Goyal Mukund M, Zhou Nancy J, Vincent Philippe F Y, Hoffman Elina S, Goel Shiv, Wang Chao, Sun Daniel Q
Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, MD.
School of Medicine, Johns Hopkins University, Baltimore, MD.
Otol Neurotol Open. 2022 Jul 20;2(3):e013. doi: 10.1097/ONO.0000000000000013. eCollection 2022 Sep.
Magnetic nanoparticles (MNPs) for cochlear drug delivery can be precisely engineered for biocompatibility in the cochlea.
MNPs are promising drug delivery vehicles that can enhance the penetration of both small and macromolecular therapeutics into the cochlea. However, concerns exist regarding the application of oxidative, metal-based nanomaterials to delicate sensory tissues of the inner ear. Translational development of MNPs for cochlear drug deliver requires specifically tuned nanoparticles that are not cytotoxic to inner ear tissues. We describe the synthesis and characterization of precisely tuned MNP vehicles, and their in vitro biocompatibility in murine organ of Corti organotypic cultures.
MNPs were synthesized via 2-phase ligand transfer process with precise control of nanoparticle size. Core and hydrodynamic sizes of nanoparticles were characterized using electron microscopy and dynamic light scattering, respectively. In vitro biocompatibility was assayed via mouse organ of Corti organotypic cultures with and without an external magnetic field gradient. Imaging was performed using immunohistochemical labeling and confocal microscopy. Outer hair cell, inner hair cell, and spiral ganglion neurites were individually quantified.
Monocore PEG-MNPs of 45 and 148 nm (mean hydrodynamic diameter) were synthesized. Organ of Corti cultures demonstrated preserved outer hair cell, inner hair cell, and neurite counts across 2 MNP sizes and doses, and irrespective of external magnetic field gradient.
MNPs can be custom-synthesized with precise coating, size, and charge properties specific for cochlear drug delivery while also demonstrating biocompatibility in vitro.
用于耳蜗药物递送的磁性纳米颗粒(MNPs)可以经过精确设计,以实现耳蜗中的生物相容性。
MNPs是很有前景的药物递送载体,可增强小分子和大分子治疗药物向耳蜗的渗透。然而,将基于金属的氧化性纳米材料应用于内耳脆弱的感觉组织存在一些问题。MNPs用于耳蜗药物递送的转化研究需要经过特殊调整的纳米颗粒,使其对内耳组织无细胞毒性。我们描述了经过精确调整的MNP载体的合成与表征,以及它们在小鼠柯蒂氏器器官型培养物中的体外生物相容性。
通过两相配体转移过程合成MNPs,并精确控制纳米颗粒的大小。分别使用电子显微镜和动态光散射来表征纳米颗粒的核心尺寸和流体动力学尺寸。通过有无外部磁场梯度的小鼠柯蒂氏器器官型培养物来测定体外生物相容性。使用免疫组织化学标记和共聚焦显微镜进行成像。分别对外毛细胞、内毛细胞和螺旋神经节神经突进行定量分析。
合成了平均流体动力学直径为45和148 nm的单核聚乙二醇-MNPs。柯蒂氏器培养物显示,在两种MNP尺寸和剂量下,无论有无外部磁场梯度,外毛细胞、内毛细胞和神经突数量均保持不变。
MNPs可以定制合成,具有针对耳蜗药物递送的精确包被、尺寸和电荷特性,同时在体外也表现出生物相容性。