基于分子通讯的群体感应干扰增强免疫防御。

IF 4.4 4区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Shees Zulfiqar, Ozgur B Akan
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引用次数: 0

摘要

分子通信(MC)利用化学分子传递信息,为药物干预和增强免疫系统监测引入创新策略。本文探讨了基于分子通信的方法来破坏群体感应(QS)途径,以加强对抗微生物耐药细菌的免疫防御。群体感应使细菌能够通过交换被称为自诱导剂的化学信号来协调关键行为,包括毒性和抗生素耐药性。通过干扰这种细菌交流,我们可以破坏促进感染和抵抗的活动的同步。其中一个重点是对RNAIII抑制剂(RIP)的讨论,RIP在辅助基因调控(AGR)系统中阻断RNAII和RNAIII的合成,是决定金黄色葡萄球菌毒素产生和免疫逃避的重要转录本。这种干扰实际上削弱了细菌对免疫反应的防御机制,从而促进了宿主识别和杀死病原体的能力。此外,RIP等QS抑制剂可与已建立的抗菌素联合使用,以协同降低后者的必要剂量,以减轻耐药选择压力。总的来说,这种基于mc的方法不仅专注于在通信水平上照顾细菌的毒力,而且还允许创造一个促进更有效和更强的免疫反应的环境,这似乎是管理耐药细菌感染的一个非常令人鼓舞的趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular Communication-Based Quorum Sensing Disruption for Enhanced Immune Defense.

Molecular Communication (MC) utilizes chemical molecules to transmit information, introducing innovative strategies for pharmaceutical interventions and enhanced immune system monitoring. This paper explores Molecular communication-based approach to disrupt Quorum Sensing (QS) pathways to bolster immune defenses against antimicrobial-resistant bacteria. Quorum Sensing enables bacteria to coordinate critical behaviors, including virulence and antibiotic resistance, by exchanging chemical signals, known as autoinducers. By interfering with this bacterial communication, we can disrupt the synchronization of activities that promote infection and resistance. One of the key points is a discussion of the RNAIII-inhibitor (RIP) that blocks RNAII and RNAIII synthesis in the Accessory Gene Regulator (AGR) system, being important transcripts determining the production of toxins and immune evasion in Staphylococcus aureus. This interference in effect cripples the bacterial defensive mechanisms against immune responses hence promoting the host capability to recognize and kill the pathogen. In addition, QS inhibitors such as RIP can be combined with established antimicrobials to synergistically lower the necessary dose of the latter agent to alleviate the resistance selective pressure. Overall, this MC-based method does not only focus on taking care of bacterial virulence on a communication level but also allows to create an environment that promotes a more effective and stronger immune response, which seems a highly encouraging trend in managing resistant bacterial infections.

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来源期刊
IEEE Transactions on NanoBioscience
IEEE Transactions on NanoBioscience 工程技术-纳米科技
CiteScore
7.00
自引率
5.10%
发文量
197
审稿时长
>12 weeks
期刊介绍: The IEEE Transactions on NanoBioscience reports on original, innovative and interdisciplinary work on all aspects of molecular systems, cellular systems, and tissues (including molecular electronics). Topics covered in the journal focus on a broad spectrum of aspects, both on foundations and on applications. Specifically, methods and techniques, experimental aspects, design and implementation, instrumentation and laboratory equipment, clinical aspects, hardware and software data acquisition and analysis and computer based modelling are covered (based on traditional or high performance computing - parallel computers or computer networks).
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