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Probing the structure and in silico stability of cargo loaded DNA icosahedra using MD simulations

机译:使用MD模拟探测装载了DNA的二十面体的结构和计算机稳定性

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摘要

Platonic solids such as polyhedra based on DNA have been deployed for multifarious applications such as RNAi delivery, biological targeting and bioimaging. All of these applications hinge on the capability of DNA polyhedra for molecular display with high spatial precision. Therefore high resolution structural models of such polyhedra are critical to widen their applications in both materials and biology. Here, we present an atomistic model of a well-characterized DNA icosahedron, with demonstrated versatile functionalities in biological systems. We study the structure and dynamics of this DNA icosahedron using fully atomistic molecular dynamics (MD) simulation in explicit water and ions. The major modes of internal motion have been identified using principal component analysis. We provide a quantitative estimate of the radius of gyration (R-g), solvent accessible surface area (SASA) and volume of the icosahedron which is essential to estimate its maximal cargo carrying capacity. Importantly, our simulation of gold nanoparticles (AuNPs) encapsulated within DNA icosahedra revealed enhanced stability of the AuNP loaded DNA icosahedra compared to empty icosahedra. This is consistent with the experimental results that show high yields of cargo-encapsulated DNA icosahedra that have led to its diverse applications for precision targeting. These studies reveal that the stabilizing interactions between the cargo and the DNA scaffold powerfully position DNA polyhedra as targetable nanocapsules for payload delivery. These insights can be exploited for precise molecular display for diverse biological applications.
机译:柏拉图固体(例如基于DNA的多面体)已用于多种应用,例如RNAi递送,生物靶向和生物成像。所有这些应用都取决于DNA多面体在分子显示中具有高空间精度的能力。因此,此类多面体的高分辨率结构模型对于扩大其在材料和生物学中的应用至关重要。在这里,我们提出了一个特征明确的DNA二十面体的原子模型,并在生物系统中证明了其多功能性。我们在明确的水和离子中使用完全原子分子动力学(MD)模拟研究了这种DNA二十面体的结构和动力学。内部运动的主要模式已通过主成分分析确定。我们提供了回转半径(R-g),溶剂可及表面积(SASA)和二十面体体积的定量估算,这对于估算其最大载货量至关重要。重要的是,我们对包裹在DNA二十面体中的金纳米颗粒(AuNPs)的模拟显示,与空的二十面体相比,AuNP负载的DNA二十面体的稳定性增强。这与实验结果一致,实验结果表明高产量的货物封装DNA二十面体已导致其在精确靶向中的多种应用。这些研究表明,货物与DNA支架之间的稳定相互作用将DNA多面体强有力地定位为有效载荷递送的可靶向纳米胶囊。这些见解可用于各种生物应用的精确分子展示。

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