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首页> 外文期刊>Biomaterials Science >Broad spectrum antibacterial photodynamic and photothermal therapy achieved with indocyanine green loaded SPIONs under near infrared irradiation
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Broad spectrum antibacterial photodynamic and photothermal therapy achieved with indocyanine green loaded SPIONs under near infrared irradiation

机译:近红外辐射下的吲哚菁绿色负载散热散热和光热疗法实现广谱抗菌光动力学和光热疗法

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Antimicrobial photodynamic therapy (aPDT) and antimicrobial photothermal therapy (aPTT) are promising local and effective alternative therapies for antibiotic resistant bacterial infections and biofilms. A combination of nanoparticles and organic photosensitizers offers a great opportunity to combine PDT and PTT for effective eradication of both planktonic bacteria and their biofilms. In this work, photo-induced antibacterial activity of indocyanine green (ICG), 3-aminopropylsilane coated superparamagnetic iron oxide nanoparticles (APTMS@SPIONs) and ICG loaded APTMS@SPIONs was evaluated on planktonic cells and biofilms of Gram-negative (E. coli,K. pneumoniae,P. aeruginosa) and Gram-positive (S. epidermis) bacteria. A relatively low dose of ICG (25 mu g mL(-1)) and SPIONs (0.425 mu g mL(-1)nanoparticle) in combination with single, short (10 min) laser irradiation at 808 nm with a power of 1150 mW was used in this study. No dark toxicity of the agents or antibacterial effect of the laser irradiation was observed. The charge of the particles did not provide a significant difference in their penetration to Gram-negativeversusGram-positive bacterial strains or their biofilms. APTMS@SPION/laser treatment completely eliminatedP. aeruginosaand provided 7-log reduction in the colony forming unit (CFU) ofE. Coli, but was not effective on the other two bacteria. This is the first example for antibacterial phototoxicity of this nanoparticle. ICG/laser and ICG-APTMS@SPION/laser treatments provided complete killing of all planktonic cells. Successful eradication of all biofilms was achieved with ICG/laser (3.2-3.7 log reduction in CFUs) or ICG-APTMS@SPION/laser treatment (3.3-4.4 log reduction in CFUs). However, an exceptionally high, 6.5-log reduction as well as a dramatic difference between ICGversusICG/APTMS@SPION treatment was observed inK. pneumoniaebiofilms with ICG-APTMS@SPION/laser treatment. Investigation of the ROS production and increase in the local temperature of the biofilms that were subjected to phototherapy suggested a combination of aPTT and aPDT mechanisms for phototoxicity, exhibiting a synergistic effect when ICG-APTMS@SPION/laser was used. This approach opens an exciting and novel avenue in the fight against drug resistant infections by successfully utilizing the antimicrobial and antibiofilm activity of low dose FDA approved optically traceable ICG and relatively low cost clinically acceptable iron oxide nanoparticles to enable effective aPDT/aPTT combination, inducedviashort-duration laser irradiation at a near-infrared wavelength.
机译:抗微生物光动力治疗(APDT)和抗微生物光热疗(APTT)是对抗生素抗性细菌感染和生物膜的局部和有效替代疗法。纳米粒子和有机光敏剂的组合提供了合并PDT和PTT的机会,以有效地消除浮游细菌和它们的生物膜。在这项工作中,对吲哚菁绿(ICG),3-氨基丙基硅烷涂覆的超顺磁性氧化铁纳米颗粒(APTMS @酱)和ICG的抗菌活性进行了评估对革兰氏阴性细胞和革兰氏阴性的生物膜(大肠杆菌,k。肺炎,p。铜绿假单胞菌)和革兰氏阳性(S.表皮)细菌。一种相对低剂量的ICG(25μgml(-1))和散氏(0.425μg(-1)纳米颗粒,与单一,短(10分钟)激光照射在808nm,功率为1150 mw在这项研究中使用。没有观察到激光照射的药剂的暗毒性或激光照射的抗菌作用。颗粒的电荷没有提供它们对革兰氏血管克阳性细菌菌株或其生物膜的渗透性的显着差异。 APTMS @ Spion /激光治疗完全消除了。铜绿假单胞菌在菌落形成单元(CFU)中提供了7次记录。大肠杆菌,但对其他两种细菌没有有效。这是该纳米粒子的抗菌光毒性的第一个例子。 ICG / LASER和ICG-APTMS @ SPION /激光处理提供了完全杀害所有浮游细胞。使用ICG / LASS(3.2-3.7 CFUS)或ICG-APTMS @ SPION /激光治疗(3.3-4.4降低CFU的降落量)来实现成功消除所有生物膜。然而,观察到ICGVersisicg / APTMS @ Spion治疗之间的异常高,6.5降低的降低以及墨水。 Pneumoniaebiofilms采用ICG-APTMS @ Spion /激光治疗。对患有光疗法的生物膜的局部温度的研究表明,当使用ICG-APTMS @ SPION /激光时,APTT和APDT机制的组合表现出易于协同效应。这种方法通过成功利用低剂量FDA批准的光学可追踪的ICG和相对低成本的临床可接受的氧化铁纳米粒子来打开抗毒性感染的令人兴奋和新颖的途径抗毒性感染,以实现有效的APDT / APTT组合,诱导viashort-近红外波长的持续时间激光照射。

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