CRISPR/Cas9诱导的asap1a和asap1b共敲除突变斑马鱼表现出异常的胚胎发育和受损的中性粒细胞迁移。

IF 1 4区 生物学 Q4 DEVELOPMENTAL BIOLOGY
Jia Cui , Da Wen , Liqing Wang , Chaoqun Meng , Yuhuan Wang , Zhonghua Zhao , Changxin Wu
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引用次数: 0

摘要

ASAP1(具有SH3结构域、锚蛋白重复序列和PH结构域的Arf-GAP)是小G蛋白Arf的GTP酶激活蛋白。为了更多地了解ASAP1在体内的生理功能,我们选择使用斑马鱼作为动物模型,并使用功能丧失研究来分析ASAP1的特征。本文发现斑马鱼中的两种亚型asap1a和asap1b与人类ASAP1同源,并使用CRISPR/Cas9技术建立了具有不同碱基插入和缺失的asap1a与asap1b基因敲除斑马鱼系。asap1a和asap1b联合敲除的斑马鱼在发育早期的存活率和孵化率显著降低,畸形率增加,而asap1a或asap1b单敲除突变体不影响单个斑马鱼的生长发育。使用qRT-PCR探索asap1a和asap1b之间的基因表达补偿,我们发现当asap1a被敲除时,asap1b的表达增加,显示出对asap1a敲除的明显补偿作用;反过来,在asap1b敲除后,asap1a没有可检测的补偿表达。此外,共敲除纯合突变体显示中性粒细胞向海洋分枝杆菌感染的迁移受损,并显示细菌载量增加。总之,这些是通过CRISPR/Cas9基因编辑方法获得的第一个遗传的asap1a和/或asap1b突变斑马鱼系,通过作为有用的模型,它们可以显著有助于更好地注释和跟踪人类ASAP1的生理学研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CRISPR/Cas9-induced asap1a and asap1b co-knockout mutant zebrafish displayed abnormal embryonic development and impaired neutrophil migration

ASAP1 (Arf-GAP with SH3 domain, the ankyrin repeat and the PH domain) is the GTPase activating protein of the small G protein Arf. To understand more about the physiological functions of ASAP1 in vivo, we chose to use the zebrafish as an animal model, and analyzed the characterization of asap1 using loss-of-function studies. Here, two isoforms in zebrafish, asap1a and asap1b, were found to be homologous to human ASAP1, and the gene knockout zebrafish lines for asap1a and asap1b were established using the CRISPR/Cas9 technique with different insertions and deletions of bases. Zebrafish with asap1a and asap1b co-knockout showed a significant reduction in survival and hatching rates, as well as an increase in malformation rates during the early stages of development, while the asap1a or asap1b single knockout mutants did not affect the growth and development of individual zebrafish. Exploring the gene expression compensation between asap1a and asap1b using qRT-PCR, we found that asap1b had increased expression when asap1a was knocked out, showing a clear compensatory effect against asap1a knockout; In turn, asap1a did not have detectable compensating expression after asap1b knockout. Furthermore, the co-knockout homozygous mutants displayed impaired neutrophil migration to Mycobacterium marinum infection, and showed an increased bacterial load. Together, these are the first inherited asap1a and/or asap1b mutant zebrafish lines by the CRISPR/Cas9 gene editing approach, and by serving as useful models, they can significantly contribute to better annotation and follow-up physiological studies of human ASAP1.

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来源期刊
Gene Expression Patterns
Gene Expression Patterns 生物-发育生物学
CiteScore
2.30
自引率
0.00%
发文量
42
审稿时长
35 days
期刊介绍: Gene Expression Patterns is devoted to the rapid publication of high quality studies of gene expression in development. Studies using cell culture are also suitable if clearly relevant to development, e.g., analysis of key regulatory genes or of gene sets in the maintenance or differentiation of stem cells. Key areas of interest include: -In-situ studies such as expression patterns of important or interesting genes at all levels, including transcription and protein expression -Temporal studies of large gene sets during development -Transgenic studies to study cell lineage in tissue formation
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