Application of Proteomics Technology Based on LC-MS Combined with Western Blotting and Co-IP in Antiviral Innate Immunity.

Q4 Biochemistry, Genetics and Molecular Biology Methods in molecular biology Pub Date : 2025-01-01 DOI:10.1007/978-1-0716-4108-8_11
Weizheng Liang, Zhenpeng Zhu, Chunfu Zheng
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Abstract

As an interferon-stimulating factor protein, STING plays a role in the response and downstream liaison in antiviral natural immunity. Upon viral invasion, the immediate response of STING protein leads to a series of changes in downstream proteins, which ultimately leads to an antiviral immune response in the form of proinflammatory cytokines and type I interferons, thus triggering an innate immune response, an adaptive immune response in vivo, and long-term protection of the host. In the field of antiviral natural immunity, it is particularly important to rigorously and sequentially probe the dynamic changes in the antiviral natural immunity connector protein STING caused by the entire anti-inflammatory and anti-pathway mechanism and the differences in upstream and downstream proteins. Traditionally, proteomics technology has been validated by detecting proteins in a 2D platform, for which it is difficult to sensitively identify changes in the nature and abundance of target proteins. With the development of mass spectrometry (MS) technology, MS-based proteomics has made important contributions to characterizing the dynamic changes in the natural immune proteome induced by viral infections. MS analytical techniques have several advantages, such as high throughput, rapidity, sensitivity, accuracy, and automation. The most common techniques for detecting complex proteomes are liquid chromatography (LC) and mass spectrometry (MS). LC-MS (Liquid Chromatography-Mass Spectrometry), which combines the physical separation capability of LC and the mass analysis capability of MS, is a powerful technique mainly used for analyzing the proteome of cells, tissues, and body fluids. To explore the combination of traditional proteomics techniques such as Western blotting, Co-IP (co-Immunoprecipitation), and the latest LC-MS methods to probe the anti-inflammatory pathway and the differential changes in upstream and downstream proteins induced by the antiviral natural immune junction protein STING.

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基于 LC-MS 结合 Western Blotting 和 Co-IP 的蛋白质组学技术在抗病毒先天免疫中的应用
作为一种干扰素刺激因子蛋白,STING 在抗病毒天然免疫中起着反应和下游联络的作用。病毒入侵后,STING 蛋白的即时反应会导致下游蛋白发生一系列变化,最终以促炎细胞因子和 I 型干扰素的形式产生抗病毒免疫反应,从而引发先天性免疫反应,在体内产生适应性免疫反应,长期保护宿主。在抗病毒天然免疫领域,对整个抗炎和抗途径机制所引起的抗病毒天然免疫接头蛋白 STING 的动态变化以及上下游蛋白的差异进行严格的序列探究尤为重要。传统的蛋白质组学技术是在二维平台上检测蛋白质进行验证,很难灵敏地识别目标蛋白质的性质和丰度变化。随着质谱(MS)技术的发展,基于 MS 的蛋白质组学在描述病毒感染引起的天然免疫蛋白质组动态变化方面做出了重要贡献。MS 分析技术具有高通量、快速、灵敏、准确和自动化等优点。检测复杂蛋白质组最常用的技术是液相色谱法(LC)和质谱法(MS)。液相色谱-质谱(LC-MS)结合了液相色谱的物理分离能力和质谱的质量分析能力,是一种功能强大的技术,主要用于分析细胞、组织和体液的蛋白质组。探索将 Western 印迹、Co-IP(共免疫沉淀)等传统蛋白质组学技术与最新的 LC-MS 方法相结合,探究抗病毒天然免疫接头蛋白 STING 诱导的抗炎通路及上下游蛋白的不同变化。
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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.
期刊最新文献
A Guideline Strategy for Identifying a Viral Gene/Protein Evading Antiviral Innate Immunity. A Guideline Strategy for Identifying Genes/Proteins Regulating Antiviral Innate Immunity. Application of Proteomics Technology Based on LC-MS Combined with Western Blotting and Co-IP in Antiviral Innate Immunity. Click Chemistry in Detecting Protein Modification. CRISPR-Mediated Construction of Gene-Knockout Mice for Investigating Antiviral Innate Immunity.
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