马铃薯基因组编辑优化策略与方案

IF 3.7 4区 生物学 Q2 GENETICS & HEREDITY CRISPR Journal Pub Date : 2024-12-04 DOI:10.1089/crispr.2024.0068
Frida Meijer Carlsen, Ida Westberg, Ida Elisabeth Johansen, Erik Andreasson, Bent Larsen Petersen
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引用次数: 0

摘要

马铃薯家族包括高度多样化的品种,具有提高和改良营养产量的巨大潜力,但必须像其他作物一样适应生物和非生物胁迫,例如,气候变化和环境需求加速了这种胁迫。马铃薯的多能性、高倍性和相对容易的原生质体分离、转化和再生,以及通过块茎的无性繁殖,使其非常适合用于精确的基因工程。大多数马铃薯品种是四倍体,在等位基因之间具有非常高的长度多态性和小核苷酸多态性,这通常使CRISPR-Cas编辑设计和策略复杂化。马铃薯CRISPR-Cas编辑可分为(i)目标区域的表征和硅辅助编辑设计,(ii)原生质体细胞的分离和编辑,以及(iii)随后从单个原生质体细胞中进行外植体再生。实现高效的CRISPR-Cas编辑依赖于原生质体(细胞池)水平的高效编辑,以及细胞池和外植体水平上稳健的高通量编辑评分方法。基因和染色质结构是可选择考虑的附加特征。强调了解决马铃薯基因组编辑关键步骤的策略和解决方案,包括外植体再生期间的光照条件和减少激素暴露的方案,这通常与体细胞无性系变异有关。
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Strategies and Protocols for Optimized Genome Editing in Potato.

The potato family includes a highly diverse cultivar repertoire and has a high potential for nutritional yield improvement and refinement but must in line with other crops be adapted to biotic and abiotic stresses, for example, accelerated by climate change and environmental demands. The combination of pluripotency, high ploidy, and relative ease of protoplast isolation, transformation, and regeneration together with clonal propagation through tubers makes potato highly suitable for precise genetic engineering. Most potato varieties are tetraploid having a very high prevalence of length polymorphisms and small nucleotide polymorphisms between alleles, often complicating CRISPR-Cas editing designs and strategies. CRISPR-Cas editing in potato can be divided into (i) characterization of target area and in silico-aided editing design, (ii) isolation and editing of protoplast cells, and (iii) the subsequent explant regeneration from single protoplast cells. Implementation of efficient CRISPR-Cas editing relies on efficient editing at the protoplast (cell pool) level and on robust high-throughput editing scoring methods at the cell pool and explant level. Gene and chromatin structure are additional features to optionally consider. Strategies and solutions for addressing key steps in genome editing of potato, including light conditions and schemes for reduced exposure to hormones during explant regeneration, which is often linked to somaclonal variation, are highlighted.

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来源期刊
CRISPR Journal
CRISPR Journal Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.30
自引率
2.70%
发文量
76
期刊介绍: In recognition of this extraordinary scientific and technological era, Mary Ann Liebert, Inc., publishers recently announced the creation of The CRISPR Journal -- an international, multidisciplinary peer-reviewed journal publishing outstanding research on the myriad applications and underlying technology of CRISPR. Debuting in 2018, The CRISPR Journal will be published online and in print with flexible open access options, providing a high-profile venue for groundbreaking research, as well as lively and provocative commentary, analysis, and debate. The CRISPR Journal adds an exciting and dynamic component to the Mary Ann Liebert, Inc. portfolio, which includes GEN (Genetic Engineering & Biotechnology News) and more than 80 leading peer-reviewed journals.
期刊最新文献
From Code to Comprehension: AI Captures the Language of Life. Response to Cook et al. re: Novel Off-Targeting Events Identified After Genome Wide Analysis of CRISPR-Cas Edited Pig. Managing Expectations for CRISPR in a Volatile World. Efficient Generation of SOCS2 Knock-Out Sheep by Electroporation of CRISPR-Cas9 Ribonucleoprotein Complex with Dual-sgRNAs. An Efficient and Cost-Effective Novel Strategy for Identifying CRISPR-Cas-Mediated Mutants in Plant Offspring.
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