A precise targeting of Staphylococcus aureus with phage RBP-decorated antibiotic-loaded nanoparticles

IF 3.2 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Senanur Dokuz, Irem Coksu, Serap Acar, Tulin Ozbek
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Abstract

Resistant strains of Staphylococcus aureus, which have emerged due to the excessive and indiscriminate use of antibiotics, have become one of the most significant causes of hospital-acquired infections, highlighting the necessity for specific and effective alternative methods in combating them. Leveraging the therapeutic potential of bacteriophage receptor binding protein (RBP), which occurs unique and irreversible binding of its host, in recognizing bacteria renders them valuable components in the development of targeted nanoparticle-based drug delivery systems, and offers promising approach to combat antibiotic resistance. In this study, synthesis and characterization of rifampicin-loaded PLGA nanoparticle (RIF-NP) were conducted and for selective targeting of S. aureus, rGp144, the RBP derived from Bacteriophage K, was conjugated onto the surface of the synthesized RIF-NP (RIF144-NP). While RIF-NP initially exhibited approximately a zeta potential of −26 mV and a size of 250 nm, after the conjugation with rGp144 led to an increase in zeta potential to −11 mV and a size to 300 nm. FT-IR analysis after conjugation confirmed the presence of primary amide bands in the regions of 1650 cm−1 and 1550 cm−1. Furthermore, the nanoparticles exhibited an encapsulation efficiency of 35.26% and a drug loading capacity of 26.64%. When the antimicrobial activities were evaluated, it was observed that compared to free RIF, the nano systems reduced the MIC value by twofold for all S. aureus strains. Incorporating a targeting strategy based on phage RBP in decoration to the surface of nanoparticular drug carriers represents a noteworthy and innovative treatment when combating bacterial infections.

Abstract Image

用噬菌体rbp修饰的载抗生素纳米颗粒精确靶向金黄色葡萄球菌
由于过度和不加选择地使用抗生素而产生的金黄色葡萄球菌耐药菌株已成为医院获得性感染的最重要原因之一,这突出表明有必要采取具体和有效的替代方法来防治这种感染。利用噬菌体受体结合蛋白(RBP)的治疗潜力,识别细菌,使其成为开发靶向纳米颗粒为基础的药物传递系统的重要组成部分,并为对抗抗生素耐药性提供了有希望的方法。本研究合成并表征了负载利福平的PLGA纳米颗粒(rifampicin-load PLGA nanopparticle, RIF-NP),为了选择性靶向金黄色葡萄球菌,将噬菌体K衍生的RBP rGp144偶联到合成的RIF-NP (RIF144-NP)表面。虽然RIF-NP最初的zeta电位约为- 26 mV,尺寸为250 nm,但与rGp144结合后,zeta电位增加到- 11 mV,尺寸增加到300 nm。共轭后的FT-IR分析证实在1650 cm - 1和1550 cm - 1区域存在初级酰胺带。包封率为35.26%,载药量为26.64%。当对抗菌活性进行评估时,观察到与游离RIF相比,纳米体系对所有金黄色葡萄球菌菌株的MIC值降低了两倍。将基于噬菌体RBP修饰的靶向策略结合到纳米颗粒药物载体表面是对抗细菌感染的一种值得注意的创新治疗方法。
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来源期刊
Biotechnology Journal
Biotechnology Journal Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
2.10%
发文量
123
审稿时长
1.5 months
期刊介绍: Biotechnology Journal (2019 Journal Citation Reports: 3.543) is fully comprehensive in its scope and publishes strictly peer-reviewed papers covering novel aspects and methods in all areas of biotechnology. Some issues are devoted to a special topic, providing the latest information on the most crucial areas of research and technological advances. In addition to these special issues, the journal welcomes unsolicited submissions for primary research articles, such as Research Articles, Rapid Communications and Biotech Methods. BTJ also welcomes proposals of Review Articles - please send in a brief outline of the article and the senior author''s CV to the editorial office. BTJ promotes a special emphasis on: Systems Biotechnology Synthetic Biology and Metabolic Engineering Nanobiotechnology and Biomaterials Tissue engineering, Regenerative Medicine and Stem cells Gene Editing, Gene therapy and Immunotherapy Omics technologies Industrial Biotechnology, Biopharmaceuticals and Biocatalysis Bioprocess engineering and Downstream processing Plant Biotechnology Biosafety, Biotech Ethics, Science Communication Methods and Advances.
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