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Mechanistic analysis of macrophage response to IRAK-1 gene knockdown by a smart polymer-antisense oligonucleotide therapeutic.智能聚合物-反义寡核苷酸疗法对巨噬细胞对IRAK-1基因敲低反应的机制分析
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Resolving the structure of ligands bound to the surface of superparamagnetic iron oxide nanoparticles by high-resolution magic-angle spinning NMR spectroscopy.通过高分辨率魔角旋转核磁共振光谱解析与超顺磁性氧化铁纳米颗粒表面结合的配体结构。
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The implications of stochastic synthesis for the conjugation of functional groups to nanoparticles.随机合成对功能基团与纳米颗粒共轭的影响。
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Structure and function of nanoparticle-protein conjugates.纳米颗粒-蛋白质缀合物的结构与功能。
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Isolation of discrete nanoparticle-DNA conjugates for plasmonic applications.用于等离子体应用的离散纳米颗粒- DNA 共轭物的分离
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Preclinical antitumor efficacy evaluation of dendrimer-based methotrexate conjugates.基于树枝状大分子的甲氨蝶呤缀合物的临床前抗肿瘤疗效评估。
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纳米粒子-配体分布的定量评估:对树枝状聚合物缀合物中靶向药物和成像传递的影响。

A quantitative assessment of nanoparticle-ligand distributions: implications for targeted drug and imaging delivery in dendrimer conjugates.

机构信息

University of Michigan, Ann Arbor, MI 48109, USA.

出版信息

ACS Nano. 2010 Feb 23;4(2):657-70. doi: 10.1021/nn900999c.

DOI:10.1021/nn900999c
PMID:20131876
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2836386/
Abstract

Functional nanoparticles often contain ligands including targeting molecules, fluorophores, and/or active moieties such as drugs. Characterizing the number of these ligands bound to each particle and the distribution of nanoparticle-ligand species is important for understanding the nanomaterial's function. In this study, the amide coupling methods commonly used to conjugate ligands to poly(amidoamine) (PAMAM) dendrimers were examined. A skewed Poisson distribution was observed and quantified using HPLC for two sets of dendrimer-ligand samples prepared using the amine-terminated form of the PAMAM dendrimer and a partially acetylated form of the PAMAM dendrimer that has been used for targeted in vivo drug delivery. The prepared samples had an average number of ligands per dendrimer ranging from 0.4 to 13. Distributions identified by HPLC are in excellent agreement with the mean ligand/dendrimer ratio, measured by (1)H NMR, gel permeation chromatography (GPC), and potentiometric titration. These results provide insight into the heterogeneity of distributions that are obtained for many classes of nanomaterials to which ligands are conjugated and belie the use of simple cartoon models that present the "average" number of ligands bound as a physically meaningful representation for the material.

摘要

功能纳米粒子通常包含配体,包括靶向分子、荧光团和/或活性部分,如药物。表征每个粒子结合的这些配体的数量以及纳米粒子-配体种类的分布对于理解纳米材料的功能非常重要。在这项研究中,检查了常用于将配体与聚(酰胺-胺)(PAMAM)树枝状大分子偶联的酰胺偶联方法。使用 HPLC 观察到并量化了两种树枝状大分子-配体样品的偏态泊松分布,这两种样品是使用末端为胺的 PAMAM 树枝状大分子和一种已用于靶向体内药物递送的部分乙酰化的 PAMAM 树枝状大分子制备的。制备的样品中每个树枝状大分子的平均配体数范围为 0.4 至 13。通过 HPLC 鉴定的分布与通过 (1)H NMR、凝胶渗透色谱 (GPC) 和电位滴定测量的平均配体/树枝状大分子比非常吻合。这些结果深入了解了配体与许多类纳米材料偶联所获得的分布的异质性,并证明了使用简单的卡通模型来表示结合的“平均”配体数量作为材料的物理有意义的表示是不合理的。