Semiconductor Electronics Division, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA.
Langmuir. 2010 Jul 6;26(13):11581-8. doi: 10.1021/la100879p.
We present a microfluidic method to direct the self-assembly of temperature-sensitive liposome-hydrogel hybrid nanoparticles. Our approach yields nanoparticles with structural properties and highly monodisperse size distributions precisely controlled across a broad range relevant to the targeted delivery and controlled release of encapsulated therapeutic agents. We used microfluidic hydrodynamic focusing to control the convective-diffusive mixing of two miscible nanoparticle precursor solutions (a DPPC:cholesterol:DCP phospholipid formulation in isopropanol and a photopolymerizable N-isopropylacrylamide mixture in aqueous buffer) to form nanoscale lipid vesicles with encapsulated hydrogel precursors. These precursor nanoparticles were collected off-chip and were irradiated with ultraviolet (UV) light in bulk to polymerize the nanoparticle interiors into hydrogel cores. Multiangle laser light scattering in conjunction with asymmetric flow field-flow fractionation was used to characterize nanoparticle size distributions, which spanned the approximately 150 to approximately 300 nm diameter range as controlled by microfluidic mixing conditions, with a polydispersity of approximately 3% to approximately 5% (relative standard deviation). Transmission electron microscopy was then used to confirm the spherical shape and core-shell composition of the hybrid nanoparticles. This method may be extended to the directed self-assembly of other similar cross-linked hybrid nanoparticle systems with engineered size/structure-function relationships for practical use in healthcare and life science applications.
我们提出了一种微流控方法来指导温度敏感脂质体-水凝胶杂化纳米粒子的自组装。我们的方法生成了具有结构特性的纳米粒子,并且尺寸分布高度单分散,可以在广泛的范围内精确控制,这与封装治疗剂的靶向输送和控制释放有关。我们使用微流控的流体动力学聚焦来控制两种可混溶的纳米颗粒前体溶液(异丙醇中的 DPPC:胆固醇:DCP 磷脂制剂和水缓冲液中的光聚合 N-异丙基丙烯酰胺混合物)的对流-扩散混合,以形成具有封装水凝胶前体的纳米尺度脂质体。这些前体纳米颗粒在芯片外收集,并在体中用紫外线(UV)光照射以将纳米颗粒内部聚合为水凝胶核。多角度激光光散射与非对称流场分级分离相结合,用于表征纳米颗粒的尺寸分布,该分布跨越了约 150 至约 300nm 的直径范围,这是通过微流混合条件控制的,多分散度约为 3%至 5%(相对标准偏差)。然后使用透射电子显微镜来确认杂化纳米粒子的球形形状和核壳组成。这种方法可以扩展到其他类似交联杂化纳米粒子系统的定向自组装,以用于医疗保健和生命科学应用中的实际用途,具有工程化的尺寸/结构-功能关系。