高多样性酵母文库的热冲击电穿孔(HEEL)精确表型-基因型定位。

IF 5.1 1区 生物学 Q1 MICROBIOLOGY mBio Pub Date : 2025-02-05 Epub Date: 2024-12-20 DOI:10.1128/mbio.03197-24
Marcus Wäneskog, Emma Elise Hoch-Schneider, Shilpa Garg, Christian Kronborg Cantalapiedra, Elena Schäfer, Michael Krogh Jensen, Emil Damgaard Jensen
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引用次数: 0

摘要

高通量DNA转化技术在产生高多样性突变文库时是无价的,这是成功的蛋白质工程的基石。然而,转化效率与将多个DNA分子引入每个细胞的可能性直接相关,尽管可靠的文库筛选要求细胞包含单一独特的基因型。因此,产生高多样性转换的转换方法不适合高多样性库筛选。在这里,我们描述了一种创新的酵母库转换方法,既简单又高效。我们的双重热休克和电穿孔方法(HEEL)通过将单转化酵母细胞的比例从20%增加到所有转化细胞的70%以上,从而创建高质量的DNA文库,从而实现近乎完美的表型-基因型关联。HEEL还允许107个以上的酵母细胞在每次反应中被一个圆形质粒分子转化,与目前的酵母转化方法相比,这相当于将近100倍的改进。为了进一步完善我们的文库筛选方法,我们将自动酵母基因分型工作流程与双条形码设计集成在一起,该设计采用了单核苷酸多态性和高多样性区域。这种设计允许使用标准桑格测序在异质群体中进行强大的独特基因型鉴定和定量。我们的研究结果表明,转化酵母文库的大小和质量之间的长期权衡可以克服。通过使用HEEL方法,可以高效地将大量DNA文库转化为酵母,同时保持文库的高质量,这对于成功筛选突变体至关重要。这一进展为分子生物学和蛋白质工程领域带来了巨大的希望。随着人工智能在合成生物学领域的扩展,对表型-基因型关系的高质量数据和可靠测量的需求从未像现在这样大。然而,创建精确的基于计算机的模型的一个主要障碍是,目前大量的低质量表型测量来自大量高通量但低分辨率的分析。新的研究不应该增加测量的数量,而应该以产生尽可能精确的测量为目标。本文提出的HEEL方法旨在通过最大限度地减少高通量酵母DNA转化过程中多质粒摄取的问题来解决这一问题,从而导致异质细胞基因型的产生。未来,HEEL应该能够实现高度精确的表型-基因型测量,这可以用于构建更好的基于计算机的模型。
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Accurate phenotype-to-genotype mapping of high-diversity yeast libraries by heat-shock-electroporation (HEEL).

High-throughput DNA transformation techniques are invaluable when generating high-diversity mutant libraries, a cornerstone of successful protein engineering. However, transformation efficiencies have a direct correlation with the probability of introducing multiple DNA molecules into each cell, although reliable library screenings require cells that contain a single unique genotype. Thus, transformation methods that yield a high multiplicity of transformations are unsuitable for high-diversity library screenings. Here, we describe an innovative yeast library transformation method that is both simple and highly efficient. Our dual heat-shock and electroporation approach (HEEL) creates high-quality DNA libraries by increasing the fraction of mono-transformed yeast cells from 20% to over 70% of all transformed cells, thus allowing for near-perfect phenotype-to-genotype associations. HEEL also allows more than 107 yeast cells per reaction to be transformed with a circular plasmid molecule, which corresponds to an almost 100-fold improvement compared with current yeast transformation methods. To further refine our library screening approach, we integrated an automated yeast genotyping workflow with a dual-barcode design that employs both a single nucleotide polymorphism and a high-diversity region. This design allows for robust identification and quantification of unique genotypes within a heterogeneous population using standard Sanger sequencing. Our findings demonstrate that the longstanding trade-off between the size and quality of transformed yeast libraries can be overcome. By employing the HEEL method, large DNA libraries can be transformed into yeast with high-efficiency, while maintaining high library quality, essential for successful mutant screenings. This advancement holds significant promise for the fields of molecular biology and protein engineering.IMPORTANCEWith the recent expansion of artificial intelligence in the field of synthetic biology, there has never been a greater need for high-quality data and reliable measurements of phenotype-to-genotype relationships. However, one major obstacle to creating accurate computer-based models is the current abundance of low-quality phenotypic measurements originating from numerous high-throughput but low-resolution assays. Rather than increasing the quantity of measurements, new studies should aim to generate as accurate measurements as possible. The HEEL methodology presented here aims to address this issue by minimizing the problem of multi-plasmid uptake during high-throughput yeast DNA transformations, which leads to the creation of heterogeneous cellular genotypes. HEEL should enable highly accurate phenotype-to-genotype measurements going forward, which could be used to construct better computer-based models.

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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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