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Studies on the development and characterization of sonosensitive organic nanoparticles for an ultrasound controlled, local release of pharmaceutical agents

Studies on the development and characterization of sonosensitive organic nanoparticles for an ultrasound controlled, local release of pharmaceutical agents
用于超声波控制局部释放药剂的声敏有机纳米颗粒的开发和表征研究
批准号:
399327646
负责人:
Professorin Dr. Dagmar Fischer
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2018
资助国家:
德国
项目状态:
已结题
起止时间:
2017-12-31 至 2021-12-31

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中文摘要
翻译
纳米粒作为药物活性成分的载体,在一定的靶区被称为“药物释放”,在一定的时间和空间上具有良好的可控性。一个重要的应用领域是肿瘤疾病的局部化疗,它可以防止全身暴露在治疗剂中,从而减少其他令人不快和有害的副作用。由于其尺寸较小,单个纳米颗粒具有EPR效应的优势(增强的渗透性和保持性),而不是以微粒形式存在的大得多的载体。这使得活性成分能够更强地渗透到肿瘤组织中,并对肿瘤组织产生更强的作用。我们的项目专注于通过超声波暴露释放活性物质的“声敏”纳米结构。为了将这种影响限制在特定的肿瘤区域,需要聚焦的超声波波场。到目前为止,只有在不允许充分聚焦的低超声频率下,才能检测到合适尺寸的声敏纳米颗粒的预期效果。然而,最近申请人成功地实现了新的声敏纳米颗粒(以球体和胶囊的形式),其中这种效应也在具有良好聚焦波场的较高超声波频率下发生。新开发的纳米粒子代表了重新水化、冷冻干燥的聚乳酸纳米球在水分散体中,直径为120 nm。宽带噪声是由835 kHz的超声波产生的,这是由于瞬时的活性成分释放空化造成的。在计划的项目中,纳米颗粒的生产将进行优化,以期有效地释放活性成分。超声波导致这些纳米结构惯性空化的机制将被确定。微观方法(光学显微镜、电子显微镜、扫描力显微镜)将用于颗粒的形态表征。为了对颗粒的有效性进行功能表征,必须实施致动器传感器系统,该系统在致动器一侧具有用于产生聚焦功率超声波的单元,该单元允许通过改变相关的超声波操作参数来优化空化过程。将在传感器端实施和测试各种被动和主动检测空化的超声波方法。传感器模式应在适当的组合中使用,以优化纳米颗粒生产过程以及有效地、基于空化释放活性成分。根据该项目取得的成果和发现,将为其在医学上的应用提出概念建议和系统的方法。
英文摘要
Nanoparticles are of great interest as carriers for pharmaceutical active ingredients for a time and spatial controlled release in certain target areas as so-called "drug delivery". An important area of application is localized chemotherapy of tumor diseases which prevents the entire body from being exposed to the therapeutic agent and thus reduces otherwise unpleasant and harmful side effects. Because of their small size, the individual nanoparticles favor the advantage of the EPR effect (enhanced permeability and retention) over the substantially larger carriers in the form of microparticles. This allows for a stronger penetration of the active ingredient into and a stronger action on the tumor tissue.Our project focuses on "sonosensitive" nanostructures in which the active substances can be released by ultrasound exposition. In order to limit this effect to specific tumor regions, focused ultrasonic wave fields are required. Until now, the desired effect on sonosensitive nanoparticles of suitable size was detectable only at low ultrasonic frequencies which do not permit sufficient focusing. However, recently the applicants have succeeded in the realization of new sonosensitive nanoparticles (in the form of spheres and capsules) in which the effect also occurs at higher ultrasonic frequencies with well-focused wave fields. The newly developed nanoparticles represent rehydrated, freeze - dried poly(lactic acid) nanospheres in a water dispersion, with a diameter of 120 nm. Broadband noise is generated by sonication at 835 kHz, which is due to transient, active ingredients - releasing cavitation.In the planned project, nanoparticle production is to be optimized with a view to efficient release of active ingredients. The mechanism by which ultrasound causes inertial cavitation of these nanostructures will be determined. Microscopic methods (light microscopy, electron microscopy, scanning force microscopy) will be used for the morphological characterization of the particles. For the functional characterization of the effectiveness of the particles, an actuator sensor system has to be implemented, which on the actuator side has a unit for generating focused power ultrasound, which allows optimization of the cavitation process by variation of relevant ultrasonic operation parameters. Various ultrasonic methods for the passive and the active detection of cavitation are to be implemented and tested on the sensor side. The sensor modalities should be used in a suitable combination for the optimization of the nanoparticle production process as well as for the efficient, cavitation-based release of active ingredients. Based on the results and findings gained in the project, concept proposals and systematic approaches for the application in medicine are to be developed.
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