Prioritization of Therapeutic Targets of Inflammation Using Proteomics, Bioinformatics, and In Silico Cell-Cell Interactomics.

Q4 Biochemistry, Genetics and Molecular Biology
Arsalan S Haqqani, Danica B Stanimirovic
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引用次数: 0

Abstract

Protein-protein interactions play key roles in leukocyte extravasation process into the brain and have been attractive therapeutic targets for inhibiting brain inflammation using blocking (or neutralizing) antibodies. These targets include protein-protein interactions between cytokines (or chemokines) and their receptors on leukocytes and between adhesion molecules of leukocyte and brain endothelium. While a number of therapeutics against these targets are currently used in clinic for treatment of brain autoimmune and inflammatory disorders (e.g., multiple sclerosis), they are associated with side effects partly due to the off-target actions (i.e., nonspecific targets). There is a need for novel targets involved in the leukocyte extravasation process that are specific to leukocyte subsets or to individual inflammatory disorder and are amenable for drug development (i.e., druggable). We recently described the blood-brain barrier (BBB) Carta Project as a comprehensive collection of molecular "maps" consisting of multiple experimental omics (including RNA sequencing, proteomics, glycoproteomics, glycomics, and metabolomics) and in silico informatic analyses on a number of mammalian species from hundreds of internal, publicly available, or curated datasets. Utilizing the datasets and tools from the BBB Carta Project, we describe a methodology to identify novel "druggable" targets involving protein-protein interactions between activated leukocytes and brain endothelial cells using a combination of proteomics, bioinformatics, and in silico interactomics. The result is a prioritized list of protein-protein interactions in a network consisting of leukocyte-brain endothelial cell communication and contacts. These interactions can be further pursued for development of therapeutics such as neutralizing antibodies and their validation through preclinical testing. In addition to targeting brain inflammation, the method described here is applicable for peripheral inflammation and provides the opportunity to target important cell-cell interactions and communications that are more specific/selective for inflammatory disorders and improve currently available therapies.

利用蛋白质组学、生物信息学和硅细胞-细胞相互作用组学确定炎症治疗靶点的优先级。
蛋白-蛋白相互作用在白细胞向大脑外渗过程中起着关键作用,并且已经成为利用阻断(或中和)抗体抑制脑炎症的有吸引力的治疗靶点。这些靶点包括细胞因子(或趋化因子)与其在白细胞上的受体之间的蛋白-蛋白相互作用以及白细胞与脑内皮的粘附分子之间的蛋白-蛋白相互作用。虽然针对这些靶点的许多治疗方法目前用于临床治疗脑自身免疫性疾病和炎症性疾病(如多发性硬化症),但它们的副作用部分是由于脱靶作用(即非特异性靶点)。需要新的靶点参与白细胞外渗过程,这些靶点对白细胞亚群或个体炎症性疾病具有特异性,并且适合药物开发(即可药物)。我们最近将血脑屏障(BBB) Carta项目描述为一个由多个实验组学(包括RNA测序、蛋白质组学、糖蛋白质组学、糖组学和代谢组学)和计算机信息学分析组成的分子“图谱”的综合集合,这些分析来自数百个内部、公开可用或管理的数据集。利用来自BBB Carta项目的数据集和工具,我们描述了一种方法来识别新的“可药物”靶点,涉及活化白细胞和脑内皮细胞之间的蛋白质-蛋白质相互作用,使用蛋白质组学,生物信息学和计算机相互作用组学的组合。结果是一个由白细胞-脑内皮细胞通讯和接触组成的网络中蛋白质-蛋白质相互作用的优先列表。这些相互作用可以进一步用于治疗方法的开发,如中和抗体及其通过临床前测试的验证。除了靶向脑炎症外,本文描述的方法也适用于外周炎症,并提供了靶向重要的细胞-细胞相互作用和通信的机会,这些相互作用和通信对炎症疾病更具特异性/选择性,并改进目前可用的治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Methods in molecular biology
Methods in molecular biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
2.00
自引率
0.00%
发文量
3536
期刊介绍: For over 20 years, biological scientists have come to rely on the research protocols and methodologies in the critically acclaimed Methods in Molecular Biology series. The series was the first to introduce the step-by-step protocols approach that has become the standard in all biomedical protocol publishing. Each protocol is provided in readily-reproducible step-by-step fashion, opening with an introductory overview, a list of the materials and reagents needed to complete the experiment, and followed by a detailed procedure that is supported with a helpful notes section offering tips and tricks of the trade as well as troubleshooting advice.
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