Institute for Experimental Molecular Imaging, RWTH Aachen University Hospital, Aachen 52074, Germany.
Electron Microscope Facility, RWTH Aachen University Hospital, Aachen 52074, Germany.
J Mater Chem B. 2024 Mar 6;12(10):2511-2522. doi: 10.1039/d3tb02950f.
Photoacoustic (PA) imaging is an emerging diagnostic technology that combines the penetration depth of ultrasound (US) imaging and the contrast resolution of optical imaging. Although PA imaging can visualize several endogenous chromophores to obtain clinically-relevant information, multiple applications require the administration of external contrast agents. Metal phthalocyanines have strong PA properties and chemical stability, but their extreme hydrophobicity requires their encapsulation in delivery systems for biomedical applications. Hence, we developed hybrid US/PA contrast agents by encapsulating metal phthalocyanines in poly(butyl cyanoacrylate) microbubbles (PBCA MB), which display acoustic response and ability to efficiently load hydrophobic drugs. Six different metal chromophores were loaded in PBCA MB, showing greater encapsulation efficiency with higher chromophore hydrophobicity. Notably, while the US response of the MB was unaffected by the loading of the chromophores, the PA characteristics varied greatly. Among the different formulations, MB loaded with zinc and cobalt naphthalocyanines showed the strongest PA contrast, as a result of high encapsulation efficiencies and tunable optical properties. The strong US and PA contrast signals of the formulations were preserved in biological environment, as demonstrated by imaging in serum and whole blood, and imaging in deceased mice. Taken together, these findings highlight the advantages of combining highly hydrophobic PA contrast agents and polymeric MB for the development of contrast agents for hybrid US/PA imaging, where different types of information (structural, functional, or potentially molecular) can be acquired by combining both imaging modalities.
光声(PA)成像是一种新兴的诊断技术,它结合了超声(US)成像的穿透深度和光学成像的对比度分辨率。尽管 PA 成像是可以可视化几种内源性发色团以获得临床相关信息,但多个应用需要外部对比剂的给药。金属酞菁具有很强的 PA 性质和化学稳定性,但它们的极端疏水性需要将其封装在用于生物医学应用的递送系统中。因此,我们通过将金属酞菁封装在聚(正丁基氰基丙烯酸酯)微泡(PBCA MB)中来开发混合 US/PA 对比剂,该微泡具有声学响应能力和高效负载疏水性药物的能力。我们将六种不同的金属发色团装载到 PBCA MB 中,发现随着发色团疏水性的增加,其封装效率更高。值得注意的是,尽管 MB 的 US 响应不受发色团负载的影响,但 PA 特性却有很大差异。在不同的配方中,负载锌和钴萘酞菁的 MB 表现出最强的 PA 对比,这是由于高封装效率和可调谐的光学性质。在血清和全血中的成像以及在死亡小鼠中的成像表明,这些配方在生物环境中的强 US 和 PA 对比信号得以保留。总之,这些发现强调了将高疏水性 PA 对比剂与聚合物 MB 结合用于开发混合 US/PA 成像对比剂的优势,通过结合两种成像方式可以获得不同类型的信息(结构、功能或潜在的分子)。