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Design and Characterization of Nanostructured Biomaterials via the Self-assembly of Lipids

机译:通过脂质的自组装设计和表征纳米结构生物材料

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We are interested in designing nanostructured biomaterials using nanoscopic building blocks such as functionalized nanotubes and lipid molecules. In our earlier work, we summarized the multiple control parameters which direct the equilibrium morphology of a specific class of nanostructured biomaterials. Individual lipid molecules were composed of a hydrophilic head group and two hydrophobic tails. A bare nanotube encompassed an ABA architecture, with a hydrophobic shaft (B) and two hydrophilic ends (A). We introduced hydrophilic hairs at one end of the tube to enable selective transport through the channel. The dimensions of the nanotube were set to minimize its hydrophobic mismatch with the lipid bilayer. We used a Molecular Dynamics-based mesoscopic simulation technique called Dissipative Particle Dynamics which simultaneously resolves the structure and dynamics of the nanoscopic building blocks and the hybrid aggregate. The amphiphilic lipids and functionalized nanotubes self-assembled into a stable hybrid vesicle or a bicelle in the presence of a hydrophilic solvent. We showed that the morphology of the hybrid structures was directed by factors such as the temperature, the rigidity of the lipid molecules, and the concentration of the nanotubes. Another type of hybrid nanostructured biomaterial could be multi-component lipid bilayers. In this paper, we present approaches to design hybrid nanostructured materials using multiple lipid species with different chemistries and molecular chain stiffness.
机译:我们有兴趣使用纳米镜和脂质分子等纳米镜结构块设计纳米结构化生物材料。在我们早先的工作中,我们总结了多种控制参数,该参数指示特定类别的纳米结构生物材料的平衡形态。个体脂质分子由亲水性头部和两个疏水性尾部组成。裸纳米管包含ABA架构,具有疏水性轴(B)和两个亲水末端(A)。我们在管的一端引入了亲水毛发,以使通过通道选择性地运输。设定纳米管的尺寸以使其与脂质双层的疏水性失配最小化。我们使用了一种基于分子动力学的介观仿真技术,称为耗散粒子动力学,其同时解析纳米镜构建块的结构和动力学和杂化骨料。在亲水溶剂存在下,两亲性脂质和官能化纳米管以稳定的杂交囊泡或双螺纹。我们表明,杂交结构的形态由诸如温度,脂质分子的刚性和纳米管的浓度的因素引导。另一种类型的杂化纳米结构生物材料可以是多组分脂质双层。在本文中,我们使用具有不同化学品和分子链刚度的多种脂质物种设计杂种纳米结构材料的方法。

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