Template switching during DNA replication is a prevalent source of adaptive gene amplification.

IF 6.4 1区 生物学 Q1 BIOLOGY eLife Pub Date : 2025-02-03 DOI:10.7554/eLife.98934
Julie N Chuong, Nadav Ben Nun, Ina Suresh, Julia Cano Matthews, Titir De, Grace Avecilla, Farah Abdul-Rahman, Nathan Brandt, Yoav Ram, David Gresham
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Abstract

Copy number variants (CNVs) are an important source of genetic variation underlying rapid adaptation and genome evolution. Whereas point mutation rates vary with genomic location and local DNA features, the role of genome architecture in the formation and evolutionary dynamics of CNVs is poorly understood. Previously, we found the GAP1 gene in Saccharomyces cerevisiae undergoes frequent amplification and selection in glutamine-limitation. The gene is flanked by two long terminal repeats (LTRs) and proximate to an origin of DNA replication (autonomously replicating sequence, ARS), which likely promote rapid GAP1 CNV formation. To test the role of these genomic elements on CNV-mediated adaptive evolution, we evolved engineered strains lacking either the adjacent LTRs, ARS, or all elements in glutamine-limited chemostats. Using a CNV reporter system and neural network simulation-based inference (nnSBI) we quantified the formation rate and fitness effect of CNVs for each strain. Removal of local DNA elements significantly impacts the fitness effect of GAP1 CNVs and the rate of adaptation. In 177 CNV lineages, across all four strains, between 26% and 80% of all GAP1 CNVs are mediated by Origin Dependent Inverted Repeat Amplification (ODIRA) which results from template switching between the leading and lagging strand during DNA synthesis. In the absence of the local ARS, distal ones mediate CNV formation via ODIRA. In the absence of local LTRs, homologous recombination can mediate gene amplification following de novo retrotransposon events. Our study reveals that template switching during DNA replication is a prevalent source of adaptive CNVs.

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DNA复制过程中的模板转换是适应性基因扩增的普遍来源。
拷贝数变异(CNVs)是快速适应和基因组进化的重要遗传变异来源。虽然点突变率随基因组位置和局部DNA特征而变化,但基因组结构在CNVs形成和进化动力学中的作用尚不清楚。在此之前,我们发现酿酒酵母GAP1基因在谷氨酰胺限制中经历了频繁的扩增和选择。该基因两侧有两个长末端重复序列(LTRs),接近DNA复制的起源(自主复制序列,ARS),这可能促进GAP1 CNV的快速形成。为了测试这些基因组元件在cnv介导的适应性进化中的作用,我们进化了缺乏邻近LTRs、ARS或谷氨酰胺限制性趋化因子中所有元件的工程菌株。利用CNV报告系统和基于神经网络模拟的推理(nnSBI),我们量化了每个品系CNV的形成率和适应度效应。局部DNA元件的去除显著影响GAP1 cnv的适应度效应和适应速率。在177个CNV谱系中,在所有4个菌株中,26%至80%的GAP1 CNV是由起源依赖的反向重复扩增(ODIRA)介导的,这是DNA合成过程中前导链和滞后链之间的模板切换造成的。在局部ARS缺失的情况下,远端ARS通过ODIRA介导CNV的形成。在缺乏局部LTRs的情况下,同源重组可以介导新生反转录转座子事件后的基因扩增。我们的研究表明,DNA复制过程中的模板切换是适应性CNVs的普遍来源。
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来源期刊
eLife
eLife BIOLOGY-
CiteScore
12.90
自引率
3.90%
发文量
3122
审稿时长
17 weeks
期刊介绍: eLife is a distinguished, not-for-profit, peer-reviewed open access scientific journal that specializes in the fields of biomedical and life sciences. eLife is known for its selective publication process, which includes a variety of article types such as: Research Articles: Detailed reports of original research findings. Short Reports: Concise presentations of significant findings that do not warrant a full-length research article. Tools and Resources: Descriptions of new tools, technologies, or resources that facilitate scientific research. Research Advances: Brief reports on significant scientific advancements that have immediate implications for the field. Scientific Correspondence: Short communications that comment on or provide additional information related to published articles. Review Articles: Comprehensive overviews of a specific topic or field within the life sciences.
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