纳米材料为基础的药物传递系统在克服细菌耐药性方面的研究进展。

IF 3.5 3区 医学 Q3 IMMUNOLOGY Microbial pathogenesis Pub Date : 2025-06-01 Epub Date: 2025-03-07 DOI:10.1016/j.micpath.2025.107455
Mohammad A. Obeid , Hanin Alyamani , Abdelrahman Alenaizat , Tutku Tunç , Alaa A.A. Aljabali , Manal M. Alsaadi
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引用次数: 0

摘要

抗菌素耐药性是当代最严重的全球卫生问题之一,威胁到现有抗生素的有效性,并导致发病率、死亡率和经济负担。本文综述了基于纳米材料的药物传递系统在解决细菌耐药性相关问题方面的贡献,并对其作用机制、效率和未来前景进行了全面概述。由于其独特的物理化学性质,纳米材料揭示了通过与膜的渗透性屏障、外排泵和生物膜形成有关的传统细菌防御机制的新途径。本文综述了不同类型的纳米材料,包括金属纳米颗粒、脂质体和聚合物纳米颗粒,以及它们的抗菌性能和作用方式。更多的重点放在对这些活性系统的最新研究的批判性讨论上。讨论了体外和体内模型,特别关注多重耐药细菌。本审查首先通过引用最近的统计数据来审查抗菌素耐药性(AMR)的紧迫性,这些统计数据表明死亡人数和造成经济损失的原因继续增加。然后介绍了现有抗生素治疗的局限性和开发创新方法的迫切需要。基于纳米材料的药物递送系统被认为是一种很有前途的解决方案,因为它们具有改善药物溶解度、稳定性和靶向递送的潜力,尽管副作用也可以减轻。除了已有的知识外,本综述还涵盖了正在进行的关于与使用纳米材料相关的持续风险的辩论,例如毒性和环境影响。本讨论强调优化纳米材料设计以针对特定细菌,并进行严格的临床试验以确定人体的安全性和有效性。报告最后反思了基于纳米材料的药物输送系统在对抗抗菌素耐药性方面的未来方向,强调了跨学科方法的必要性,以及将这些有前途的技术转化为临床实践的持续研究努力。随着与细菌耐药性的斗争达到顶峰,纳米材料可能是开发下一代抗菌疗法的关键。
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Nanomaterial-based drug delivery systems in overcoming bacterial resistance: Current review
Antimicrobial resistance is one of the most serious contemporary global health concerns, threatening the effectiveness of existing antibiotics and resulting in morbidity, mortality, and economic burdens. This review examines the contribution of nanomaterial-based drug delivery systems to solving the problems associated with bacterial resistance and provides a thorough overview of their mechanisms of action, efficiency, and perspectives for the future. Owing to their unique physicochemical properties, nanomaterials reveal new ways of passing through the traditional mechanisms of bacterial defence connected to the permeability barrier of membranes, efflux pumps, and biofilm formation. This review addresses the different types of nanomaterials, including metallic nanoparticles, liposomes, and polymeric nanoparticles, in terms of their antimicrobial properties and modes of action. More emphasis has been placed on the critical discussion of recent studies on such active systems. Both in vitro and in vivo models are discussed, with particular attention paid to multidrug-resistant bacteria.
This review begins by reviewing the urgency for antimicrobial resistance (AMR) by citing recent statistics, which indicate that the number of deaths and reasons for financial losses continue to increase. A background is then provided on the limitations of existing antibiotic therapies and the pressing need to develop innovative approaches. Nanomaterial-based drug delivery systems have been proposed as promising solutions because of their potential to improve drug solubility, stability, and targeted delivery, although side effects can also be mitigated. In addition to established knowledge, this review also covers ongoing debates on the continuous risks associated with the use of nanomaterials, such as toxicity and environmental impact. This discussion emphasizes the optimization of nanomaterial design to target specific bacteria, and rigorous clinical trials to establish safety and efficacy in humans.
It concludes with reflections on the future directions of nanomaterial-based drug delivery systems in fighting AMR, underlining the need for an interdisciplinary approach, along with continuous research efforts to translate these promising technologies into clinical practice. As the fight against bacterial resistance reaches its peak, nanomaterials may be the key to developing next-generation antimicrobial therapies.
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来源期刊
Microbial pathogenesis
Microbial pathogenesis 医学-免疫学
CiteScore
7.40
自引率
2.60%
发文量
472
审稿时长
56 days
期刊介绍: Microbial Pathogenesis publishes original contributions and reviews about the molecular and cellular mechanisms of infectious diseases. It covers microbiology, host-pathogen interaction and immunology related to infectious agents, including bacteria, fungi, viruses and protozoa. It also accepts papers in the field of clinical microbiology, with the exception of case reports. Research Areas Include: -Pathogenesis -Virulence factors -Host susceptibility or resistance -Immune mechanisms -Identification, cloning and sequencing of relevant genes -Genetic studies -Viruses, prokaryotic organisms and protozoa -Microbiota -Systems biology related to infectious diseases -Targets for vaccine design (pre-clinical studies)
期刊最新文献
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