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Modeling uptake of nanoparticles in multiple human cells using structure-activity relationships and intercellular uptake correlations

机译:使用结构 - 活性关系和细胞间摄取相关性在多人细胞中纳米粒子的吸收

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摘要

Biomedical applications of nanoparticles (NPs) are largely dependent on their cellular uptake potential that enables them to reach the specific targets in the body. Experimental determination of cellular uptake of diverse functionalized NPs in different human cell types is tedious, expensive and time intensive, hence compelling for alternative methods. We developed quantitative structure-activity relationship (QSAR) models for predicting uptake of functionalized NPs in multiple cell types in accordance with the OECD guidelines. The decision treeboost QSAR models precisely predicted uptake of 104 NPs in five different cell types yielding high R-2 between experimental and model predicted values in the respective training (>0.966) and test (>0.914) sets. The cross-validation Q(2) values ranged between 0.627 and 0.926. Low RMSE (<0.11) and MAE (<0.09) in test data emphasized for the usefulness of developed models for predicting new NPs, which outperformed the previous reports. Relevant structural features of NPs (modifier) that were responsible and influence the cellular permeability were identified. Here, we also attempted to develop intercellular uptake correlations based quantitative activity-activity relationship (QAAR) models for predicting cellular viability of NPs for all the cell types. The performances of all the 20 developed QAAR models were highly comparable with the QSAR models. The applicability domains of the developed models were defined using leverage method. The proposed QAAR models can be employed for extrapolating activity endpoints of NPs to either of the five cell types when the data for the other cell type are available. The developed models can be used as tools for screening new functionalized NPs for their cell-specific affinities prior to their biomedical applications.
机译:纳米颗粒(NPS)的生物医学应用在很大程度上取决于它们的细胞吸收潜力,使得它们能够达到体内的特定靶标。不同人类细胞类型中不同官能化NP细胞摄取的实验测定是乏味的,昂贵的和时间的密集,因此对替代方法引起引人注目。我们开发了定量结构 - 活动关系(QSAR)模型,用于根据经合组织的指南预测多个细胞类型中功能化NP的摄取。决策树腾偶QSAR模型在各个训练(> 0.966)中的实验和模型预测值之间的五种不同细胞类型中精确地预测了104个NP的摄取,得到高R-2(> 0.966)和测试(> 0.914)套。交叉验证Q(2)值范围为0.627和0.926。低RMSE(<0.11)和MAE(<0.09)在测试数据中强调开发模型预测新NPS的有用性,这取得了以前的报告。鉴定了负责和影响细胞渗透率的NPS(改性剂)的相关结构特征。这里,我们还试图开发基于用于所有细胞类型的用于预测NP的细胞活力的定量活动活动关系(QAAR)模型。所有20个发达的QAAR模型的性能与QSAR模型具有高度比较。使用杠杆方法定义开发模型的适用性域。当其他细胞类型的数据可用时,可以使用所提出的QAAR模型来用于将NPS的活动终点推断为五个细胞类型中的任一种。开发的模型可用作在生物医学应用之前筛选其细胞特异性的新官能化NP的工具。

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