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Ligand-modulated interactions between charged monolayer-protected Au-144(SR)(60) gold nanoparticles in physiological saline

机译:生理盐水中带电单层保护的Au-144(SR)(60)金纳米粒子之间的配体调节相互作用

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In order to determine how functionalized gold nanoparticles (AuNPs) interact in a near-physiological environment, we performed all-atom molecular dynamics simulations on the icosahedral Au-144 nanoparticles each coated with a homogeneous set of 60 thiolates selected from one of these five (5) types: 11-mercapto-1-undecanesulfonate -SC11H22(SO3-), 5-mercapto-1-pentanesulfonate -SC5H10(SO3-), 5-mercapto-1-pentaneamine -SC5H10(NH3+), 4-mercapto-benzoate -SPh(COO-), or 4-mercapto-benzamide -SPh(CONH3+). These thiolates were selected to elucidate how the aggregation behavior of AuNPs depends on ligand parameters, including the charge of the terminal group (anionic vs. cationic), and its length and conformational flexibility. For this purpose, each functionalized AuNP was paired with a copy of itself, placed in an aqueous cell, neutralized by 120 Na+/Cl- counter-ions and salinated with a 150 mM concentration of NaCl, to form five (5) systems of like-charged AuNPs pairs in a saline. We computed the potential of mean force (the reversible work of separation) as a function of the intra-pair distance and, based on which, the aggregation affinities. We found that the AuNPs coated with negatively charged, short ligands have very high affinities. Structurally, a significant number of Na+ counter-ions reside on a plane between the AuNPs, mediating the interaction. Each such ion forms a "salt bridge'' (or "ionic bonds'') to both of the AuNPs when they are separated by its diameter plus 0.2-0.3 nm. The positively charged AuNPs have much weaker affinities, as Cl- counter-ions form fewer and weaker salt bridges between the AuNPs. In the case of Au-144(SC11H22(SO3-))(60) pair, the flexible ligands fluctuate much more than the other four cases. The large fluctuations disfavor the forming of salt bridges between two AuNPs, but enable hydrophobic contact between the exposed hydrocarbon chains of the two AuNPs, which are subject to an effective attraction at a separation much greater than the AuNP diameter and involve a higher concentration of counter ions in the inter-pair space.
机译:为了确定功能化的金纳米颗粒(AuNPs)在近乎生理环境中的相互作用方式,我们对二十面体Au-144纳米颗粒进行了全原子分子动力学模拟,每个纳米颗粒均涂覆有均一的60种硫醇盐,选自以下五种之一( 5)类型:11-巯基-1-十一烷磺酸酯-SC11H22(SO3-),5-巯基-1-戊烷磺酸酯-SC5H10(SO3-),5-巯基-1-戊烷胺-SC5H10(NH3 +),4-巯基苯甲酸酯-SPh(COO-)或4-巯基苯甲酰胺-SPh(CONH3 +)。选择这些硫醇盐来阐明AuNP的聚集行为如何取决于配体参数,包括端基的电荷(阴离子对阳离子),其长度和构象柔韧性。为此,将每个功能化的AuNP与自身的一个副本配对,放置在水槽中,用120 Na + / Cl-抗衡离子中和并用150 mM浓度的NaCl盐化,以形成五(5)个类似的系统盐水中的带电荷的AuNPs对。我们计算了平均力的潜力(分离的可逆功)与对内距离的函数,并据此计算聚集亲和力。我们发现涂有带负电的短配体的AuNP具有很高的亲和力。在结构上,大量的Na +抗衡离子驻留在AuNP之间的平面上,介导相互作用。当两个AuNP的直径相隔0.2 + 0.3 nm时,每个这样的离子都形成与两个AuNP的“盐桥”(或“离子键”)。带正电的AuNPs的亲和力要弱得多,因为Cl-抗衡离子在AuNPs之间形成的盐桥较少且较弱。在Au-144(SC11H22(SO3-))(60)对的情况下,柔性配体的波动远大于其他四种情况。较大的波动不利于两个AuNP之间形成盐桥,但使两个AuNP暴露的烃链之间能够疏水接触,在大于AuNP直径的距离处受到有效吸引,并且涉及较高的反胶浓度配对空间中的离子。

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