斑马鱼的碱基编辑器:功能基因组学和疾病建模的新时代。

IF 4.4 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Frontiers in genome editing Pub Date : 2025-05-21 eCollection Date: 2025-01-01 DOI:10.3389/fgeed.2025.1598887
Yuwen Liu, Chao Li, Yiren Qiu, Sihong Chen, Yijun Luo, Donghua Xiong, Jun Zhao, Jianmin Ye, Xuegeng Wang, Wei Qin, Fang Liang
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引用次数: 0

摘要

碱基编辑通过实现精确的单核苷酸修饰而不诱导双链断裂,彻底改变了基因组工程。碱基编辑器作为一种强大而高效的基因编辑工具,已广泛应用于包括斑马鱼在内的各种模式生物中,以促进功能基因组研究和疾病建模。斑马鱼具有与人类相似的基因和快速的发育,为新兴的碱基编辑技术的测试和优化提供了良好的平台。这篇综述全面探讨了斑马鱼中胞嘧啶和腺嘌呤碱基编辑器的进展,重点介绍了提高效率、特异性和编辑范围的最新进展。我们讨论了为斑马鱼应用量身定制的新型碱基编辑器变体,改进了传递策略,以及最小化脱靶效应的方法。此外,我们将碱基编辑与其他精确基因组编辑技术(如引体编辑和同源定向修复)进行了比较,以强调其在实现高保真度靶向突变方面的优势。通过评估碱基编辑在斑马鱼中不断扩大的作用,本综述为其在转化研究、遗传疾病建模和未来治疗应用方面的潜力提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Base editors in zebrafish: a new era for functional genomics and disease modeling.

Base editors in zebrafish: a new era for functional genomics and disease modeling.

Base editors in zebrafish: a new era for functional genomics and disease modeling.

Base editors in zebrafish: a new era for functional genomics and disease modeling.

Base editing has revolutionized genome engineering by enabling precise single-nucleotide modifications without inducing double-strand breaks. As a powerful and efficient gene-editing tool, base editors (BEs) have been widely applied in various model organisms, including zebrafish (Danio rerio), to facilitate functional genomic studies and disease modeling. Zebrafish, with its genetic similarity to humans and rapid development, provides an excellent platform for testing and optimizing emerging base editing technologies. This review comprehensively explores the advancements of cytosine and adenine base editors in zebrafish, highlighting recent developments that enhance efficiency, specificity, and editing scope. We discuss novel base editor variants tailored for zebrafish applications, improvements in delivery strategies, and methodologies to minimize off-target effects. Furthermore, we compare base editing with other precision genome-editing technologies, such as prime editing and homology-directed repair, to underscore its advantages in achieving targeted mutations with high fidelity. By evaluating the expanding role of base editing in zebrafish, this review provides valuable insights into its potential for translational research, genetic disease modeling, and future therapeutic applications.

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CiteScore
7.00
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