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Iron/Heme Metabolism-Targeted Gallium(III) Nanoparticles Are Active against Extracellular and Intracellular Pseudomonas aeruginosa and Acinetobacter baumannii

机译:铁/血液代谢靶向镓(III)纳米粒子针对细胞外和细胞内假单胞菌铜绿假单胞菌和肺杆菌(Baumannii)

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Iron/heme acquisition systems are critical for microorganisms to acquire iron from the human host, where iron sources are limited due to the nutritional immune system and insolubility of the ferric form of iron. Prior work has shown that a variety of gallium compounds can interfere with bacterial iron acquisition. This study explored the intra-and extracellular antimicrobial activities of gallium protoporphyrin (GaPP), gallium mesoporphyrin (GaMP), and nanoparticles encapsulating GaPP or GaMP against the Gram-negative pathogens Pseudomonas aeruginosa and Acinetobacter baumannii, including clinical isolates. All P. aeruginosa and A. baumannii isolates were susceptible to GaPP and GaMP, with MICs ranging from 0.5 to similar to 32 mu g/ml in iron-depleted medium. Significant intra-and extracellular growth inhibition was observed against P. aeruginosa cultured in macrophages at a gallium concentration of 3.3 mu g/ml (5 mu M) of all Ga(III) compounds, including nanoparticles. Nanoparticle formulations showed prolonged activity against both P. aeruginosa and A. baumannii in previously infected macrophages. When the macrophages were loaded with the nanoparticles 3 days prior to infection, there was a 5-fold decrease in growth of P. aeruginosa in the presence of single emulsion F127 copolymer nanoparticles encapsulating GaMP (eFGaMP). In addition, all Ga(III) porphyrins and nanoparticles showed significant intracellular and antibiofilm activity against both pathogens, with the nanoparticles exhibiting intracellular activity for 3 days. Ga nanoparticles also increased the survival rate of Caenorhabditis elegans nematodes infected by P. aeruginosa and A. baumannii. Our results demonstrate that Ga nanoparticles have prolonged in vitro and in vivo activities against both P. aeruginosa and A. baumannii, including disruption of their biofilms.
机译:铁/血液采集系统对于从人宿主获取铁的微生物至关重要,因为营养免疫系统和铁的铁形式的营养免疫系统和不透明性受到限制。事先工作表明,各种镓化合物可以干扰细菌铁采集。本研究探讨了镓原子卟啉(GAPP),镓中卟啉(GAMP)和纳米颗粒的植物内抗微生物活性,并将GAPP或涂层覆盖着革兰氏阴性病原体铜绿假单胞菌和血管杆菌Baumannii,包括临床分离物。所有P.铜绿假单胞菌和A.Baumannii分离物易于GAPP和垃圾影响,MICS在铁耗尽培养基中的0.5至类似于32μg/ ml。在巨噬细胞中培养的P.铜绿假单胞菌以3.3μg/ ml(5μm)的所有Ga(III)化合物,包括纳米颗粒,观察到显着的内细胞内生长抑制。纳米粒子制剂显示出在先前感染的巨噬细胞中对P.铜绿假单胞菌和A.Baumannii的延长活性。当在感染之前3天用纳米颗粒加载巨噬细胞时,在单一乳液F127共聚物纳米粒子的存在下涂抹涂布(EFGAMP),P.铜绿假单胞菌的生长减少了5倍。此外,所有Ga(III)卟啉和纳米颗粒都显示出对两种病原体的显着细胞内和抗生素活性,纳米颗粒表现出细胞内活性3天。 GA纳米粒子还增加了P. eruginosa和A.Baumannii感染的Caenorhabdise elitis的生存率。我们的结果表明,GA纳米粒子在体外延长了铜绿假单胞菌和A.Baumannii的体外和体内活性,包括突破其生物膜。

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