Transcription Regulation Group, International Centre of Genetic Engineering and Biotechnology (ICGEB), Aruna Asaf Ali Marg, New Delhi 110067, India.
Vision Lab Centre for Neuroscience, Indian Institute of Science, Bangalore 560012, India.
Molecules. 2022 Nov 3;27(21):7546. doi: 10.3390/molecules27217546.
An assemblage nexus of microorganisms enclosed in a composite extracellular polymeric matrix is called as a biofilm. The main factor causing biological fouling, or biofouling, is biofilms. Biofilm-mediated biofouling is a significant detrimental issue in several industries, including the maritime environment, industrial facilities, water treatment facilities, and medical implants. Conventional antibacterial remedies cannot wholly eradicate bacterial species owing to the structural rigidity of biofilm and the eventual growth of antibiotic-resistant microorganisms. Consequently, several approaches to disrupt the biofilm have been investigated to address this particular phenomenon. Antimicrobial peptides (AMPs) have emerged as a promising contender in this category, offering several advantages over traditional solutions, including broad-spectrum action and lack of antibiotic resistance. Because biofouling significantly impacts the marine industry, AMPs derived from marine sources may be suitable natural inhibitors of bacterial proliferation. In this article, we discuss the range of physicochemical and structural diversity and the model of action seen in marine AMPs. This makes them an appealing strategy to mitigate biofilm and biofilm-mediated biofouling. This review also systematically summarizes recent research on marine AMPs from vertebrates and invertebrates and their industrial significance, shedding light on developing even better anti-biofouling materials shortly.
一种微生物集合体被包裹在复合细胞外聚合物基质中,被称为生物膜。造成生物污垢或生物污染的主要因素是生物膜。生物膜介导的生物污染是海洋环境、工业设施、水处理设施和医疗植入物等多个行业的一个重大不利问题。由于生物膜的结构刚性和抗生素耐药微生物的最终生长,传统的抗菌方法无法完全消灭细菌种类。因此,已经研究了几种破坏生物膜的方法来解决这一特殊现象。抗菌肽 (AMP) 在这一类中脱颖而出,具有许多优于传统解决方案的优势,包括广谱作用和缺乏抗生素耐药性。由于生物污垢对海洋产业有重大影响,因此海洋来源的 AMP 可能是细菌增殖的合适天然抑制剂。在本文中,我们讨论了海洋 AMP 所见的范围广泛的物理化学和结构多样性以及作用模式。这使它们成为减轻生物膜和生物膜介导的生物污染的一种有吸引力的策略。这篇综述还系统地总结了来自脊椎动物和无脊椎动物的海洋 AMP 的最新研究及其工业意义,为不久的将来开发更好的抗生物污染材料提供了线索。