Biofilm Resilience: Molecular Mechanisms Driving Antibiotic Resistance in Clinical Contexts.

IF 3.5 3区 生物学 Q1 BIOLOGY Biology-Basel Pub Date : 2025-02-06 DOI:10.3390/biology14020165
Ahmad Almatroudi
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Abstract

Healthcare-associated infections pose a significant global health challenge, negatively impacting patient outcomes and burdening healthcare systems. A major contributing factor to healthcare-associated infections is the formation of biofilms, structured microbial communities encased in a self-produced extracellular polymeric substance matrix. Biofilms are critical in disease etiology and antibiotic resistance, complicating treatment and infection control efforts. Their inherent resistance mechanisms enable them to withstand antibiotic therapies, leading to recurrent infections and increased morbidity. This review explores the development of biofilms and their dual roles in health and disease. It highlights the structural and protective functions of the EPS matrix, which shields microbial populations from immune responses and antimicrobial agents. Key molecular mechanisms of biofilm resistance, including restricted antibiotic penetration, persister cell dormancy, and genetic adaptations, are identified as significant barriers to effective management. Biofilms are implicated in various clinical contexts, including chronic wounds, medical device-associated infections, oral health complications, and surgical site infections. Their prevalence in hospital environments exacerbates infection control challenges and underscores the urgent need for innovative preventive and therapeutic strategies. This review evaluates cutting-edge approaches such as DNase-mediated biofilm disruption, RNAIII-inhibiting peptides, DNABII proteins, bacteriophage therapies, antimicrobial peptides, nanoparticle-based solutions, antimicrobial coatings, and antimicrobial lock therapies. It also examines critical challenges associated with biofilm-related healthcare-associated infections, including diagnostic difficulties, disinfectant resistance, and economic implications. This review emphasizes the need for a multidisciplinary approach and underscores the importance of understanding biofilm dynamics, their role in disease pathogenesis, and the advancements in therapeutic strategies to combat biofilm-associated infections effectively in clinical settings. These insights aim to enhance treatment outcomes and reduce the burden of biofilm-related diseases.

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生物膜弹性:在临床环境中驱动抗生素耐药性的分子机制。
医疗保健相关感染构成了重大的全球健康挑战,对患者的预后产生负面影响,并给医疗保健系统带来负担。造成卫生保健相关感染的一个主要因素是生物膜的形成,即包裹在自产的细胞外聚合物质基质中的结构化微生物群落。生物膜在疾病病因学和抗生素耐药性、复杂化治疗和感染控制工作中至关重要。它们固有的耐药机制使它们能够承受抗生素治疗,从而导致复发性感染和发病率增加。本文综述了生物膜的发展及其在健康和疾病中的双重作用。它强调了EPS基质的结构和保护功能,它保护微生物群体免受免疫反应和抗菌剂的侵害。生物膜耐药的关键分子机制,包括限制抗生素渗透、持续细胞休眠和遗传适应,被认为是有效管理的重大障碍。生物膜涉及各种临床环境,包括慢性伤口、医疗器械相关感染、口腔健康并发症和手术部位感染。它们在医院环境中的流行加剧了感染控制方面的挑战,并强调迫切需要创新的预防和治疗战略。本文综述了dna酶介导的生物膜破坏、rnaiii抑制肽、dna ii蛋白、噬菌体疗法、抗菌肽、纳米颗粒溶液、抗菌涂层和抗菌锁疗法等前沿方法。它还研究了与生物膜相关的医疗保健相关感染相关的关键挑战,包括诊断困难、消毒剂耐药性和经济影响。这篇综述强调了多学科方法的必要性,强调了理解生物膜动力学的重要性,它们在疾病发病机制中的作用,以及在临床环境中有效对抗生物膜相关感染的治疗策略的进展。这些见解旨在提高治疗效果并减轻生物膜相关疾病的负担。
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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来源期刊
Biology-Basel
Biology-Basel Biological Science-Biological Science
CiteScore
5.70
自引率
4.80%
发文量
1618
审稿时长
11 weeks
期刊介绍: Biology (ISSN 2079-7737) is an international, peer-reviewed, quick-refereeing open access journal of Biological Science published by MDPI online. It publishes reviews, research papers and communications in all areas of biology and at the interface of related disciplines. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material.
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