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Biospectra Analysis:Model Proteome Characterizations for Linking Molecular Structure and Biological Response

机译:生物光谱分析:模型蛋白质组学表征分子结构和生物反应之间的联系

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Establishing quantitative relationships between molecular structure and broad biological effects has been a long-standing goal in drug discovery.Evaluation of the capacity of molecules to modulate protein functions is a prerequisite for understanding the relationship between molecular structure and in vivo biological response.A particular challenge in these investigations is to derive quantitative measurements of a molecule's functional activity pattern across different proteins.Herein we describe an operationally simple probabilistic structure-activity relationship(SAE)approach,termed biospectra analysis,for identifying agonist and antagonist effect profiles of medicinal agents by using pattern similarity between biological activity spectra(biospectra)of molecules as the determinant.Accordingly,in vitro binding data(percent inhibition values of molecules determined at single high drug concentration in a battery of assays representing a cross section of the proteome)are useful for identifying functional effect profile similarity between medicinal agents.To illustrate this finding,the relationship between biospectra similarity of 24 molecules,identified by hierarchical clustering of a 1567 molecule dataset as being most closely aligned with the neurotransmitter dopamine,and their agonist or antagonist properties was probed.Distinguishing the results described in this study from those obtained with affinity-based methods,the observed association between biospectra and biological response profile similarity remains intact even upon removal of putative drug targets from the dataset(four dopaminergic [D_1/D_2/D_3/D_4] and two adrenergic [alpha_1 and alpha_2] receptors).These findings indicate that biospectra analysis provides an unbiased new tool for forecasting structure-response relationships and for translating broad biological effect information into chemical structure design.
机译:建立分子结构与广泛的生物学效应之间的定量关系一直是药物开发中的长期目标。评估分子调节蛋白质功能的能力是理解分子结构与体内生物学反应之间关系的前提。在这些研究中,是为了定量测量不同蛋白质上分子的功能活性模式。在此,我们描述了一种操作简单的概率结构-活性关系(SAE)方法,称为生物光谱分析,用于通过确定药物的激动剂和拮抗剂作用谱分子生物学活性光谱(biospectra)之间的模式相似性作为决定因素。因此,体外结合数据(在一系列代表蛋白质组横截面的测定中以单一高药物浓度测定的分子抑制百分比)可用于鉴定为了阐明这一发现,我们探究了24个分子的生物光谱相似性之间的关系,该关系由1567个分子数据集的层次聚类确定为与神经递质多巴胺最接近,并探讨了它们的激动剂或拮抗剂特性。 。从本研究中描述的结果与通过亲和力方法获得的结果相区别,即使从数据集中删除了假定的药物靶标,观察到的生物光谱与生物反应谱相似性之间的关联仍保持完整(四个多巴胺能药物[D_1 / D_2 / D_3 / D_4 ]和两个肾上腺素能[alpha_1和alpha_2]受体)。这些发现表明,生物光谱分析提供了一种无偏见的新工具,用于预测结构-反应关系并将广泛的生物学效应信息转化为化学结构设计。

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