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CRISPR 编辑的生发中心小鼠 B 细胞分析。

analysis of CRISPR-edited germinal center murine B cells.

机构信息

Department of Biology, Division of Genetics, Nikolaus-Fiebiger-Center for Molecular Medicine, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Erlangen, Germany.

出版信息

Front Immunol. 2024 Oct 17;15:1473760. doi: 10.3389/fimmu.2024.1473760. eCollection 2024.

Abstract

The germinal center (GC) reaction is crucial for somatic hypermutation, affinity maturation, and the selection of high-affinity B cells, all of which are hallmarks of the humoral immune response. Understanding the distinct roles of various B cell genes is essential for elucidating the selection mechanisms within the GC reaction. Traditionally, studying B cell gene function in the GC reaction involved generating knock-out mice, a highly time-consuming method that necessitates complex vectors. The advent of Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) technology has simplified the creation of knock-out mice. However, even with CRISPR, the generation of knock-out mice still faces challenges, including being time-consuming, costly, having low knock-out efficiency, and raising ethical concerns regarding animal use. To address these challenges, we developed an alternative method to traditional knock-out mouse generation. Our approach entails the CRISPR editing of B cells from transgenic donor mice with different B cell receptor affinities followed by their adoptive transfer into recipient mice. We present a cost-effective, rapid, versatile, and adaptable CRISPR-Cas9 method for loss-of-function studies of individual murine B cell genes within the context of the GC reaction. This method provides a valuable tool for investigating the complex roles of different B cell genes in the GC selection process. As proof of concept, we validated our approach by examining the role of the pro-apoptotic gene Fas in the GC selection process. We adoptively transferred a mix of Fas knock-out (Fas) low-affinity B cells, Fas wild-type (Fas) low-affinity B cells, and Fas high-affinity B cells into recipient mice. From our results, Fas low-affinity B cells were still outcompeted by the Fas high-affinity B cells for selection in the GC. An important observation was the accumulation of Fas low-affinity GC B cells when compared to the Fas low-affinity B cells, which suggested a role of Fas in the GC selection process.

摘要

生发中心(GC)反应对于体细胞超突变、亲和力成熟和高亲和力 B 细胞的选择至关重要,这些都是体液免疫反应的标志。了解各种 B 细胞基因的独特作用对于阐明 GC 反应中的选择机制至关重要。传统上,研究 GC 反应中 B 细胞基因的功能需要生成敲除小鼠,这是一种非常耗时的方法,需要复杂的载体。CRISPR 技术的出现简化了敲除小鼠的生成。然而,即使有了 CRISPR,生成敲除小鼠仍然面临挑战,包括耗时、昂贵、敲除效率低以及动物使用方面的伦理问题。为了解决这些挑战,我们开发了一种替代传统敲除小鼠生成的方法。我们的方法涉及对具有不同 B 细胞受体亲和力的转基因供体小鼠的 B 细胞进行 CRISPR 编辑,然后将其过继转移到受体小鼠中。我们提出了一种经济高效、快速、多功能和适应性强的 CRISPR-Cas9 方法,用于在 GC 反应中研究个体小鼠 B 细胞基因的功能丧失。这种方法为研究不同 B 细胞基因在 GC 选择过程中的复杂作用提供了有价值的工具。作为概念验证,我们通过检查促凋亡基因 Fas 在 GC 选择过程中的作用来验证我们的方法。我们将 Fas 敲除(Fas)低亲和力 B 细胞、Fas 野生型(Fas)低亲和力 B 细胞和 Fas 高亲和力 B 细胞的混合物过继转移到受体小鼠中。从我们的结果可以看出,Fas 低亲和力 B 细胞仍然在 GC 中被 Fas 高亲和力 B 细胞竞争选择。一个重要的观察结果是 Fas 低亲和力 GC B 细胞的积累与 Fas 低亲和力 B 细胞相比,这表明 Fas 在 GC 选择过程中发挥了作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df09/11524869/5fb6897f8e3e/fimmu-15-1473760-g001.jpg

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