Alamri Huda, Chen Guanyu, Huang Songping D
Department of Chemistry and Biochemistry, Kent State University, Kent, OH 44240, USA.
Department of Chemistry, College of Science, University of Jeddah, Jeddah 21589, Saudi Arabia.
Antibiotics (Basel). 2023 Oct 30;12(11):1578. doi: 10.3390/antibiotics12111578.
Ga(III) can mimic Fe(III) in the biological system due to its similarities in charge and ionic radius to those of Fe(III) and can exhibit antimicrobial activity by disrupting the acquisition and metabolism of Fe in bacterial cells. For example, Ga(NO) has been proven to be effective in treating chronic lung infections by () in cystic fibrosis patients in a recent phase II clinical trial. However, Ga(NO) is an ionic compound that can hydrolyze to form insoluble hydroxides at physiological pH, which not only reduces its bioavailability but also causes potential renal toxicity when it is used as a systemic drug. Although complexion with suitable chelating agents has offered a varying degree of success in alleviating the hydrolysis of Ga(III), the use of nanotechnology to deliver this metallic ion should constitute an ultimate solution to all the above-mentioned problems. Thus far, the development of Ga-based nanomaterials as metalloantibiotics is an underexploited area of research. We have developed two different synthetic routes for the preparation of biocompatible Ga(HPO) NPs and shown that both the PVP- or PEG-coated Ga(HPO) NPs exhibit potent antimicrobial activity against . More importantly, such polymer-coated NPs do not show any sign of Ga-resistant phenotype development after 30 passes, in sharp contrast to Ga(NO) which can rapidly develop Ga-resistant phenotypes of , indicating the potential of using Ga(HPO) NPs a new antimicrobial agent in place of Ga(NO).
由于Ga(III)在电荷和离子半径方面与Fe(III)相似,它可以在生物系统中模拟Fe(III),并通过破坏细菌细胞中铁的获取和代谢来展现抗菌活性。例如,在最近的一项II期临床试验中,已证明Ga(NO)对治疗囊性纤维化患者的慢性肺部感染有效。然而,Ga(NO)是一种离子化合物,在生理pH值下会水解形成不溶性氢氧化物,这不仅会降低其生物利用度,而且当用作全身药物时还会引起潜在的肾毒性。尽管与合适的螯合剂络合在减轻Ga(III)的水解方面取得了不同程度的成功,但利用纳米技术递送这种金属离子应该是解决上述所有问题的最终方案。到目前为止,开发基于Ga的纳米材料作为金属抗生素是一个未充分开发的研究领域。我们已经开发了两种不同的合成路线来制备生物相容性的Ga(HPO)纳米颗粒,并表明PVP或PEG包覆的Ga(HPO)纳米颗粒对均表现出强大的抗菌活性。更重要的是,与Ga(NO)能迅速产生的耐Ga表型形成鲜明对比的是,这种聚合物包覆的纳米颗粒在传代30次后没有显示出任何耐Ga表型发展的迹象,这表明使用Ga(HPO)纳米颗粒作为新型抗菌剂替代Ga(NO)的潜力。