Department of Biotechnology, Mercy College, Palakkad, Kerala, India.
Department of Marine Biology, School of Marine Sciences, Microbiology & Biochemistry, Cochin University of Science and Technology, Cochin, Kerala, India.
Cell Biochem Funct. 2023 Mar;41(2):142-151. doi: 10.1002/cbf.3779. Epub 2023 Feb 4.
Microalgae are photosynthetic cell factories that produce a spectrum of bioactive compounds extensively used for various applications. Owing to the increase in antibiotic resistance among microbial pathogens, there is a significant thrust for identifying new treatment strategies, and antimicrobial peptides (AMPs) generation is one such method. These AMPs have multiple roles and are active against bacteria, fungi, and viruses. Such peptides synthesized in microalgae have a significant role in medical application, managing aquaculture-associated diseases, and the food industry. To increase their effectiveness and novel peptides, genetically modified microalgae are used as cell factories. With the advancement of new technologies like the CRISPR-Cas system, new avenues are opened for developing novel AMPs using microalgae. This review gives us insight into the various AMPs produced by microalgae and multiple technologies involved in creating such therapeutically essential molecules.
微藻是光合细胞工厂,可广泛生产多种具有生物活性的化合物,广泛应用于各种领域。由于微生物病原体的抗生素耐药性不断增加,人们迫切需要寻找新的治疗策略,而抗菌肽 (AMPs) 的产生就是其中一种方法。这些 AMP 具有多种功能,对细菌、真菌和病毒均具有活性。在微藻中合成的此类肽在医学应用、水产养殖相关疾病管理和食品工业中具有重要作用。为了提高其有效性和产生新的肽,人们将经过基因改造的微藻用作细胞工厂。随着 CRISPR-Cas 系统等新技术的进步,利用微藻开发新型 AMP 开辟了新的途径。这篇综述使我们深入了解了微藻产生的各种 AMP 以及用于生成这些治疗必需分子的多种技术。