.

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微地形对类生境环境中细菌生物膜发展的影响
细菌与植入式医疗器械表面之间的相互作用给医疗保健带来了巨大挑战。这种相互作用往往会形成生物膜,导致细菌长期暴露和操作并发症。因此,产生耐多药感染的风险增加,对患者健康和治疗效果构成严重威胁。要有效防止生物膜的形成,就必须全面了解生物材料的物理化学特性。最近在天然防污机制研究方面取得的进展为开发抗细菌定植的材料提供了宝贵的见解。这些发现为创造更有效的防污表面提供了前景广阔的方向。然而,医疗设备的现有表面拓扑结构原本是为实现最佳组织整合而设计的,但可能会无意中促进微生物的粘附。这篇综述强调了评估医疗设备表面生物相容性的关键需求,强调了其特定的地形特征对细菌粘附和生物膜发展的影响。我们强调,表面形貌可以促进或抑制细菌定植,这取决于粗糙度、图案和尺度等具体特征。要设计出既能最大限度减少细菌粘附又能保持最佳功能性和生物相容性的表面,以满足预期的医疗应用需求,了解这些取决于表面形貌的效应至关重要。我们的分析揭示了细菌与三维表面特性之间复杂关系的重要发现。这些知识为进一步推动高效防污材料的开发奠定了基础。通过了解细菌与表面相互作用的细微差别,研究人员可以设计出更有效的策略来防止生物膜的形成。通过对临床前研究的广泛考察,这项研究不仅阐明了细菌粘附的机理,还为创新解决方案铺平了道路。
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来源期刊
CiteScore
8.00
自引率
8.00%
发文量
879
审稿时长
94 days
期刊介绍: The Journal of Drug Delivery Science and Technology is an international journal devoted to drug delivery and pharmaceutical technology. The journal covers all innovative aspects of all pharmaceutical dosage forms and the most advanced research on controlled release, bioavailability and drug absorption, nanomedicines, gene delivery, tissue engineering, etc. Hot topics, related to manufacturing processes and quality control, are also welcomed.
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