Department of Chemistry and Biochemistry, Mendel University in Brno, Zemedelska 1, Brno CZ-613 00, Czech Republic; Central European Institute of Technology, Brno University of Technology, Purkynova 123, Brno CZ-612 00, Czech Republic.
Central European Institute of Technology, Brno University of Technology, Purkynova 123, Brno CZ-612 00, Czech Republic.
Biotechnol Adv. 2020 Nov 1;43:107571. doi: 10.1016/j.biotechadv.2020.107571. Epub 2020 Jun 5.
Antibiotic resistance is rising at a pace that is difficult to cope with; circumvention of this issue requires fast and efficient alternatives to conventional antibiotics. Algae inhabit a wide span of ecosystems, which contributes to their ability to synthesize diverse classes of highly active biogenic metabolites. Here, for the first time, we reviewed all possible algal metabolites with broad spectra antibacterial activity against pathogenic bacteria, including antibiotic-resistant strains, and categorized different metabolites of both freshwater and marine algae, linking them on the basis of their target sites and mechanistic actions along with their probable nanoconjugates. Algae can be considered a boon for novel drug discovery in the era of antibiotic resistance, as various algal primary and secondary metabolites possess potential antibacterial properties. The diversity of these metabolites from indigenous sources provides a promising gateway enabling researchers and pharmaceutical companies to develop novel nontoxic, cost-effective and highly efficient antibacterial medicines.
抗生素耐药性的上升速度令人难以应对;为了解决这个问题,需要快速有效的抗生素替代品。藻类栖息在广泛的生态系统中,这有助于它们合成多种具有高度活性的生物源代谢物。在这里,我们首次综述了所有可能的藻类代谢物,它们对包括抗生素耐药株在内的病原菌具有广谱抗菌活性,并对淡水和海洋藻类的不同代谢物进行了分类,根据它们的靶点和作用机制以及可能的纳米缀合物将它们联系起来。在抗生素耐药性时代,藻类可以被视为新药发现的福音,因为各种藻类的初级和次级代谢物都具有潜在的抗菌特性。这些来自本土来源的代谢物的多样性为研究人员和制药公司提供了一个有前途的途径,使他们能够开发新型无毒、经济高效且高效的抗菌药物。