Adelaide Medical School, University of Adelaide, North Terrace, Adelaide, Australia.
Women's and Children's Hospital, King William Road, Adelaide, Australia.
Phys Med Biol. 2024 May 9;69(10). doi: 10.1088/1361-6560/ad40f5.
Magnetic nanoparticles can be used as a targeted delivery vehicle for genetic therapies. Understanding how they can be manipulated within the complex environment of live airways is key to their application to cystic fibrosis and other respiratory diseases.Dark-field x-ray imaging provides sensitivity to scattering information, and allows the presence of structures smaller than the detector pixel size to be detected. In this study, ultra-fast directional dark-field synchrotron x-ray imaging was utlilised to understand how magnetic nanoparticles move within a live, anaesthetised, rat airway under the influence of static and moving magnetic fields.Magnetic nanoparticles emerging from an indwelling tracheal cannula were detectable during delivery, with dark-field imaging increasing the signal-to-noise ratio of this event by 3.5 times compared to the x-ray transmission signal. Particle movement as well as particle retention was evident. Dynamic magnetic fields could manipulate the magnetic particlesThis is the first evidence of the effectiveness ofdark-field imaging operating at these spatial and temporal resolutions, used to detect magnetic nanoparticles. These findings provide the basis for further development toward the effective use of magnetic nanoparticles, and advance their potential as an effective delivery vehicle for genetic agents in the airways of live organisms.
磁性纳米颗粒可用作基因治疗的靶向递送载体。了解它们如何在活体气道的复杂环境中被操纵,是将其应用于囊性纤维化和其他呼吸道疾病的关键。暗场 X 射线成像是对散射信息敏感的方法,并且可以检测到小于探测器像素尺寸的结构的存在。在这项研究中,使用超快速定向暗场同步加速器 X 射线成像来了解磁性纳米颗粒在受静态和移动磁场影响的活体麻醉大鼠气道内的运动方式。从留置的气管插管中排出的磁性纳米颗粒在输送过程中即可被检测到,与 X 射线透射信号相比,暗场成像将该事件的信噪比提高了 3.5 倍。可以明显观察到粒子的运动和保留情况。动态磁场可以操纵磁性颗粒。这是首次证明了在这些空间和时间分辨率下进行暗场成像,可用于检测磁性纳米颗粒。这些发现为进一步开发有效利用磁性纳米颗粒提供了基础,并推进了它们作为活体生物气道中遗传物质有效递送载体的潜力。